• Product
  • Suppliers
  • Manufacturers
  • Solutions
  • Free tools
  • Knowledges
  • Experts
  • Communities
Search


What is the reason for not using two windings at far distances in transformers?

Encyclopedia
Encyclopedia
Field: Encyclopedia
0
China

In transformer design, it is typically not advisable to use widely separated windings (i.e., primary and secondary windings with a significant physical distance between them). Here are the main reasons for avoiding widely separated windings:

1. Reduced Magnetic Coupling Efficiency

Magnetic Coupling: Transformers work on the principle of electromagnetic induction, where alternating current in the primary winding generates an alternating magnetic field, which induces a voltage in the secondary winding. If the distance between the primary and secondary windings is large, the magnetic field strength will significantly weaken, leading to poor magnetic coupling efficiency.

Leakage Flux: Widely separated windings result in more leakage flux, which is the portion of the magnetic field that fails to couple effectively with the secondary winding and instead dissipates into the surrounding environment, reducing the transformer's efficiency.

2. Increased Parasitic Capacitance

Parasitic Capacitance: When the distance between windings increases, the parasitic capacitance between the windings also increases. Parasitic capacitance creates unwanted current paths at high frequencies, leading to energy losses and interference.

Frequency Response: Parasitic capacitance affects the frequency response of the transformer, particularly in high-frequency applications, where increased parasitic capacitance can cause signal attenuation and distortion.

3. Increased Manufacturing Difficulty and Cost

Manufacturing Difficulty: Widely separated windings require more complex manufacturing processes, increasing production difficulty and cost.

Material Usage: Widely separated windings necessitate more insulating materials and support structures, increasing material costs and weight.

4. Increased Size and Weight

Size and Weight: Widely separated windings increase the overall size and weight of the transformer, making it less suitable for miniaturization and lightweight design.

Installation Space: Larger size and weight limit the installation space for the transformer, especially in compact devices.

5. Thermal Management Issues

Thermal Management: Widely separated windings can lead to uneven heat distribution, increasing the difficulty of thermal management. Localized overheating can affect the performance and lifespan of the transformer.

Cooling: Closely packed windings are easier to cool effectively using heat sinks or other cooling mechanisms.

6. Electromagnetic Interference

Electromagnetic Interference (EMI): Widely separated windings may generate stronger electromagnetic interference (EMI), affecting the proper operation of nearby electronic devices.

Shielding: Additional shielding measures may be required to reduce EMI, further increasing cost and complexity.

Summary

In transformer design, avoiding widely separated windings is essential to improve magnetic coupling efficiency, reduce leakage flux and parasitic capacitance, lower manufacturing difficulty and cost, minimize size and weight, enhance thermal management, and reduce electromagnetic interference. These factors collectively ensure the efficiency, reliability, and cost-effectiveness of the transformer. 

Give a tip and encourage the author!
Recommended
How to Identify Internal Faults in a Transformer?
How to Identify Internal Faults in a Transformer?
Measure DC resistance: Use a bridge to measure the DC resistance of each high- and low-voltage winding. Check whether the resistance values among phases are balanced and consistent with the manufacturer’s original data. If phase resistance cannot be measured directly, line resistance may be measured instead. The DC resistance values can indicate whether the windings are intact, whether there are short circuits or open circuits, and whether the contact resistance of the tap changer is normal. If
Felix Spark
11/04/2025
What are the requirements for inspecting and maintaining a transformer's no-load tap changer?
What are the requirements for inspecting and maintaining a transformer's no-load tap changer?
The tap changer operating handle shall be equipped with a protective cover. The flange at the handle shall be well sealed with no oil leakage. Locking screws shall securely fasten both the handle and the drive mechanism, and the handle rotation shall be smooth without binding. The position indicator on the handle shall be clear, accurate, and consistent with the tap voltage regulation range of the winding. Limit stops shall be provided at both extreme positions. The insulating cylinder of the t
Leon
11/04/2025
How to Overhaul a Transformer Conservator (Oil Pillow)?
How to Overhaul a Transformer Conservator (Oil Pillow)?
Overhaul Items for Transformer Conservator:1. Ordinary-Type Conservator Remove the end covers on both sides of the conservator, clean rust and oil deposits from inner and outer surfaces, then apply insulating varnish to the inner wall and paint to the outer wall; Clean components such as the dirt collector, oil level gauge, and oil plug; Check that the connecting pipe between the explosion-proof device and the conservator is unobstructed; Replace all sealing gaskets to ensure good sealing with n
Felix Spark
11/04/2025
Why is it difficult to increase the voltage level?
Why is it difficult to increase the voltage level?
The solid-state transformer (SST), also known as a power electronic transformer (PET), uses voltage level as a key indicator of its technological maturity and application scenarios. Currently, SSTs have reached voltage levels of 10 kV and 35 kV on the medium-voltage distribution side, while on the high-voltage transmission side, they remain in the stage of laboratory research and prototype validation. The table below clearly illustrates the current status of voltage levels across different appli
Echo
11/03/2025
Related Products
Send inquiry
Download
Get the IEE Business Application
Use the IEE-Business app to find equipment, obtain solutions, connect with experts, and participate in industry collaboration anytime, anywhere—fully supporting the development of your power projects and business.