<?xml version="1.0" encoding="UTF-8"?><rss xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:content="http://purl.org/rss/1.0/modules/content/" xmlns:atom="http://www.w3.org/2005/Atom" version="2.0"><channel><title><![CDATA[CircuitCopper]]></title><description><![CDATA[EMI/EMC pre-compliance testing, PCB design and electronics development. Fast debugging and reliable engineering support.]]></description><link>https://www.circuitcopper.com/blog</link><generator>RSS for Node</generator><lastBuildDate>Sun, 05 Apr 2026 08:26:54 GMT</lastBuildDate><atom:link href="https://www.circuitcopper.com/blog-feed.xml" rel="self" type="application/rss+xml"/><item><title><![CDATA[Conducted Emission Test and Improvement on SEPIC Topology Charger (CISPR 11)]]></title><description><![CDATA[A recurring observation during EMC validation is straightforward: if conducted emissions fail, radiated emissions will also fail in most cases. The root cause is identical — excessive high-frequency current loops and poor control of switching node parasitic. This case focuses on a SEPIC-based charger that failed conducted emission limits per CISPR 11. Figure 1: Schematic 1. Hot Loop Analysis of the DC/DC Stage The dominant emission source in a SEPIC converter is the high di/dt switching loop....]]></description><link>https://www.circuitcopper.com/post/conducted-emission-test-and-improvement-on-sepic-topology-charger-cispr-11</link><guid isPermaLink="false">69d11861535e7bcd269ccd4e</guid><pubDate>Sat, 04 Apr 2026 14:29:53 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/3b8f87_ab4b125c44a5449296ad6bc157f202a5~mv2.png/v1/fit/w_974,h_434,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>CircuitCopper</dc:creator></item><item><title><![CDATA[Analyzing EMC Redesign Case Studies Effectively: Insights for Industrial and Automotive Electronics]]></title><description><![CDATA[When we approach the task of analyzing EMC redesign case studies, it is essential to maintain a clear and methodical perspective. Electromagnetic compatibility (EMC) is a critical aspect in the development of industrial and automotive electronics, where ensuring devices operate without mutual interference is paramount. By carefully examining case studies, we can extract valuable lessons that help improve design processes, reduce time to market, and ensure compliance with stringent standards....]]></description><link>https://www.circuitcopper.com/post/analyzing-emc-redesign-case-studies-effectively-insights-for-industrial-and-automotive-electronics</link><guid isPermaLink="false">69cb552c138134f81729e39e</guid><pubDate>Wed, 01 Apr 2026 07:48:06 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/3b8f87_bd871517ed2c4d07873d36fbeb6fc872~mv2.png/v1/fit/w_1000,h_768,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>CircuitCopper</dc:creator></item><item><title><![CDATA[Essential EMC PCB Design Tips for Reliable Electronic Products]]></title><description><![CDATA[When developing complex electronic products, especially for industrial and automotive applications, ensuring electromagnetic compatibility (EMC) is crucial. EMC compliance guarantees that devices operate correctly without causing or suffering from electromagnetic interference (EMI). Achieving this requires careful attention to printed circuit board (PCB) design, as the PCB layout significantly influences the electromagnetic behavior of the final product. In this article, we will explore...]]></description><link>https://www.circuitcopper.com/post/essential-emc-pcb-design-tips-for-reliable-electronic-products</link><guid isPermaLink="false">69c8bc67495b61304352e0fa</guid><pubDate>Sun, 29 Mar 2026 05:58:22 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/3b8f87_ee675687180848b0ae7682f0533a9332~mv2.png/v1/fit/w_1000,h_768,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>CircuitCopper</dc:creator></item><item><title><![CDATA[How to Get Accurate PCB Design Quotes: A Practical Guide for Industrial and Automotive Electronics]]></title><description><![CDATA[When developing complex electronic products, especially in industrial and automotive sectors, obtaining precise and reliable quotes for printed circuit board (PCB) design is essential. Accurate quotes help in budgeting, planning, and ensuring that the final product meets all technical and regulatory requirements. In this article, we will explore the key factors that influence PCB design quotes, how to prepare your project details for quoting, and practical tips to communicate effectively with...]]></description><link>https://www.circuitcopper.com/post/how-to-get-accurate-pcb-design-quotes-a-practical-guide-for-industrial-and-automotive-electronics</link><guid isPermaLink="false">6999ab8b33aebccb48665586</guid><pubDate>Sat, 21 Feb 2026 13:50:51 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/3b8f87_7ff11839d66945dbb5484479eb0f86de~mv2.png/v1/fit/w_1000,h_768,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>CircuitCopper</dc:creator></item><item><title><![CDATA[Battery Selection for an NB-IoT Motor Control Project]]></title><description><![CDATA[Task Overview The goal is to select the most suitable type of rechargeable battery for a pack rated at approximately 24 V  with a capacity of about 10 Ah . The battery will be used very infrequently to power a DC motor: the motor is started roughly once every few months  and runs for 15–20 minutes , after which the battery remains idle with no load for long periods . Key requirements are high energy density  and long service life , with a strong emphasis on retaining charge and preserving...]]></description><link>https://www.circuitcopper.com/post/battery-selection-for-an-nb-iot-motor-control-project</link><guid isPermaLink="false">698f4c27e46957565bf73ea0</guid><pubDate>Fri, 13 Feb 2026 16:43:48 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/3b8f87_a226ef06edd54c1e8408c7d3669bbe67~mv2.png/v1/fit/w_1000,h_1000,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>CircuitCopper</dc:creator></item><item><title><![CDATA[When AC Meets DC: An EMC Redesign Case Study]]></title><description><![CDATA[Introduction A field failure investigation revealed a recurring and costly issue: a Wi-Fi module and the main MCU were burning out intermittently in a production device. The failures were not random. They were triggered by external disturbances, particularly electrostatic discharge (ESD) events near a solenoid cable. Both components were powered from independent low-voltage rails (3.3V domain), yet both were failing under transient stress conditions. This case study describes how AC/DC layout...]]></description><link>https://www.circuitcopper.com/post/when-ac-meets-dc-an-emc-redesign-case-study</link><guid isPermaLink="false">698f34836e0eff1a4858f625</guid><pubDate>Fri, 13 Feb 2026 14:53:26 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/3b8f87_5089261e7a314c36935cd4e885d9b8b8~mv2.png/v1/fit/w_974,h_743,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>CircuitCopper</dc:creator></item><item><title><![CDATA[PCB Design Guidelines for Ensuring EMC]]></title><description><![CDATA[Modern PCB design must take electromagnetic compatibility (EMC) into account from the very beginning. Below is a comprehensive set of rules and recommendations aimed at reducing electromagnetic interference (EMI) and improving immunity to it. The guidelines are organized by topic — from high-power supplies and high-speed digital signals to sensitive analog circuits, RF designs, and ESD protection measures. Each rule includes a clear title, a detailed explanation with the underlying physics...]]></description><link>https://www.circuitcopper.com/post/pcb-design-guidelines-for-ensuring-emc</link><guid isPermaLink="false">698e0cd97b236987751c148b</guid><pubDate>Thu, 12 Feb 2026 17:47:08 GMT</pubDate><dc:creator>CircuitCopper</dc:creator></item></channel></rss>