Passive Components Blog
No Result
View All Result
  • Home
  • NewsFilter
    • All
    • Aerospace & Defence
    • Antenna
    • Applications
    • Automotive
    • Capacitors
    • Circuit Protection Devices
    • electro-mechanical news
    • Filters
    • Fuses
    • Inductors
    • Industrial
    • Integrated Passives
    • inter-connect news
    • Market & Supply Chain
    • Market Insights
    • Medical
    • Modelling and Simulation
    • New Materials & Supply
    • New Technologies
    • Non-linear Passives
    • Oscillators
    • Passive Sensors News
    • Resistors
    • RF & Microwave
    • Telecommunication
    • Weekly Digest

    AI Servers Demand is Driving Tantalum Capacitor Price Hikes

    DMASS Reports Europe Components Up 9.8% in Q4 2025

    Bourns Extends PPTC Resettable High‑Power, High‑Voltage Protection Fuses

    Mastering Galvanic Isolation in Power Electronics: Methods, Standards, and Implementation

    Bourns Releases Compact Automotive Isolation Power Transformer

    Wk 9 Electronics Supply Chain Digest

    VINATech Targets AI Data Center Supercapacitor Boom

    Littelfuse NANO2 415 SMD Fuse Wins 2025 Product of the Year

    TDK Introduces 350V Safety Film Capacitors for Compact EMI Suppression

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
    • Feedthrough
    • Derating
    • Dielectric Constant
    • New Products
    • Market Reports
  • VideoFilter
    • All
    • Antenna videos
    • Capacitor videos
    • Circuit Protection Video
    • Filter videos
    • Fuse videos
    • Inductor videos
    • Inter-Connect Video
    • Non-linear passives videos
    • Oscillator videos
    • Passive sensors videos
    • Resistor videos

    2026 Power Magnetics Design Trends: Flyback, DAB and Planar

    Enabling Software‑Defined Vehicle Architectures: Automotive Ethernet and Zonal Smart Power

    Calculating Resistance Value of a Flyback RC Snubber 

    One‑Pulse Characterization of Nonlinear Power Inductors

    Thermistor Linearization Challenges

    Coaxial Connectors and How to Connect with PCB

    PCB Manufacturing, Test Methods, Quality and Reliability

    Transformer Behavior – Current Transfer and Hidden Feedback

    Choosing the Right Capacitor: The Importance of Accurate Measurements

    Trending Tags

    • Capacitors explained
    • Inductors explained
    • Resistors explained
    • Filters explained
    • Application Video Guidelines
    • EMC
    • New Products
    • Ripple Current
    • Simulation
    • Tantalum vs Ceramic
  • Knowledge Blog
  • DossiersNew
  • Suppliers
    • Who is Who
  • PCNS
    • PCNS 2025
    • PCNS 2023
    • PCNS 2021
    • PCNS 2019
    • PCNS 2017
  • Events
  • Home
  • NewsFilter
    • All
    • Aerospace & Defence
    • Antenna
    • Applications
    • Automotive
    • Capacitors
    • Circuit Protection Devices
    • electro-mechanical news
    • Filters
    • Fuses
    • Inductors
    • Industrial
    • Integrated Passives
    • inter-connect news
    • Market & Supply Chain
    • Market Insights
    • Medical
    • Modelling and Simulation
    • New Materials & Supply
    • New Technologies
    • Non-linear Passives
    • Oscillators
    • Passive Sensors News
    • Resistors
    • RF & Microwave
    • Telecommunication
    • Weekly Digest

    AI Servers Demand is Driving Tantalum Capacitor Price Hikes

    DMASS Reports Europe Components Up 9.8% in Q4 2025

    Bourns Extends PPTC Resettable High‑Power, High‑Voltage Protection Fuses

    Mastering Galvanic Isolation in Power Electronics: Methods, Standards, and Implementation

    Bourns Releases Compact Automotive Isolation Power Transformer

    Wk 9 Electronics Supply Chain Digest

    VINATech Targets AI Data Center Supercapacitor Boom

    Littelfuse NANO2 415 SMD Fuse Wins 2025 Product of the Year

    TDK Introduces 350V Safety Film Capacitors for Compact EMI Suppression

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
    • Feedthrough
    • Derating
    • Dielectric Constant
    • New Products
    • Market Reports
  • VideoFilter
    • All
    • Antenna videos
    • Capacitor videos
    • Circuit Protection Video
    • Filter videos
    • Fuse videos
    • Inductor videos
    • Inter-Connect Video
    • Non-linear passives videos
    • Oscillator videos
    • Passive sensors videos
    • Resistor videos

    2026 Power Magnetics Design Trends: Flyback, DAB and Planar

    Enabling Software‑Defined Vehicle Architectures: Automotive Ethernet and Zonal Smart Power

    Calculating Resistance Value of a Flyback RC Snubber 

    One‑Pulse Characterization of Nonlinear Power Inductors

    Thermistor Linearization Challenges

    Coaxial Connectors and How to Connect with PCB

    PCB Manufacturing, Test Methods, Quality and Reliability

    Transformer Behavior – Current Transfer and Hidden Feedback

    Choosing the Right Capacitor: The Importance of Accurate Measurements

    Trending Tags

    • Capacitors explained
    • Inductors explained
    • Resistors explained
    • Filters explained
    • Application Video Guidelines
    • EMC
    • New Products
    • Ripple Current
    • Simulation
    • Tantalum vs Ceramic
  • Knowledge Blog
  • DossiersNew
  • Suppliers
    • Who is Who
  • PCNS
    • PCNS 2025
    • PCNS 2023
    • PCNS 2021
    • PCNS 2019
    • PCNS 2017
  • Events
No Result
View All Result
Passive Components Blog
No Result
View All Result

Design of High Precision Integrated Resistive Voltage Dividers

29.9.2025
Reading Time: 4 mins read
A A

The paper “A New Approach to the Design of High Precision Integrated Resistive Voltage Dividers” was presented by Stephen Oxley, TT Electronics, Bedlington, UK at the 5th PCNS Passive Components Networking Symposium 9-12th September 2025, Seville, Spain as paper No. 3.3.

Introduction

This article presents a new methodology for designing high precision integrated resistive voltage dividers capable of handling high voltages without the prohibitive costs and complexity of conventional precision enhancement techniques.

RelatedPosts

Advances in the Environmental Performance of Polymer Capacitors

How to Manage Supercapacitors Leakage Current and Self Discharge 

Qualification of Commercial Supercapacitors for Space Applications

Traditional designs rely on two resistive elements on a single substrate, but when high voltage requirements are added, maintaining low temperature and voltage coefficients becomes challenging.

The proposed approach, called the Cascaded Balanced Divider (CBD), leverages multi-stage balanced resistor networks to achieve superior precision using standard thick film materials and processes.

Key Points

  1. Conventional two-element dividers struggle with high voltage applications due to mismatched TCRs, VCRs, and long-term drift.
  2. Existing mitigation strategies involve improved materials, direct-write processes, or component matching and joining—each with cost and yield penalties.
  3. The new CBD design uses multiple cascaded stages of identical resistor elements to distribute voltage, reduce sensitivity to inter-stage mismatch, and achieve high precision.
  4. Initial test results show that CBD achieves TCVR and VCVR comparable to or better than top-performing conventional dividers without special manufacturing processes.
  5. Future work will focus on AC performance, trimming strategies, optimized layouts, and life stability under load.

Extended Summary

Conventional high voltage resistive dividers are comprised of a high voltage leg (R1) and a low voltage leg (R2), and the voltage division ratio depends on the ratio of these resistances. Achieving ratios in the hundreds or thousands introduces challenges in thick film technologies, which inherently have higher TCRs and are less stable than metal film technologies. Manufacturers have attempted to improve accuracy through material improvements, direct-write fabrication, and component matching. While effective, these methods increase cost and complexity.

Conventional high voltage divider

To address these limitations, the paper introduces the Cascaded Balanced Divider (CBD) concept. Borrowing from the principles of the Kelvin Varley circuit, CBD divides the high voltage in multiple stages, each built from identical resistor elements arranged to form balanced ratios. By cascading these stages, the overall voltage ratio approximates the product of the stage ratios, while in-stage matching maintains high precision. Inter-stage variations in TCR or drift have minimal impact due to the design’s intrinsic insensitivity to these factors, assuming inter-stage loading is controlled.

Two stage cascade balanced divider

Simulation and experimental results support the CBD approach. A two-stage 196:1 prototype achieved TCVR better than ±5 ppm/°C and VCVR around −0.2 ppm/V, demonstrating that ratio error is significantly lower than the absolute error of individual resistors. The paper also outlines layout and manufacturing considerations, such as aligning identical elements, using standard thick film inks, and minimizing fine trimming in the high voltage stages to preserve stability. Test results indicate that CBD dividers can meet or exceed the precision of top-tier conventional dividers without resorting to expensive matching or specialized processes.

Future improvements will focus on AC performance characterization, implementing coarse and fine trimming strategies, optimizing layouts for reduced power density and voltage stress, and conducting long-term drift studies under different load conditions. These steps aim to validate CBD as a cost-effective, high-performance solution for applications like energy metering, electric vehicles, and medical devices.

Conclusion

The Cascaded Balanced Divider method presents a significant advancement in high precision high voltage divider design. By leveraging cascaded multi-element stages, the approach achieves superior temperature and voltage stability using standard thick film processes, eliminating the need for costly matching or specialized fabrication. Initial prototypes confirm improved stability and pave the way for practical, manufacturable products suitable for a wide range of demanding applications.

3_3_TT Electronics PCNS 2025 PaperDownload

Related

Source: PCNS

Recent Posts

DMASS Reports Europe Components Up 9.8% in Q4 2025

3.3.2026
7

Bourns Extends PPTC Resettable High‑Power, High‑Voltage Protection Fuses

2.3.2026
8

Mastering Galvanic Isolation in Power Electronics: Methods, Standards, and Implementation

2.3.2026
8

Bourns Releases Compact Automotive Isolation Power Transformer

2.3.2026
6

VINATech Targets AI Data Center Supercapacitor Boom

26.2.2026
34

Littelfuse NANO2 415 SMD Fuse Wins 2025 Product of the Year

26.2.2026
16

TDK Introduces 350V Safety Film Capacitors for Compact EMI Suppression

26.2.2026
34

Samsung Launches Worlds First Automotive 47uF 4V MLCC in 0805 Size

24.2.2026
31

Samsung Three Pillars MLCC Strategy for AI Hardware Topology

24.2.2026
81

Upcoming Events

Mar 21
All day

PSMA Capacitor Workshop 2026

Apr 21
16:00 - 17:00 CEST

Heatsink Solutions: Thermal Management in electronic devices

May 19
16:00 - 17:00 CEST

Designing Qi2 Wireless Power Systems: Practical Development and EMC Optimization

View Calendar

Popular Posts

  • Buck Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • Boost Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • Flyback Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • LLC Resonant Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • MLCC Manufacturers Consider Price Increase as AI Demand Outpaces Supply

    0 shares
    Share 0 Tweet 0
  • Ripple Current and its Effects on the Performance of Capacitors

    3 shares
    Share 3 Tweet 0
  • Dual Active Bridge (DAB) Topology

    0 shares
    Share 0 Tweet 0
  • What is a Dielectric Constant and DF of Plastic Materials?

    4 shares
    Share 4 Tweet 0
  • MLCC and Ceramic Capacitors

    0 shares
    Share 0 Tweet 0
  • MLCC Case Sizes Standards Explained

    0 shares
    Share 0 Tweet 0

Newsletter Subscription

 

Passive Components Blog

© EPCI - Leading Passive Components Educational and Information Site

  • Home
  • Privacy Policy
  • EPCI Membership & Advertisement
  • About

No Result
View All Result
  • Home
  • Knowledge Blog
  • PCNS

© EPCI - Leading Passive Components Educational and Information Site

This website uses cookies. By continuing to use this website you are giving consent to cookies being used. Visit our Privacy and Cookie Policy.
Go to mobile version