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Introduction to Thermodynamics: Transferring Energy from Here to There · LearnSpace
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Introduction to Thermodynamics: Transferring Energy from Here to There

Курс от University of Michigan
Начальный≈ 15.8 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

COURSE DESCRIPTION This course provides an introduction to the most powerful engineering principles you will ever learn - Thermodynamics: the science of transferring energy from one place or form to another place or form. We will introduce the tools you need to analyze energy systems from solar panels, to engines, to insulated coffee mugs. More specifically, we will cover the topics of mass and energy conservation principles; first law analysis of control mass and control volume systems; properties and behavior of pure substances; and applications to thermodynamic systems operating at steady state conditions. COURSE FORMAT The class consists of lecture videos, which average 8 to 12 minutes in length. The videos include integrated In-Video Quiz questions. There are also quizzes at the end of each section, which include problems to practice your analytical skills that are not part of video lectures. There are no exams. GRADING POLICY Each question is worth 1 point. A correct answer is worth +1 point. An incorrect answer is worth 0 points. There is no partial credit. You can attempt each quiz up to three times every 8 hours, with an unlimited number of total attempts. The number of questions that need to be answered correctly to pass are displayed at the beginning of each quiz. Following the Mastery Learning model, students must pass all 8 practice quizzes with a score of 80% or higher in order to complete the course. ESTIMATED WORKLOAD If you follow the suggested deadlines, lectures and quizzes will each take approximately ~3 hours per week each, for a total of ~6 hours per week. TARGET AUDIENCE Basic undergraduate engineering or science student. FREQUENTLY ASKED QUESTIONS - What are the prerequisites for taking this course? An introductory background (high school or first year college level) in chemistry, physics, and calculus will help you be successful in this class. -What will this class prepare me for in the academic world? Thermodynamics is a prerequisite for many follow-on courses, like heat transfer, internal combustion engines, propulsion, and gas dynamics, to name a few. -What will this class prepare me for in the real world? Energy is one of the top challenges we face as a global society. Energy demands are deeply tied to the other major challenges of clean water, health, food resources, and poverty. Understanding how energy systems work is key to understanding how to meet all these needs around the world. Because energy demands are only increasing, this course also provides the foundation for many rewarding professional careers.

Навыки, которые вы освоите

Engineering CalculationsMechanical EngineeringThermal ManagementEngineeringPhysicsEngineering AnalysisPhysical ScienceEnvironmental IssueEnergy and UtilitiesPlant Operations and ManagementChemistryProcess AnalysisElectric Power Systems

Программа курса

8 модулей · 59 учебных материалов

01Week 19 материалов

Introduction to the Course

01.01 - Welcome and Introduction to the CourseВидеоSyllabusЧтениеHelp us learn more about you!Чтение01.02 - Drivers for Changing the Way We Use EnergyВидео

Учитесь у экспертов

Margaret Wooldridge, Ph.D.

Arthur F. Thurnau Professor

Introduction to Thermodynamics: Transferring Energy from Here to There
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Обучение на Coursera

≈ 15.8 ч

8 модулей

Язык: Английский

Субтитры: Арабский, Французский, Бенгальский, Украинский, Китайский (Китай), Греческий, Итальянский, Бразильский португальский, Вьетнамский, Нидерландский, Корейский, Немецкий, Пушту, Урду, Русский, Тайский, Индонезийский, Шведский, Турецкий, Азербайджанский, Испанский, Дари, Хинди, Японский, Казахский, Венгерский, Польский

Часть программы вашего университета
01.03 - The Units of Energy and Power and the Sectors of Energy Supply and DemandВидео
01.04 - Defining Open and Closed SystemsВидео
01.05 - Thermodynamic PropertiesВидео
01.06 - Conservation of Energy for Closed SystemsВидео

Assignment

Week 1Задание
02Week 27 материалов

Work and Heat Transfer, Phase Diagrams, the Conservation of Energy for Closed Systems

02.01 - Work Transfer MechanismsВидео02.02 - Example: the Work Required to Compress AirВидео02.03 - The First Law of Thermodynamics for a Closed SystemВидео02.04 - Heat TransferВидео02.05 - Phase DiagramsВидео02.06 - 2D Phase DiagramsВидео

Assignment

Week 2Задание
03Week 37 материалов

Thermodynamic Properties, State Relations, the Ideal Gas Model, the Incompressible Substance model, Conservation of Mass for Open Systems

03.01 - Thermodynamic Properties and the Saturation RegionВидео03.02 - Internal Energy, Enthalpy, and the Specific HeatsВидео03.03 - The Incompressible Substance and the Ideal Gas Models for Equations of StateВидео03.04 - More Outcomes of the Ideal Gas ModelВидео03.05 - Conservation of Mass for Open SystemsВидео03.06 - Steam Turbine Example - Part 1Видео

Assignment

Week 3Задание
04Week 47 материалов

Conservation of Energy for Open Systems, Flow Work, Flow Devices and Examples

04.01 - Flow Work and the Conservation of EnergyВидео04.02 - Steady State, Steady Flow DevicesВидео04.03 - Another Example: Compressing WaterВидео04.04 - Steam Turbine Example - Part 2Видео04.05 - Example of Cooling a Microprocessor - Starting the AnalysisВидео04.06 - Steam Tables DiscussionВидео

Assignment

Week 4Задание
05Week 56 материалов

Transient Analysis and the Conservation of Mass and Energy; Power, Refrigeration and Heat Pump Cycles

05.01 - Example of Cooling a Microprocessor - Finishing the AnalysisВидео05.02 - Transient Analysis - Setting Up the Governing EquationsВидео05.03 - Transient Analysis - Reformulating the ProblemВидео05.04 - Cycle Analysis - Power CyclesВидео05.05 - Refrigeration and Heat Pump CyclesВидео

Assignment

Week 5Задание
06Week 67 материалов

The 2nd Law of Thermodynamics, Carnot and Rankine Power Cycles

06.01 - A Conceptual Introduction to the Second Law of ThermodynamicsВидео06.02 - The Carnot CycleВидео06.03 - The Rankine Power PlantВидео06.04 - A Brief Introduction to Ideal Performance and EntropyВидео06.05 - More Advanced Methods to Increase the Efficiency of Rankine Power PlantsВидео06.06 - More Discussion on the Concepts and Theory of the 2nd Law of ThermodynamicsВидео

Assignment

Week 6Задание
07Week 77 материалов

Carnot and Rankine Cycles Continued, Co-generation and Waste Heat Recovery

07.01 - Example of Analysis of a Rankine Power Plant - Part 1: Assigning the State Information (or Pin the Tail on the Donkey)Видео07.02 - Example of Analysis of a Rankine Power Plant - Part 2: Finding ALL the State InformationВидео07.03 - Example of Analysis of a Rankine Power Plant - Part 3: Putting it all Together, Cycle AnalysisВидео07.04 - Example of Analysis of a Rankine Power Plant - Part 4: What the Results Tell UsВидео07.05 - How we can Dramatically Improve Thermal Efficiencies - An Introduction to Waste Heat RecoveryВидео07.06 - Let's Look Inside a Jet EngineВидео

Assignment

Week 7Задание
08Week 89 материалов

Comparing Energy Carriers

08.01 - Air Standard Power Cycles - The Brayton CycleВидео08.02 - More Waste Heat Recovery - Combined CyclesВидео08.03 - Carbon Reserves and Global WarmingВидео08.04 -Energy CarriersВидео08.05 - Setting the Bar for PerformanceВидео08.06 -The Hardware of Our Internal Combustion EnginesВидео

Assignment

Week 8ЗаданиеPost-course SurveyЧтениеKeep Learning with Michigan OnlineЧтение