COMSOL Complete basic course on Electrical Circuit

所在平台: Udemy

课程主页: https://www.udemy.com/course/electricalcircuit/

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课程名称:COMSOL电路基础完整课程 课程概述:欢迎参加本课程,这是一个针对使用COMSOL Multiphysics®进行电路模拟的初学者友好而强大的课程,专门围绕AC/DC包中的电路模块(Electric Circuit)设计。无论您是学生、研究人员还是专业人士,这门课程都是您掌握电气电路模拟基础的门户,使用业内领先的多物理场平台。该模块一般较少讨论。 关于讲师:Bibhatsu Kuiri是一位多学科研究人员和教育工作者,专注于多物理场模拟、材料建模和AI增强设计自动化。他的工作涵盖光子晶体、固态电池、光通信、超级电容器、玻璃系统和传感器等模拟密集的领域。 课程亮点: - 在《Nature Materials》、《Results in Physics》和《Optical and Quantum Electronics》等顶级期刊发表过研究成果。 - 在光子学、材料科学和AI驱动建模等领域有超过30篇国际发表的论文。 - 在Udemy上创建了最受欢迎的COMSOL课程之一,涵盖107个国家的学员。 - 超过9200名学员在全球范围内接受了模拟和科学计算的培训。 - 拥有最大的COMSOL Multiphysics在线社区,在Facebook上有10,300多名活跃成员。 - 在IIT和其他大学教授纳米物理学和多物理场建模的新经验。 课程要求: - 安装并持有COMSOL Multiphysics软件与AC/DC模块(电路接口)许可证。 - 基本理解电容器、感应器、电压和电流概念(高中水平即可)。 - 对学习模拟和通过建模探索电路行为的真正兴趣。 学习目标: - 模拟涉及电阻器(R)、电感器(L)和电容器(C)的电路。 - 理解DC和AC电路模拟的基础理论。 - 在COMSOL电路接口中添加电压源(DC和AC)。 - 完整的全波整流电路模拟工作流程。 - 配置和评估电路组件,如电阻器、电容器和电感器。 - 比较模拟结果与解析计算,进行误差分析。 - 理解将AC输入转化为DC的过程。 课程特点: - 所有讲座经过专业编辑,清晰易懂。 - 提供步骤逐步解释,适合各类学习者。 - 定期更新课程内容,基于学习者反馈改进。 - 提供实践应用而不仅仅是理论。 适合人群: - 初学者或希望结构化入门COMSOL Multiphysics®或电路模拟的学生和专业人士。 - 希望数字化模拟现实世界RLC电路的工程与物理学习者。 - 希望填补理论与实际模拟之间差距的自学者。 课程格式: - 课件平衡概念清晰与实际模拟。每个模块包含简短的理论概述、逐步模拟教程及评估练习,避免常见错误的小贴士。 注意:本课程并不适合已经熟悉COMSOL Multiphysics®电路模块的学习者,它专为完全初学者或希望结构化入门的学习者设计。 欢迎参加课程!希望见到您!

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Welcome to the most beginner-friendly yet powerful course on Electrical Circuit Simulation using COMSOL Multiphysics®, specifically designed around the Electric Circuit (CIR) module within the AC/DC package. Whether you're a student, researcher, or professional, this course is your gateway to mastering the fundamentals of electrical circuit simulation using the industry-leading multiphysics platform. This module is generally less discussed, About the InstructorI'm Bibhatsu Kuiri, a multidisciplinary researcher and educator with expertise in multiphysics simulation, material modeling, and AI-enhanced design automation. My work spans simulation-heavy domains such as photonic crystals, solid-state batteries, optical communication, supercapacitors, glassy systems, and sensors (check my google scholar page for more). Over the years, I have used a range of tools and methodologies including COMSOL Multiphysics, Ansys, MATLAB, Python, and DFT software suites like VASP and Quantum ESPRESSO to design, optimize, and validate systems across physics and engineering domains. My experience with accelerated design workflows, especially using AI, machine learning, and data-driven approaches, has allowed me to solve complex engineering problems more efficiently, often integrating theoretical, computational, and experimental insights. In addition, I've developed several research tools and custom software from scratch for sensor design, simulation optimization, and automated analysis workflows. I have also taught nanophysics and multiphysics modeling to graduate students at IITs and other universities.HighlightsPublished in top journals including Nature Materials, Results in Physics, and Optical and Quantum ElectronicsOver 30+ international publications across fields like photonics, materials science, and AI-driven modelingCreated one of the most enrolled COMSOL courses on Udemy, followed in 107+ countriesTrained 9,200+ students globally in simulation and scientific computingFounder of the largest COMSOL Multiphysics online community in Facebook with 10,300+ active membersExperience in university-level teaching (IITs and public universities) in nanophysics and multiphysics modelingDeveloped custom software tools for sensor modeling, design automation, and optimizationCollaborative research across domains: batteries, semiconductors, glassy systems, communication networks, and deep learningRequirementsCOMSOL Multiphysics software with the AC/DC Module (Electric Circuit interface) installed and licensedBasic understanding of capacitors, inductors, and voltage/current concepts (high-school level is enough)A genuine interest in learning simulation:) and exploring circuit behavior through modeling.What You Will LearnHow to simulate electrical circuits involving resistors (R), inductors (L), and capacitors (C)The fundamental theory behind DC and AC circuit simulationHow to add voltage sources (both DC and AC) in COMSOL's Electric Circuit interfaceThe complete simulation workflow for a full-wave rectifier circuitHow to incorporate and configure circuit components like resistors, capacitors, and inductorsHow to evaluate simulation results, including current, voltage, and potential dropHow to compare simulated results with analytical calculationsPerforming error analysis and identifying reasons for discrepancies in simulation outputTechniques to convert AC input to DC and understand the process both theoretically and through simulationBest practices and tips for error-free and efficient COMSOL simulationsContinuous instructor support throughout the course for any questions or technical issuesWhat's Special About This Course?All lectures are professionally edited for clarity and high-quality learningClean presentations and step-by-step explanations suitable for both slow and fast learnersDesigned for a focused, distraction-free learning experience-no unnecessary fluffTaught by the author of top rated COMSOL Multiphysics coursesRegularly updated with new lectures and improvements based on learner feedbackIncludes full simulation workflows and practical applications, not just theoryDirect support from the instructor to guide you if you get stuck anywhere in the courseWho This Course Is ForStudents, researchers, or professionals new to COMSOL Multiphysics® or electrical circuit simulationEngineering and physics learners who want to simulate real-world RLC circuits digitallyAnyone seeking a structured introduction to the Electric Circuit (CIR) module in COMSOL®Self-learners looking to bridge the gap between theory and practical simulationCourse FormatThe course is structured to balance conceptual clarity and hands-on simulation. Each module includes:A short theory overviewStep-by-step simulation tutorials in COMSOLExercises or demonstrations with result evaluationOccasional comparison with analytical valuesTips and best practices to avoid common mistakesPlease note: This course is not intended for learners who are already familiar with the Electric Circuit (CIR) module in COMSOL Multiphysics®. It is designed for complete beginners or those who want a structured introduction.Hope to see you in the course! Welcome, all:)DisclaimerThis course is not affiliated with, endorsed by, or sponsored by COMSOL AB. COMSOL Multiphysics® is a registered trademark of COMSOL AB. All references to COMSOL Multiphysics® software are for educational purposes only.For official COMSOL support, training and licensing, refer to the official software provider.

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