Arquivo de CPD/IT - Electronic Circuits https://www.elcircuits.com/category/cpd-it/ Circuits, tips, projects, and electronics tutorials for beginners and enthusiasts. Wed, 18 Mar 2026 11:51:50 +0000 en-US hourly 1 https://wordpress.org/?v=6.9.4 https://www.elcircuits.com/wp-content/uploads/2025/11/cropped-LOGO-ELC-500x500px-elcircuits.com_-1-32x32.png Arquivo de CPD/IT - Electronic Circuits https://www.elcircuits.com/category/cpd-it/ 32 32 UTP vs STP vs FTP: Anatomy of Shielded Network Cables https://www.elcircuits.com/utp-stp-ftp-differences/ https://www.elcircuits.com/utp-stp-ftp-differences/#respond Wed, 18 Mar 2026 07:51:32 +0000 https://www.elcircuits.com/?p=3337 UTP vs STP vs FTP: Anatomy of Shielded Network Cables 🌐 You can read this article in: Português | Español If you have ever faced mysterious connection drops or slowness in environments with many electrical cables, you know that a network cable is much more than just copper and plastic. Many installers and enthusiasts make the mistake of ignoring the physics behind data transmission, treating any ‘blue cable’ as equal. Today, we will dissect the engineering behind the acronyms UTP, STP, and FTP, including the variations U, F, S, and SF. More than memorizing letters, you will understand how to protect your infrastructure against ‘electromagnetic chaos’ and ensure that the contracted speed is, in fact, the delivered speed. 1️⃣ The Theory Behind: Differential, Electromagnetism, and Grounding To understand why network cables use different levels of protection and shielding, it is important to start with the physical basis of Ethernet operation. In modern networks (especially Gigabit Ethernet and above), transmission occurs via differential signals in twisted pairs. In this method, the transmitter sends the same signal through two conductors, but with opposite polarities, usually represented as V+ and V−. The receiver does not measure each wire individually; instead, it interprets the voltage difference between the two conductors, known as the differential voltage: Vdiff = (V+) – (V-) This type of transmission offers great resistance to external interference. When an external electromagnetic field hits the cable, it tends to induce a voltage practically equal in both conductors. This phenomenon is called common-mode noise (common-mode noise). Since the receiver calculates only the difference between the signals, this noise is largely canceled. The twisting of the pairs further reinforces this effect. By constantly alternating the physical position of the conductors along the cable, exposure to the external electromagnetic field is distributed evenly, improving the natural cancellation of interference. However, in environments with high electromagnetic density, such as industrial installations, data centers, or locations with a strong presence of radio frequency (RFI), this passive cancellation may not be sufficient. In these scenarios, problems such as crosstalk (crosstalk) also arise, where the signal from one wire pair induces interference in an adjacent pair due to capacitive and inductive coupling between them. This is the point where cable shielding becomes relevant. Metallic layers such as meshes or conductive foils function similarly to a Faraday cage, reducing the penetration of external electromagnetic fields and limiting coupling between internal pairs. When properly grounded, the shielding can also help drain common-mode currents, contributing to signal stability. Another fundamental aspect in the performance of Ethernet cables is Characteristic Impedance (Z₀). For twisted pair cables used in Ethernet networks, the standard specified by structured cabling standards is: Z₀ = 100 Ω ± 15% In practice, this means that the cable impedance must remain approximately within the range of 85Ω to 115Ω throughout the entire link. This impedance depends directly on the distributed electrical properties of the transmission line, mainly inductance (L) and capacitance (C) per unit length. In an ideal approximation, the relationship between these parameters is expressed by: Z0 = √(L / C) Any physical change in the cable can modify these parameters. Crushing, excessive bending, twisting, or deformations of the pair geometry alter the distance between conductors and the electromagnetic field around them. This changes the local impedance of the cable and can cause impedance discontinuities. When this occurs, part of the signal energy does not move forward through the cable and is reflected back towards the transmitter. These reflections degrade signal integrity and can reduce the effective data rate, especially in high-speed networks such as Gigabit Ethernet and 10 Gigabit Ethernet. For this reason, both the geometric design of the cable and the correct application of shielding and grounding are critical factors to ensure electromagnetic integrity and network communication performance. 2️⃣  The “Core”: Deciphering the Acronyms in Practice Now that we understand the physics, we need to standardize the vocabulary. Manufacturers use international acronyms that make up the cables, usually in the format “U/UTP“. The first letter refers to the overall cable shield, and after the slash “/”, it refers to the shielding of the internal pairs. Let’s dissect each one visually. Nomenclature Components Before entering the full models, let’s understand the basic letters: U – Unshielded (No Shielding) F – Foil Shielding (Aluminum Foil Shielding) S – Braided Shielding (Metal Mesh Shielding) SF – Braided + Foil Shielding (Double Shielding: Mesh and Foil) U/UTP – Unshielded / Unshielded Twisted Pair U – Unshielded UTP – Unshielded Twisted Pair The most common standard, with no shielding surrounding the cable or the pairs. Fig. 2 – U/UTP Ethernet Cable: No additional protection. F/UTP – Foiled / Unshielded Twisted Pair F – Shielded with Aluminum Foil UTP – Unshielded Twisted Pair Has an aluminized foil surrounding the entire cable, but the internal pairs do not have individual shielding. Fig. 3 – F/UTP: Note the aluminum foil surrounding all pairs. S/UTP – Braided Shielding / Unshielded Twisted Pair S – Shielded with Braid or Mesh UTP – Unshielded Twisted Pair Uses a metallic mesh (screen) to protect the entire cable, ideal against mechanical and low-frequency interference. Fig. 4 – S/UTP: Robust protection via external braided mesh. SF/UTP – Braided Shielding + Foil / Unshielded Twisted Pairs SF – Shielded with Mesh + Shielded with Aluminum Foil UTP – Unshielded Twisted Pair The combination of both shields (Mesh + Foil) surrounding the cable offers maximum external protection. Fig. 5 – SF/UTP: The definitive shielding against external interference. S/FTP – Braided Shielding / Foiled Twisted Pair S – Shielded with Mesh (Global) FTP – Shielded Twisted Pair (Individual) Here each pair is individually shielded (foil) and there is an external mesh. The ideal standard for heavy industry and data centers. Fig. 6 – S/FTP: Detail of individual shielding on each pair (foil) and global mesh. F/FTP – Foiled / Foiled Twisted Pair F – Shielded with Aluminum Foil (Global) FTP – Shielded Twisted Pair (Individual) Foil shielding surrounding the entire cable and foil

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UTP vs STP vs FTP: Anatomy of Shielded Network Cables
UTP vs STP vs FTP: Anatomy of Shielded Network Cables

🌐 You can read this article in: Português | Español

If you have ever faced mysterious connection drops or slowness in environments with many electrical cables, you know that a network cable is much more than just copper and plastic. Many installers and enthusiasts make the mistake of ignoring the physics behind data transmission, treating any 'blue cable' as equal.

Today, we will dissect the engineering behind the acronyms UTP, STP, and FTP, including the variations U, F, S, and SF. More than memorizing letters, you will understand how to protect your infrastructure against 'electromagnetic chaos' and ensure that the contracted speed is, in fact, the delivered speed.

1️⃣ The Theory Behind: Differential, Electromagnetism, and Grounding

To understand why network cables use different levels of protection and shielding, it is important to start with the physical basis of Ethernet operation. In modern networks (especially Gigabit Ethernet and above), transmission occurs via differential signals in twisted pairs.

In this method, the transmitter sends the same signal through two conductors, but with opposite polarities, usually represented as V+ and V−. The receiver does not measure each wire individually; instead, it interprets the voltage difference between the two conductors, known as the differential voltage:

Vdiff = (V+) - (V-)

This type of transmission offers great resistance to external interference. When an external electromagnetic field hits the cable, it tends to induce a voltage practically equal in both conductors. This phenomenon is called common-mode noise (common-mode noise). Since the receiver calculates only the difference between the signals, this noise is largely canceled.

The twisting of the pairs further reinforces this effect. By constantly alternating the physical position of the conductors along the cable, exposure to the external electromagnetic field is distributed evenly, improving the natural cancellation of interference.

However, in environments with high electromagnetic density, such as industrial installations, data centers, or locations with a strong presence of radio frequency (RFI), this passive cancellation may not be sufficient. In these scenarios, problems such as crosstalk (crosstalk) also arise, where the signal from one wire pair induces interference in an adjacent pair due to capacitive and inductive coupling between them.

This is the point where cable shielding becomes relevant. Metallic layers such as meshes or conductive foils function similarly to a Faraday cage, reducing the penetration of external electromagnetic fields and limiting coupling between internal pairs. When properly grounded, the shielding can also help drain common-mode currents, contributing to signal stability.

Another fundamental aspect in the performance of Ethernet cables is Characteristic Impedance (Z₀). For twisted pair cables used in Ethernet networks, the standard specified by structured cabling standards is:

Z₀ = 100 Ω ± 15%

In practice, this means that the cable impedance must remain approximately within the range of 85Ω to 115Ω throughout the entire link.

This impedance depends directly on the distributed electrical properties of the transmission line, mainly inductance (L) and capacitance (C) per unit length. In an ideal approximation, the relationship between these parameters is expressed by:

Z0 = (L / C)

Any physical change in the cable can modify these parameters. Crushing, excessive bending, twisting, or deformations of the pair geometry alter the distance between conductors and the electromagnetic field around them. This changes the local impedance of the cable and can cause impedance discontinuities.

When this occurs, part of the signal energy does not move forward through the cable and is reflected back towards the transmitter. These reflections degrade signal integrity and can reduce the effective data rate, especially in high-speed networks such as Gigabit Ethernet and 10 Gigabit Ethernet.

For this reason, both the geometric design of the cable and the correct application of shielding and grounding are critical factors to ensure electromagnetic integrity and network communication performance.

2️⃣  The "Core": Deciphering the Acronyms in Practice

Now that we understand the physics, we need to standardize the vocabulary. Manufacturers use international acronyms that make up the cables, usually in the format "U/UTP". The first letter refers to the overall cable shield, and after the slash "/", it refers to the shielding of the internal pairs. Let's dissect each one visually.

Nomenclature Components

Before entering the full models, let's understand the basic letters:

  • U - Unshielded (No Shielding)
  • F - Foil Shielding (Aluminum Foil Shielding)
  • S - Braided Shielding (Metal Mesh Shielding)
  • SF - Braided + Foil Shielding (Double Shielding: Mesh and Foil)

U/UTP - Unshielded / Unshielded Twisted Pair

  • U - Unshielded
  • UTP - Unshielded Twisted Pair
  • The most common standard, with no shielding surrounding the cable or the pairs.
U/UTP Ethernet Cable - Unshielded / Unshielded Twisted Pair
Fig. 2 – U/UTP Ethernet Cable: No additional protection.

F/UTP - Foiled / Unshielded Twisted Pair

  • F - Shielded with Aluminum Foil
  • UTP - Unshielded Twisted Pair
  • Has an aluminized foil surrounding the entire cable, but the internal pairs do not have individual shielding.
F/UTP Ethernet Cable - Foiled / Unshielded Twisted Pair
Fig. 3 – F/UTP: Note the aluminum foil surrounding all pairs.

S/UTP - Braided Shielding / Unshielded Twisted Pair

  • S - Shielded with Braid or Mesh
  • UTP - Unshielded Twisted Pair
  • Uses a metallic mesh (screen) to protect the entire cable, ideal against mechanical and low-frequency interference.
S/UTP - Braided Shielding / Unshielded Twisted Pair
Fig. 4 – S/UTP: Robust protection via external braided mesh.

SF/UTP - Braided Shielding + Foil / Unshielded Twisted Pairs

  • SF - Shielded with Mesh + Shielded with Aluminum Foil
  • UTP - Unshielded Twisted Pair
  • The combination of both shields (Mesh + Foil) surrounding the cable offers maximum external protection.
SF/UTP - Braided Shielding + Foil
Fig. 5 – SF/UTP: The definitive shielding against external interference.

S/FTP - Braided Shielding / Foiled Twisted Pair

  • S - Shielded with Mesh (Global)
  • FTP - Shielded Twisted Pair (Individual)
  • Here each pair is individually shielded (foil) and there is an external mesh. The ideal standard for heavy industry and data centers.
S/FTP - Braided Shielding / Foiled Twisted Pair
Fig. 6 – S/FTP: Detail of individual shielding on each pair (foil) and global mesh.

F/FTP - Foiled / Foiled Twisted Pair

  • F - Shielded with Aluminum Foil (Global)
  • FTP - Shielded Twisted Pair (Individual)
  • Foil shielding surrounding the entire cable and foil on each pair. Common in Cat 6a cables to prevent Alien Crosstalk.
F/FTP - Foiled / Foiled Twisted Pair
Fig. 7 – F/FTP: Double layer of aluminum foil.

U/FTP - Unshielded / Foiled Twisted Pairs

  • U - Unshielded (Global)
  • FTP - Shielded Twisted Pair (Individual)
  • There is no general protection on the cable, but each pair has its own foil shielding. Great for reducing internal crosstalk without the cost of global shielding.
U/FTP - Unshielded / Foiled Twisted Pairs
Fig. 8 – U/FTP: Individually shielded pairs, no general protection.

3️⃣ Best Practices and Installation "Pro Tips"

Buying an expensive shielded cable does not guarantee performance. Installation is the weakest link. Here is what separates the amateur installer from the engineer:

1. Grounding is Mandatory (and critical): A shielded cable (FTP, STP, S/FTP) does not function as an antenna (which absorbs noise). If you do not ground the shielding correctly at both ends (at the patch panel and the RJ45 connector), it can act as an antenna, picking up noise and injecting it into the signal via capacitance. Use metallic connectors and patch panels and ensure that the drain wire makes continuous contact with the connector housing.

2. Bend Radius: Do not crush the cable. When bending excessively, you alter the twist pitch of the internal pairs and the distance between conductors, destroying the impedance balance. The rule of thumb is not to bend the cable in a radius smaller than 4 times the outer diameter of the cable for horizontal cables.

3. Stripping: When preparing the cable for crimping, do not remove more than 25mm of the outer jacket. If you strip too much and expose the twisted pairs without the protection of the shielding (in FTP/STP cables), you create a signal leakage point. The shielding needs to cover the signal as close as possible to the connector pin contact.

4. Beware of the Skin Effect: At high frequencies (Gigabit Ethernet), current tends to flow over the outer surface of the conductor. Therefore, braided shields (braid) are generally more effective than flat foils alone, as they offer more surface area to drain low-frequency interference.

🤔 Frequently Asked Questions (FAQ)

We clarify the main technical doubts about choosing and installing shielded network cables.

What is the real difference between STP and FTP? 🔽

The main difference lies in the scope of the shielding. FTP (Foiled Twisted Pair) has only an aluminum foil surrounding all pairs together (global shielding). STP, in its more technical definition (U/FTP), has an aluminum foil shielding each pair individually. STP is superior in preventing crosstalk (interference between pairs within the same cable), while FTP focuses on external interference.

Can I use FTP cable in a common home installation? 🔽

You can, but it is usually a waste of money and more work. UTP cables are certified for home environments and support Gigabit Ethernet perfectly. The benefit of FTP only appears if the cable passes very close to high-current power cables, motors, or transformers. Furthermore, if you do not ground the FTP correctly, it may perform worse than a UTP.

What happens if I don't ground the cable shield? 🔽

Floating shielding (ungrounded) acts as an antenna. It will capture electromagnetic noise from the environment and, due to the capacitive effect between the shielding and the internal pairs, can inject this noise directly into your data signal, causing CRC errors and packet retransmissions, drastically reducing network speed.

Can I mix UTP and FTP cables in the same network? 🔽

Yes, electrically they are compatible and will communicate. However, the segment using UTP will be the weak link in the chain. If you install a UTP cable in a noisy environment, it will introduce errors in that section. For an "end-to-end" link, the cable category (Cat5e, Cat6, etc.) must be the same, but the shielding can vary, keeping in mind that performance will be limited by the weakest link (the least shielded).

What is the drain wire? 🔽

It is a copper wire (usually bare or tinned) placed in electrical contact with the shielding aluminum foil. Since aluminum is difficult to solder and has high contact resistance in compression connectors, the drain wire serves as the low-impedance conductive path to connect the shielding to the ground of the RJ45 connector or patch panel.

🎓 Conclusion

I hope this technical analysis with real images has cleared the fog surrounding the acronyms. Next time you crimp a connector, remember: the quality of the connection depends on physics, not just following wire colors.

✨ Our Gratitude and Next Steps

We sincerely hope this guide has been useful and enriching for your projects! Thank you for dedicating your time to this content.

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Have any questions, suggestions, or corrections? Feel free to share them in the comments below! Your contribution helps us refine this content for the entire ElCircuits community.

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The ElCircuits Team ⚡

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SLMGR on Windows: Practical Guide to Activation and Licensing https://www.elcircuits.com/slmgr-windows-activation-licensing/ https://www.elcircuits.com/slmgr-windows-activation-licensing/#respond Tue, 23 Dec 2025 11:20:29 +0000 https://www.elcircuits.com/?p=2974 Windows command line interface displaying SLMGR commands for license management. 🌐 You can read this article in: Português | Español Hello Everyone! Have you ever encountered Windows activation messages at the most inconvenient time? As an operating systems specialist with over a decade of experience, I can say that license management is one of the most neglected yet critical areas of system administration. The SLMGR (Software Licensing Management Tool) is a powerful, often underestimated tool that can save hours of work and frustrations. It allows administrators to check activation status, modify product keys, and much more, all through the command line interface. In this comprehensive guide, we’ll explore in detail the main options and how to use them to manage licenses efficiently. Get ready to transform your way of handling Windows licensing! 📺 Visual Summary: View the Web Story for this SLMGR Guide 🤷 What is SLMGR? The SLMGR (Software Licensing Management Tool) is a script integrated into Windows, executed through the slmgr.vbs file. This script allows users and administrators to query and modify the operating system’s activation status, as well as change licensing configurations. Think of SLMGR as a “hidden control panel” for all operations related to Windows licensing. While most users never interact directly with it, system administrators and IT professionals consider this tool essential for managing multiple licenses in corporate environments. SLMGR works by interacting with the Software Licensing Service (SLSVC), which is responsible for managing all Windows license activation and validation operations. When you run an SLMGR command, you’re actually sending instructions to this service in the background. 🚀 How to Access SLMGR Before we start exploring the commands, it’s important to know how to access SLMGR correctly. Since it’s executed through a VBScript, we need to use the command prompt with elevated privileges. Here’s the step-by-step: Press Windows + X and select “Command Prompt (Administrator)” or “Windows PowerShell (Administrator)” In the command prompt, type cmd and press Enter (if you’re in PowerShell) Now you can use SLMGR commands by typing slmgr.vbs followed by the desired parameter Note: In some cases, you may need to specify the full path to the script: cscript.exe %windir%system32slmgr.vbs followed by the parameters. 📋 Main SLMGR Commands The SLMGR commands are mainly used to check, install, and uninstall Windows product keys, as well as activate the operating system. Below, we list the main commands, their functions, and how to use them. 1. slmgr /ipk [product key] This command is used to install a new product key. It’s especially useful in corporate environments where there’s a need to activate multiple machines with different licenses. Analogy: Think of this command as inserting a new key into your Windows door – you’re literally “unlocking” a new license for use. Example: slmgr /ipk XXXXX-XXXXX-XXXXX-XXXXX-XXXXX 2. slmgr /ato After installing the product key, the `/ato` command activates Windows based on that key. This command forces the system to attempt online activation. Professional tip: If you’re on a network with restrictions, you may need to configure a proxy before using this command. In my tests, unstable connections can cause activation failures, so check your connectivity before proceeding. Example: slmgr /ato 3. slmgr /dli This command displays basic information about the system’s licensing and activation status, such as the partial product key number and the license type. What you’ll see: A pop-up window with information like license ID, description, license status (activated or not), and renewal date (if applicable). Example: slmgr /dli 4. slmgr /dlv Similar to `/dli`, but with more detailed information, such as the license expiration date and the activation channel used (OEM, KMS, MAK). Analogy: If `/dli` is like looking at your car’s identification plate, `/dlv` is like having full access to the vehicle’s history and complete technical specifications. Example: slmgr /dlv 5. slmgr /xpr This command allows you to check if Windows is permanently activated or if the license expires after a certain period. Use case: Particularly useful for distinguishing between evaluation licenses (which expire) and full licenses (permanent). In testing environments, this command has helped me avoid unpleasant surprises when evaluation licenses were close to expiration. Example: slmgr /xpr 6. slmgr /upk Removes the product key currently installed on the system, essential for deactivating a system before transferring the license to another computer. Warning: This command does not uninstall Windows, it only removes the product key. The system will continue to function, but will eventually request reactivation. Example: slmgr /upk 7. slmgr /rearm This command resets the Windows activation counter, useful in testing environments where the license needs to be temporarily renewed. It restores the evaluation activation period. Important: The `/rearm` command can only be used a limited number of times (usually 3-5), depending on the Windows version. Use with caution and only when really necessary. Example: slmgr /rearm 🧭 Practical Use Situations Now that we’ve covered the main SLMGR commands, let’s look at some practical situations where these tools are useful. Mass Activation with KMS The SLMGR is often used in corporate environments with the Key Management Service (KMS). This method allows organizations to activate multiple copies of Windows centrally, without needing to enter individual keys on each machine. In this case, the `/skms` command can be used to point the system to the organization’s KMS server, automatically activating Windows on connected machines. Example: slmgr /skms kms.yourdomain.com Then, use the `/ato` command to activate Windows with the configured KMS: slmgr /ato 🖥️ License Transfer to Another Computer When a computer is replaced or discarded, it’s possible to remove the product key from the old system and apply it to a new device. This process is especially relevant for retail licenses, which can be transferred between devices. Steps: On the old system, run `slmgr /upk` to uninstall the key. On the new system, use `slmgr /ipk` followed by the removed key. Activate with `slmgr /ato`. Professional tip: Before transferring a license, check the specific licensing terms to ensure that the transfer is permitted. OEM licenses, for example, are generally tied to the

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Windows command line interface displaying SLMGR commands for license management
Windows command line interface displaying SLMGR commands for license management.

🌐 You can read this article in: Português | Español

Hello Everyone!

Have you ever encountered Windows activation messages at the most inconvenient time? As an operating systems specialist with over a decade of experience, I can say that license management is one of the most neglected yet critical areas of system administration.

The SLMGR (Software Licensing Management Tool) is a powerful, often underestimated tool that can save hours of work and frustrations. It allows administrators to check activation status, modify product keys, and much more, all through the command line interface.

In this comprehensive guide, we'll explore in detail the main options and how to use them to manage licenses efficiently. Get ready to transform your way of handling Windows licensing!

📺 Visual Summary: View the Web Story for this SLMGR Guide

🤷 What is SLMGR?

The SLMGR (Software Licensing Management Tool) is a script integrated into Windows, executed through the slmgr.vbs file. This script allows users and administrators to query and modify the operating system's activation status, as well as change licensing configurations.

Think of SLMGR as a "hidden control panel" for all operations related to Windows licensing. While most users never interact directly with it, system administrators and IT professionals consider this tool essential for managing multiple licenses in corporate environments.

SLMGR works by interacting with the Software Licensing Service (SLSVC), which is responsible for managing all Windows license activation and validation operations. When you run an SLMGR command, you're actually sending instructions to this service in the background.

🚀 How to Access SLMGR

Before we start exploring the commands, it's important to know how to access SLMGR correctly. Since it's executed through a VBScript, we need to use the command prompt with elevated privileges.

Here's the step-by-step:

  1. Press Windows + X and select "Command Prompt (Administrator)" or "Windows PowerShell (Administrator)"
  2. In the command prompt, type cmd and press Enter (if you're in PowerShell)
  3. Now you can use SLMGR commands by typing slmgr.vbs followed by the desired parameter

Note: In some cases, you may need to specify the full path to the script: cscript.exe %windir%\system32\slmgr.vbs followed by the parameters.

📋 Main SLMGR Commands

The SLMGR commands are mainly used to check, install, and uninstall Windows product keys, as well as activate the operating system. Below, we list the main commands, their functions, and how to use them.

1. slmgr /ipk [product key]

This command is used to install a new product key. It's especially useful in corporate environments where there's a need to activate multiple machines with different licenses.

Analogy: Think of this command as inserting a new key into your Windows door - you're literally "unlocking" a new license for use.

Example:

  slmgr /ipk XXXXX-XXXXX-XXXXX-XXXXX-XXXXX

2. slmgr /ato

After installing the product key, the `/ato` command activates Windows based on that key. This command forces the system to attempt online activation.

Professional tip: If you're on a network with restrictions, you may need to configure a proxy before using this command. In my tests, unstable connections can cause activation failures, so check your connectivity before proceeding.

Example:

  slmgr /ato

3. slmgr /dli

This command displays basic information about the system's licensing and activation status, such as the partial product key number and the license type.

What you'll see: A pop-up window with information like license ID, description, license status (activated or not), and renewal date (if applicable).

Example:

  slmgr /dli

4. slmgr /dlv

Similar to `/dli`, but with more detailed information, such as the license expiration date and the activation channel used (OEM, KMS, MAK).

Analogy: If `/dli` is like looking at your car's identification plate, `/dlv` is like having full access to the vehicle's history and complete technical specifications.

Example:

  slmgr /dlv

5. slmgr /xpr

This command allows you to check if Windows is permanently activated or if the license expires after a certain period.

Use case: Particularly useful for distinguishing between evaluation licenses (which expire) and full licenses (permanent). In testing environments, this command has helped me avoid unpleasant surprises when evaluation licenses were close to expiration.

Example:

  slmgr /xpr

6. slmgr /upk

Removes the product key currently installed on the system, essential for deactivating a system before transferring the license to another computer.

Warning: This command does not uninstall Windows, it only removes the product key. The system will continue to function, but will eventually request reactivation.

Example:

  slmgr /upk

7. slmgr /rearm

This command resets the Windows activation counter, useful in testing environments where the license needs to be temporarily renewed. It restores the evaluation activation period.

Important: The `/rearm` command can only be used a limited number of times (usually 3-5), depending on the Windows version. Use with caution and only when really necessary.

Example:

  slmgr /rearm

🧭 Practical Use Situations

Now that we've covered the main SLMGR commands, let's look at some practical situations where these tools are useful.

Mass Activation with KMS

The SLMGR is often used in corporate environments with the Key Management Service (KMS). This method allows organizations to activate multiple copies of Windows centrally, without needing to enter individual keys on each machine.

In this case, the `/skms` command can be used to point the system to the organization's KMS server, automatically activating Windows on connected machines.

Example:

  slmgr /skms kms.yourdomain.com

Then, use the `/ato` command to activate Windows with the configured KMS:

  slmgr /ato

🖥️ License Transfer to Another Computer

When a computer is replaced or discarded, it's possible to remove the product key from the old system and apply it to a new device. This process is especially relevant for retail licenses, which can be transferred between devices.

Steps:

  1. On the old system, run `slmgr /upk` to uninstall the key.
  2. On the new system, use `slmgr /ipk` followed by the removed key.
  3. Activate with `slmgr /ato`.

Professional tip: Before transferring a license, check the specific licensing terms to ensure that the transfer is permitted. OEM licenses, for example, are generally tied to the original hardware and cannot be transferred.

🔁 Troubleshooting Activation Issues

If Windows fails to activate correctly, you can use the `/dlv` and `/dli` commands to diagnose the problem. If necessary, reset the activation counter with the `/rearm` command and try activation again.

In my experience, activation problems generally fall into three categories:

  • Connectivity issues: Check your internet connection and firewalls that might block communication with Microsoft's activation servers.
  • Invalid or already used keys: Use `/dlv` to check the status of the current key.
  • Problems with the activation service: Restart the "Software Licensing" service and try again.

📊 Command Summary Table

Command Function Common Use
slmgr /ipk Install a new product key Initial activation or license change
slmgr /ato Activate Windows After installing a key or to force reactivation
slmgr /dli Display basic activation information Quick license status check
slmgr /dlv Display detailed license information Complete diagnosis of activation problems
slmgr /xpr Check license expiration date Confirm if license is permanent or temporary
slmgr /upk Uninstall product key License transfer to another computer
slmgr /rearm Reset activation counter Extend evaluation period or troubleshoot issues
slmgr /skms Configure KMS server Mass activation in corporate environments

💡 Advanced Tips for IT Professionals

As an operating systems professor and IT consultant, I share some advanced techniques that can be useful in specific scenarios:

1. Remote Activation with SLMGR

It's possible to manage Windows activation on remote machines using SLMGR. For this, use the `/computer` parameter followed by the name of the remote computer:

  slmgr.vbs /computer:REMOTE_PC_NAME /ato

This is particularly useful in corporate environments where you need to manage multiple machines without physical access to each one.

2. KMS Key Verification

To verify if a key is KMS, observe the format: KMS keys generally start with "XXXXX-". You can use the `/dlv` command to confirm the key type and its purpose.

3. Automated Activation Script

In deployment environments, you can create a batch script that automates the entire activation process:

  @echo off
slmgr /ipk XXXXX-XXXXX-XXXXX-XXXXX-XXXXX
slmgr /skms kms.yourdomain.com
slmgr /ato
echo Activation completed successfully!
pause

💡 Related Guides

Did you like this guide? Then you'll love exploring other articles we've prepared. Each with its own particularities!

🤔 Frequently Asked Questions (FAQ)

To ensure your project is a success, we've compiled some of the most common questions about this topic. Check it out!

Can I use SLMGR to activate Windows without a product key? 🔽

It's not possible to activate Windows without a valid product key. SLMGR is a tool to manage the activation process, but it doesn't bypass the need for a legitimate license. In corporate environments, activation can be automated through KMS servers, but it still requires valid keys.

How many times can I use the slmgr /rearm command? 🔽

The /rearm command can generally be used 3 to 5 times, depending on the Windows version. Each use resets the evaluation period to 30 days. After exceeding the limit, you'll need to enter a valid product key and activate the system. It's important to use this command with caution and only when really necessary.

What's the difference between KMS and MAK activation? 🔽

KMS (Key Management Service) is used in corporate environments for mass activation, where clients connect to a local server for activation. MAK (Multiple Activation Key) allows multiple activations, but each activation is registered directly with Microsoft servers. While KMS requires periodic renewal (usually every 180 days), MAK offers permanent activation after initial validation.

Does the SLMGR command work on all versions of Windows? 🔽

The SLMGR command is available on most versions of Windows, including Windows 7, 8, 8.1, 10, and 11, as well as Server versions like Windows Server 2008, 2012, 2016, 2019, and 2022. However, some specific parameters may vary between versions, so it's always recommended to check Microsoft's documentation for your specific Windows version.

🧾 Conclusion

The SLMGR command is an indispensable tool for anyone who needs to manage Windows licenses effectively. With commands ranging from installing product keys to mass activation via KMS, it offers flexibility for both individual users and IT administrators.

As a professor and consultant, I emphasize the importance of understanding not only how to use these commands, but also the principles behind Windows licensing. A solid knowledge of SLMGR not only solves immediate activation problems but also helps create more efficient and compliant licensing strategies.

I hope this comprehensive guide has clarified your doubts about SLMGR. Remember that proper license management not only ensures legal compliance but also optimizes resources and avoids unexpected interruptions in the work environment.

Do you have any experience or questions about using SLMGR? Share in the comments below! Your contribution can help other professionals solve similar challenges.

✨ Our Gratitude and Next Steps

We sincerely hope this guide has been useful and enriching for your projects! Thank you for dedicating your time to this content.

Your Feedback is Invaluable:

Have any questions, suggestions, or corrections? Feel free to share them in the comments below! Your contribution helps us refine this content for the entire ElCircuits community.

If you found this guide helpful, share the knowledge!

🔗 Share This Guide

Best regards,

The ElCircuits Team ⚡

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How to Use Winget Upgrade Command to Update Windows Apps https://www.elcircuits.com/winget-upgrade-command-update-windows/ https://www.elcircuits.com/winget-upgrade-command-update-windows/#respond Fri, 11 Aug 2023 12:09:00 +0000 https://elcircuits.com/winget-upgrade-command-how-to-update-applications-on-windows-using-cmd/ Winget Upgrade Command: How to Update Applications on Windows Using CMD! 🌐 You can read this article in: Português | Español Upgrading Your Applications Using Windows Package Manager (winget) Command on Windows In today’s fast-paced technological landscape, staying up-to-date with the latest software versions is paramount for ensuring optimal performance, security, and access to new features. With the introduction of the Windows Package Manager (winget) command, Microsoft has streamlined the process of updating and managing applications on Windows systems. In this comprehensive guide, we will walk you through the steps of upgrading your applications using the powerful winget command, ensuring that you harness the full potential of your software ecosystem. 📖 Understanding the Importance of Application Updates Regularly updating your applications is akin to servicing your car – it keeps things running smoothly and guards against potential vulnerabilities. Outdated software can expose your system to security risks, performance bottlenecks, and compatibility issues. By proactively upgrading your applications, you not only enjoy the latest features but also maintain a secure and efficient computing environment. You may be interested in: RJ45 Ethernet Cable Color Standard – T568A and T568B – EIA/TIA Standard How Switched Mode Power Supply Works – SMPS – ATX 🧑‍💻 Introducing Windows Package Manager (winget) The Windows Package Manager, known as winget, is a command-line tool developed by Microsoft to simplify the process of installing, updating, and managing software packages on Windows systems. With a user-friendly syntax and robust functionality, winget eliminates the need to manually search for updates or visit multiple websites to download software. 🤷‍♂️ How to Install Winget? Winget is installed by default on Windows 11, however if you are using an older version like Windows 10, you will need to install it manually. To install Winget manually, follow these steps: Open the Start menu and search for: Windows PowerShell. Right-click on the search result and select: Execute as administrator. Fig. 2 – Accessing PowerShell windows as administrator Type the following command and press enter: Invoke-WebRequest -Uri https://aka.ms/winget-cli -OutFile winget-cli.msixbundle Type the following command and press enter: Add-AppPackage -Path winget-cli.msixbundle That’s it, now you have Winget installed on your computer! ℹ️ Steps to Upgrade Applications Using winget Open Command Prompt or PowerShell: Launch the Command Prompt or PowerShell on your Windows system. You can do this by searching for “cmd” or “PowerShell” in the Start menu. Check for Updates: Before upgrading any applications, it’s a good practice to check for available updates. Use the following command to update the package repository: winget update List Installed Applications: To view a list of currently installed applications, run the command: winget list This will display a comprehensive list of installed software packages along with their unique identifiers. 🧐 How to Update Applications with “Winget Upgrade” Command? You can be updating all Applications installed on your Windows quickly and automatically, with a single command. All you have to do is open Command Prompt or PowerShell and type the following command: winget upgrade –all Fig. 3 – command Winget Upgrade –all cmd 👨‍🔧 Upgrade specific Applications To upgrade a specific application, utilize the command: winget upgrade <package_name> Replace `<package_name>` with the actual name of the package you wish to upgrade. For example: winget upgrade GoogleChrome This will initiate the upgrade process for Google Chrome. 📚 Some Tips for Making the Most of Winget Here are some tips for getting the most out of Winget: Use the “search” command to find new apps to install. For example: winget search <search term> Use the “show” command to see detailed information about an application. For example: winget show <application name> Use the “list” command to see all applications installed on your computer. For example: winget list Use the “uninstall” command to uninstall an application. For example: winget uninstall <application name> 🧩 Advantages of Using winget for Application Upgrades Efficiency: winget eliminates the need to visit various websites or application stores to manually download updates. It streamlines the process into a single, command-line interface. Automated Updates: By incorporating winget into your workflow, you can schedule automated updates for your applications, ensuring that you never miss a critical upgrade. Version Management: With winget, you can easily switch between different versions of a software package, allowing you to test compatibility or revert to a previous version if needed. Dependency Handling: winget automatically manages dependencies, ensuring that all required components are installed or updated alongside the main application. 🧾 Conclusion Staying up-to-date with the latest software versions is vital for a seamless and secure computing experience. Windows Package Manager (winget) simplifies the process of upgrading applications on Windows systems, allowing you to effortlessly manage your software ecosystem from the command line. By following the steps outlined in this guide, you can ensure that your applications are always optimized, secure, and equipped with the latest features. Embrace the power of winget and unlock a new level of efficiency in application management. ✨ Our Gratitude and Next Steps We sincerely hope this guide has been useful and enriching for your projects! Thank you for dedicating your time to this content. Your Feedback is Invaluable: Have any questions, suggestions, or corrections? Feel free to share them in the comments below! Your contribution helps us refine this content for the entire ElCircuits community. If you found this guide helpful, spread the knowledge! 🔗 Share This Guide Best regards, The ElCircuits Team ⚡

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]]>
Winget Upgrade Command: How to Update Applications on Windows Using CMD!

Winget Upgrade Command: How to Update Applications on Windows Using CMD!

🌐 You can read this article in: Português | Español

Upgrading Your Applications Using Windows Package Manager (winget) Command on Windows

In today’s fast-paced technological landscape, staying up-to-date with the latest software versions is paramount for ensuring optimal performance, security, and access to new features.

With the introduction of the Windows Package Manager (winget) command, Microsoft has streamlined the process of updating and managing applications on Windows systems.

In this comprehensive guide, we will walk you through the steps of upgrading your applications using the powerful winget command, ensuring that you harness the full potential of your software ecosystem.

📖 Understanding the Importance of Application Updates

Regularly updating your applications is akin to servicing your car – it keeps things running smoothly and guards against potential vulnerabilities. Outdated software can expose your system to security risks, performance bottlenecks, and compatibility issues.

By proactively upgrading your applications, you not only enjoy the latest features but also maintain a secure and efficient computing environment.

You may be interested in:

🧑‍💻 Introducing Windows Package Manager (winget)

The Windows Package Manager, known as winget, is a command-line tool developed by Microsoft to simplify the process of installing, updating, and managing software packages on Windows systems.

With a user-friendly syntax and robust functionality, winget eliminates the need to manually search for updates or visit multiple websites to download software.

🤷‍♂️ How to Install Winget?

Winget is installed by default on Windows 11, however if you are using an older version like Windows 10, you will need to install it manually.

To install Winget manually, follow these steps:

  • Open the Start menu and search for: Windows PowerShell.
  • Right-click on the search result and select: Execute as administrator.
Accessing PowerShell windows as administrator

Fig. 2 – Accessing PowerShell windows as administrator

  • Type the following command and press enter: Invoke-WebRequest -Uri https://aka.ms/winget-cli -OutFile winget-cli.msixbundle
  • Type the following command and press enter: Add-AppPackage -Path winget-cli.msixbundle

That’s it, now you have Winget installed on your computer!

ℹ️ Steps to Upgrade Applications Using winget

  • Open Command Prompt or PowerShell: Launch the Command Prompt or PowerShell on your Windows system. You can do this by searching for “cmd” or “PowerShell” in the Start menu.
  • Check for Updates: Before upgrading any applications, it’s a good practice to check for available updates. Use the following command to update the package repository:
  • winget update
  • List Installed Applications: To view a list of currently installed applications, run the command:
  • winget list

This will display a comprehensive list of installed software packages along with their unique identifiers.

🧐 How to Update Applications with “Winget Upgrade” Command?

You can be updating all Applications installed on your Windows quickly and automatically, with a single command. All you have to do is open Command Prompt or PowerShell and type the following command:

  • winget upgrade –all
command Winget Upgrade --all cmd

Fig. 3 – command Winget Upgrade –all cmd

👨‍🔧 Upgrade specific Applications

To upgrade a specific application, utilize the command:

  • winget upgrade <package_name>

Replace `<package_name>` with the actual name of the package you wish to upgrade. For example:

  • winget upgrade GoogleChrome

This will initiate the upgrade process for Google Chrome.

📚 Some Tips for Making the Most of Winget

Here are some tips for getting the most out of Winget:

  • Use the “search” command to find new apps to install. For example: winget search <search term>
  • Use the “show” command to see detailed information about an application. For example: winget show <application name>
  • Use the “list” command to see all applications installed on your computer. For example: winget list
  • Use the “uninstall” command to uninstall an application. For example: winget uninstall <application name>

🧩 Advantages of Using winget for Application Upgrades

  • Efficiency: winget eliminates the need to visit various websites or application stores to manually download updates. It streamlines the process into a single, command-line interface.
  • Automated Updates: By incorporating winget into your workflow, you can schedule automated updates for your applications, ensuring that you never miss a critical upgrade.
  • Version Management: With winget, you can easily switch between different versions of a software package, allowing you to test compatibility or revert to a previous version if needed.
  • Dependency Handling: winget automatically manages dependencies, ensuring that all required components are installed or updated alongside the main application.

🧾 Conclusion

Staying up-to-date with the latest software versions is vital for a seamless and secure computing experience. Windows Package Manager (winget) simplifies the process of upgrading applications on Windows systems, allowing you to effortlessly manage your software ecosystem from the command line.

By following the steps outlined in this guide, you can ensure that your applications are always optimized, secure, and equipped with the latest features. Embrace the power of winget and unlock a new level of efficiency in application management.

✨ Our Gratitude and Next Steps

We sincerely hope this guide has been useful and enriching for your projects! Thank you for dedicating your time to this content.

Your Feedback is Invaluable:

Have any questions, suggestions, or corrections? Feel free to share them in the comments below! Your contribution helps us refine this content for the entire ElCircuits community.

If you found this guide helpful, spread the knowledge!

🔗 Share This Guide

Best regards,
The ElCircuits Team ⚡

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RJ45 Ethernet Cable Color Standard – T568A and T568B – EIA/TIA Standard https://www.elcircuits.com/rj45-ethernet-cable-color-standard-t568a-t568b-eia-tia-standard/ https://www.elcircuits.com/rj45-ethernet-cable-color-standard-t568a-t568b-eia-tia-standard/#respond Sat, 31 Dec 2022 16:14:00 +0000 https://elcircuits.com/rj45-ethernet-cable-color-standard-t568a-and-t568b-eia-tia-standard/ Demystifying RJ45 Ethernet Cable Color Standards: T568A vs. T568B in EIA/TIA Standard 🌐 You can read this article in: Português | Español Back in the past, a few decades ago, there were no standard regulations for the wiring of structured networks in the IT industry. The standards for these networks were decided upon by the companies or professionals responsible for installing the wired networks. This lack of standardization made it difficult to maintain or modify the network structures of companies, especially when done by another company or professional. To address this issue and with the increasing growth of technology and infrastructure for wired networks, the TIA/EIA standards were developed. In 1991, the TIA/EIA, 568A and 568B standards were introduced by the Electronic Industries Association (EIA) and the Telecommunications Industry Association (TIA) to standardize the electrical and electronic connections of network cables and their connections. The 568A standard was revised in 1994 to include Category 4 and Category 5 (UTP – Unshielded Twisted Pair) wiring, and in 2001 the EIA/TIA 568-B standard was published, covering a total of 10 different categories. 📖 T568A and T568B Categories There are two different categories of TIA/EIA standards, commonly known as RJ45 Standard B and RJ45 Standard A, which are actually T568A and T568B. These are termination standards used by Internet Providers, Backbone Infrastructure, Industrial Wiring Infrastructure, and also by small businesses and residential wiring. However, the difference between these two categories is that the orange/white and green/white pairs, which correspond to pins 1 & 2, 3 & 6, are exchanged in the assembly of the cable, as illustrated in Figure 2 below. Fig.2-Standard-Colors-Cable-Network-RJ45-T-568A-T-568B-Standard-EIA/TIA It is worth remembering that even with changes to the set of pairs, when the same standards are used at both ends of the cable, the results will be the same, with direct connections at their ends. In Table 1 below, we have the configuration of the pins and their corresponding colors, following the two standards side by side for comparison. You may be interested in: Winget Upgrade Command: How to Update Applications on Windows Using CMD! How Switched Mode Power Supply Works – SMPS – ATX 📌 Sequential Table of Colors and Pinning Standard T-568A and T-568B Pin T-568A T-568B 1 White/Green White/Orange 2 Green Orange 3 White/Orange White/Green 4 Blue Blue 5 White/Blue White/Blue 6 Orange Green 7 White/Brown White/Brown 8 Brown Brown The T568A standard is the widely accepted standard because it is compatible with most wiring schemes and is what I recommend for most applications. ℹ️ Crossover Cable Crossover cables, use the T-568A and T-568B standards at each end as illustrated in Figure 3 below. These categories of cables are used when we need to, for example, connect two computers or laptops without using a router or switch. Fig. 3 – Connection of Crossover Cable Standards T-568A and T-568B It is worth remembering that if you are still using older equipment, you should not connect crossover cables between the computer and a switch or router, as in some cases it can damage the equipment. Now if you work with newer, more modern equipment, they use AUTO MDI/MDIX technology, which automatically identifies the connected interface and even if it is of the crossover type, there is no problem, as it automatically configures itself. ✨ Our Gratitude and Next Steps We sincerely hope this guide has been useful and enriching for your projects! Thank you for dedicating your time to this content. Your Feedback is Invaluable: Have any questions, suggestions, or corrections? Feel free to share them in the comments below! Your contribution helps us refine this content for the entire ElCircuits community. If you found this guide helpful, spread the knowledge! 🔗 Share This Guide Best regards, The ElCircuits Team ⚡

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Demystifying RJ45 Ethernet Cable Color Standards: T568A vs. T568B in EIA/TIA Standard

Demystifying RJ45 Ethernet Cable Color Standards: T568A vs. T568B in EIA/TIA Standard

🌐 You can read this article in: Português | Español

Back in the past, a few decades ago, there were no standard regulations for the wiring of structured networks in the IT industry.

The standards for these networks were decided upon by the companies or professionals responsible for installing the wired networks.

This lack of standardization made it difficult to maintain or modify the network structures of companies, especially when done by another company or professional.

To address this issue and with the increasing growth of technology and infrastructure for wired networks, the TIA/EIA standards were developed.

In 1991, the TIA/EIA, 568A and 568B standards were introduced by the Electronic Industries Association (EIA) and the Telecommunications Industry Association (TIA) to standardize the electrical and electronic connections of network cables and their connections.

The 568A standard was revised in 1994 to include Category 4 and Category 5 (UTP – Unshielded Twisted Pair) wiring, and in 2001 the EIA/TIA 568-B standard was published, covering a total of 10 different categories.

📖 T568A and T568B Categories

There are two different categories of TIA/EIA standards, commonly known as RJ45 Standard B and RJ45 Standard A, which are actually T568A and T568B.

These are termination standards used by Internet Providers, Backbone Infrastructure, Industrial Wiring Infrastructure, and also by small businesses and residential wiring.

However, the difference between these two categories is that the orange/white and green/white pairs, which correspond to pins 1 & 2, 3 & 6, are exchanged in the assembly of the cable, as illustrated in Figure 2 below.

Standard Colors Cable Network RJ45 T-568A T-568B Standard EIA/TIA

Fig.2-Standard-Colors-Cable-Network-RJ45-T-568A-T-568B-Standard-EIA/TIA

It is worth remembering that even with changes to the set of pairs, when the same standards are used at both ends of the cable, the results will be the same, with direct connections at their ends.

In Table 1 below, we have the configuration of the pins and their corresponding colors, following the two standards side by side for comparison.

You may be interested in:

📌 Sequential Table of Colors and Pinning Standard T-568A and T-568B

Pin T-568A T-568B
1 White/Green White/Orange
2 Green Orange
3 White/Orange White/Green
4 Blue Blue
5 White/Blue White/Blue
6 Orange Green
7 White/Brown White/Brown
8 Brown Brown

The T568A standard is the widely accepted standard because it is compatible with most wiring schemes and is what I recommend for most applications.

ℹ️ Crossover Cable

Crossover cables, use the T-568A and T-568B standards at each end as illustrated in Figure 3 below. These categories of cables are used when we need to, for example, connect two computers or laptops without using a router or switch.

Connection of Crossover Cable Standards T-568A and T-568B

Fig. 3 – Connection of Crossover Cable Standards T-568A and T-568B

It is worth remembering that if you are still using older equipment, you should not connect crossover cables between the computer and a switch or router, as in some cases it can damage the equipment.

Now if you work with newer, more modern equipment, they use AUTO MDI/MDIX technology, which automatically identifies the connected interface and even if it is of the crossover type, there is no problem, as it automatically configures itself.

✨ Our Gratitude and Next Steps

We sincerely hope this guide has been useful and enriching for your projects! Thank you for dedicating your time to this content.

Your Feedback is Invaluable:

Have any questions, suggestions, or corrections? Feel free to share them in the comments below! Your contribution helps us refine this content for the entire ElCircuits community.

If you found this guide helpful, spread the knowledge!

🔗 Share This Guide

Best regards,
The ElCircuits Team ⚡

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How ATX Power Supplies Work – Diagnose Problems in 10 Easy Steps https://www.elcircuits.com/how-atx-power-supplies-work-diagnose-problems/ https://www.elcircuits.com/how-atx-power-supplies-work-diagnose-problems/#respond Mon, 14 Sep 2020 23:33:00 +0000 https://elcircuits.com/how-atx-power-supplies-work-learn-to-diagnose-problems-in-10-simple-steps/ How ATX Power Supplies Work: Learn to Diagnose Problems in 10 Simple Steps Hello, electronics enthusiasts! 🌐 You can read this article in: Português | Español ATX Switched-Mode Power Supplies have some interesting features when compared to standard Switched Mode Power Supply (SMPS). In the ATX power supply, there are different output voltages: + 12V, + 5V, + 3.3V, -12V, -5V and 5VSB. There are some variations on these types of Power Supply, but in the general context, the pattern is this. The way SMPS work is pretty much the same. They control the output voltage by opening and closing the switching circuit so as to maintain the opening and closing time of this circuit, that is, the width of pulses and their frequencies, to obtain the desired voltage. There are separate processes for everything to work smoothly. So let’s see the modular diagram to unravel the steps of these processes so that we can step by step understanding. This is the block in modules divided by steps, to improve our understanding. This is the block in modules divided by steps, to improve our understanding. There are distinct processes that need to work together for everything to function properly. Let’s take a look at the modular diagram to break down each step and better understand how these processes unfold. There are 10 basic steps involved in operating an ATX power supply, although there are additional underlying modules that are intrinsically connected to these steps. We won’t go into too much depth here, but for those who want a more detailed explanation, we’ve included a video in Portuguese at the end of this article, created by our partner site. So let’s understand these steps: Step 1 – Transient Filter Is through that stage that the voltage coming from your network, whether 110 or 220V AC should enter. Fig. 2 – How SMPS Works – Transient Filter This voltage goes through basic protection, fuse, that if some step ahead short, the fuse opens, avoiding to burst everything ahead, and in the same line, we have NTC (Negative Temperature Coefficient), It’s a surge current limiter, in series with the electric circuit. In its value of ohmic resistance decreases as its temperature rises, its initial resistance is approximately 15 Ohms, which we can understand by the Ohms’ law, advantages one has in using it in series after the power supply switches it on lowers its resistance to approximately 0.5 Ohms. EMI filters also exist, these are used to avoid high-frequency noise and a huge amount of harmonics generated by the switches that can propagate through the electrical network and cause interference in nearby electronic equipment. Step 2 – Primary Rectification Fig. 3 – How SMPS Works – Primary Rectification In this stage we find the rectifier bridge or an arrangement formed by four common diodes, which has the function of rectifying a full-wave voltage, that is, rectifying an alternating electric current (AC), transforming it into a continuous electric current (DC). Step 3 – Filtration Fig. 4 – How SMPS Works – Filtration After rectification, the DC signal, Ripples (which are small variations, capacitors are responsible for filtering and stabilization IE, a decrease of these Ripples, in the rectified voltage, this voltage rises to something around 300V, which are used in power switches, this part is fundamental to the correct stabilization of source especially if its source is of high power. Step 4 – Power Switches Fig. 5 – How SMPS Works – Power Switches These switches can be Bipolar Power Transistors such as MOSFETs, or any other type, but they differ from ordinary transistors, by the type of operation in which these transistors work. These switching transistors dissipate less power than a common working transistor in a linear source because they work as a switch on/off at high speeds, depending on the design of the source, they suffer variations that are usually between 20Khz to 100kHz. They are directly responsible for the output voltage, and stability of that voltage, through of the commands received by the Control Circuit. Step 5 – Output Transformer Fig. 6 – How SMPS Works – Output Transformer The transformer is a high-frequency CHOPPER TRANSFORMER, and they also work with alternating voltage, when passing through the switches voltage will be a square wave AC type PWM, but with high frequency, not with the same frequency of 60Hz of the input voltage. The switches work on two different levels, High and Low, when it is HIGH, voltage goes through it normally, causing a constant voltage level in the input of coil of the transformer, action of these transistors, goes from HIGH to LOW very quickly. This will induce the winding to have the necessary voltages according to the winding and frequency placed on these switches. Step 6 – Fast Rectifier Fig. 7 – How SMPS Works – Fast Rectifier With the voltage generated by high-frequency switches, a diode is needed to meet this demand, so we have the high-speed diodes called SCHOTTKY DIODES or fast recovery diodes since ordinary diodes would not be able to work with high-frequency voltages. Step 7 – Output Filters Fig. 8 – How SMPS Works – Output Filters The inductor – This has the function of eliminating high-frequency harmonics so that they do not travel to the equipment that will be fed, imagine if these harmonics pass to a micro-controller for example, could cause undue loads and errors of reading in the control processes. And the Capacitors – They are the ones that filter and stabilize the voltage at the output, avoiding ripples and instabilities at the output. 🔗 Related Content If you liked this project, you might also be interested in these other articles: Symmetrical SMPS Switched Power Supply using IR2153 and IRF840 – 2x50V 350W + PCB Adjustable Switching Power Supply 5.1 to 40V, 2.5 Amp using L4960 + PCB Switched Power Supply SMPS 13.8V 10A using IR2153 IC and IRF840, with PCB How to Modify an ATX Power Supply to 13.6V, 22 Amperes Mini Switching Power

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How ATX Power Supplies Work: Learn to Diagnose Problems in 10 Simple Steps

How ATX Power Supplies Work: Learn to Diagnose Problems in 10 Simple Steps

Hello, electronics enthusiasts!

🌐 You can read this article in: Português | Español

ATX Switched-Mode Power Supplies have some interesting features when compared to standard Switched Mode Power Supply (SMPS).

In the ATX power supply, there are different output voltages: + 12V, + 5V, + 3.3V, -12V, -5V and 5VSB. There are some variations on these types of Power Supply, but in the general context, the pattern is this.

The way SMPS work is pretty much the same.

They control the output voltage by opening and closing the switching circuit so as to maintain the opening and closing time of this circuit, that is, the width of pulses and their frequencies, to obtain the desired voltage.

There are separate processes for everything to work smoothly. So let’s see the modular diagram to unravel the steps of these processes so that we can step by step understanding.

This is the block in modules divided by steps, to improve our understanding.

This is the block in modules divided by steps, to improve our understanding.

This is the block in modules divided by steps, to improve our understanding.

There are distinct processes that need to work together for everything to function properly. Let’s take a look at the modular diagram to break down each step and better understand how these processes unfold.

There are 10 basic steps involved in operating an ATX power supply, although there are additional underlying modules that are intrinsically connected to these steps.

We won’t go into too much depth here, but for those who want a more detailed explanation, we’ve included a video in Portuguese at the end of this article, created by our partner site.

So let’s understand these steps:

Step 1 – Transient Filter

Is through that stage that the voltage coming from your network, whether 110 or 220V AC should enter.

How SMPS Works - Transient Filter

Fig. 2 – How SMPS Works – Transient Filter

This voltage goes through basic protection, fuse, that if some step ahead short, the fuse opens, avoiding to burst everything ahead, and in the same line, we have NTC (Negative Temperature Coefficient), It’s a surge current limiter, in series with the electric circuit.

In its value of ohmic resistance decreases as its temperature rises, its initial resistance is approximately 15 Ohms, which we can understand by the Ohms’ law, advantages one has in using it in series after the power supply switches it on lowers its resistance to approximately 0.5 Ohms.

EMI filters also exist, these are used to avoid high-frequency noise and a huge amount of harmonics generated by the switches that can propagate through the electrical network and cause interference in nearby electronic equipment.

Step 2 – Primary Rectification

How SMPS Works - Primary Rectification

Fig. 3 – How SMPS Works – Primary Rectification

In this stage we find the rectifier bridge or an arrangement formed by four common diodes, which has the function of rectifying a full-wave voltage, that is, rectifying an alternating electric current (AC), transforming it into a continuous electric current (DC).

Step 3 – Filtration

How SMPS Works - Filtration

Fig. 4 – How SMPS Works – Filtration

After rectification, the DC signal, Ripples (which are small variations, capacitors are responsible for filtering and stabilization IE, a decrease of these Ripples, in the rectified voltage, this voltage rises to something around 300V, which are used in power switches, this part is fundamental to the correct stabilization of source especially if its source is of high power.

Step 4 – Power Switches

How SMPS Works - Power Switches

Fig. 5 – How SMPS Works – Power Switches

These switches can be Bipolar Power Transistors such as MOSFETs, or any other type, but they differ from ordinary transistors, by the type of operation in which these transistors work.

These switching transistors dissipate less power than a common working transistor in a linear source because they work as a switch on/off at high speeds, depending on the design of the source, they suffer variations that are usually between 20Khz to 100kHz.

They are directly responsible for the output voltage, and stability of that voltage, through of the commands received by the Control Circuit.

Step 5 – Output Transformer

How SMPS Works - Output Transformer

Fig. 6 – How SMPS Works – Output Transformer

The transformer is a high-frequency CHOPPER TRANSFORMER, and they also work with alternating voltage, when passing through the switches voltage will be a square wave AC type PWM, but with high frequency, not with the same frequency of 60Hz of the input voltage.

The switches work on two different levels, High and Low, when it is HIGH, voltage goes through it normally, causing a constant voltage level in the input of coil of the transformer, action of these transistors, goes from HIGH to LOW very quickly.

This will induce the winding to have the necessary voltages according to the winding and frequency placed on these switches.

Step 6 – Fast Rectifier

How SMPS Works - Fast Rectifier

Fig. 7 – How SMPS Works – Fast Rectifier

With the voltage generated by high-frequency switches, a diode is needed to meet this demand, so we have the high-speed diodes called SCHOTTKY DIODES or fast recovery diodes since ordinary diodes would not be able to work with high-frequency voltages.

Step 7 – Output Filters

How SMPS Works - Output Filters

Fig. 8 – How SMPS Works – Output Filters

The inductor – This has the function of eliminating high-frequency harmonics so that they do not travel to the equipment that will be fed, imagine if these harmonics pass to a micro-controller for example, could cause undue loads and errors of reading in the control processes.

And the Capacitors – They are the ones that filter and stabilize the voltage at the output, avoiding ripples and instabilities at the output.

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Step 8 – Driver Transformer

How SMPS Works - Driver Transformer

Fig. 9 – How SMPS Works – Driver Transformer

The driver transformer in this case is nothing less than one responsible for traffic of information coming from the Integrated Circuit Controller, and pass these commands to the switches, so as to bring insulation or electrical decoupling between primary and secondary.

In this topology there is a pair of transistors that also switch the Transformer Drive to receive these PWM pulses from the driver IC, passing this information to the power step we already saw in Step 4.

Step 9 – PWM control

How SMPS Works - PWM control

Fig. 10 – How SMPS Works – PWM control

The brain of a switched source is its PWM controller, they are dedicated integrated circuits, to perform that work, but they do not work alone, there are also current sensors, which also vary from source to source, but it is very likely that you will find in its source TL341 IC, it has the aspect of a transistor, but, it is not a transistor, it is very popular for its cost-benefit.

This circuit is connected to the output of the power supply, receives Feedback, and directs the voltage information to the IC that controls the oscillator that generates a rectangular signal whose pulse width is controlled and sent to the Transformer Drive that sends these commands to the step of power.

If the power at the output to raise the voltage tends to drop, the circuit activates the instantaneous correction in the pulse width of the switching transistors and the voltage keeps stabilized.

Step 10 – Primary Power Supply VSB

How SMPS Works - Primary Power Supply VSB

Fig. 11 – How SMPS Works – Primary Power Supply VSB

VSB stands for Voltage Standby, which is technically a power supply that keeps its output active, whenever the source power cord is connected to the mains, its capacity is approximately 2 Amps, and this depends on the total power of the source.

This active voltage line is to keep the circuit active and is necessary for when the power on button is activated through PSON, which is the start of the power supply, then the oscillator will activate the power line also powers the motherboard hardware to activate peripherals via software, keyboard, network, and so on.

For those who want a more in-depth, step-by-step explanation, we recommend watching the detailed video (in Portuguese) available on our partner’s YouTube channel. It complements this article with visual support and additional insights.

[Watch the original video in Portuguese in video below or – Click Here

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