Applied Thermodynamics-ATD- Update 1 with QP and solution

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课程名称:应用热力学 - ATD - 更新版1及其解答 课程概述: 亲爱的朋友们,本课程进行了更新,新增了一份大学试卷及其解答视频和资源文件。该内容将极大帮助同学们在掌握该科目时建立信心,能够更好地应对考试。在第12节中可以查看相关内容。祝大家学习进步,考试顺利!我是一名热力学课程讲师B.S. Racheti,致力于为机械工程(SE)学生及广泛机械系学生提供实用的热力学课程。凭借我在工业和教学领域的经验,我努力将知识用简单易懂的方式呈现给大家,并通过实例加深理解。 课程目标: 本课程的主要目标是教会学生解题方法、识别并使用热力学单位与符号,以及阐述热力学的第一和第二定律。此外,还探讨熵、焓、可逆性与不可逆性的概念,并将这些定律应用于各种气体过程和循环。学习内容还包括蒸汽特性、干燥分数的测量、蒸汽过程以及热力学蒸汽循环的性能估算,并熟悉心理图、心理过程及人类舒适条件。 课程内容: - 第一单元:热力学定律 包括热力学简介、基本定义回顾、热力学的零定律、宏观与微观方法、状态假设、状态、过程与热力学循环、第一定律及其应用等。 - 第二单元:熵 讨论熵的性质、克劳修斯不等式、理想气体的熵变化等。 - 第三单元:热力学循环 涉及气体动力循环(如卡诺循环、奥托循环、柴油循环)、制冷循环等。 - 第四单元:纯物质的性质 包括蒸汽的形成与性质、蒸汽表的使用、蒸汽卡路里计的研究等。 - 第五单元:蒸汽发生器 介绍燃料、燃烧所需的氧气/空气量、低压锅炉的分类及结构等基础知识。 - 第六单元:心理学 讲解心理学及其相关术语、心理图、心理过程和人体热力学。 课程成果: 完成课程后,学员能够解答相关主题中的各种数值题,应用热力学定律于实际过程,计算热、功及其他重要热力学属性,评估各种热力学气体功率循环与气体制冷循环的性能,以及蒸汽动力循环和蒸汽压缩循环的情况。 本课程为学生提供扎实的热力学知识基础以及应对考试的技巧,是理工科学生理想的学习资源。

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• Dear friends, updating this course with addition of one university question paper with its solution in the form of Video as well as resource file. This will be definitely helpful for gaining confidence in the subject and also will be able to write / solve any question paper. You will see it in Section 12. So why wait, go fast and study listen write the same.So best luck for your studies and exam.Dear students I am B.S. Racheti continuing to add new courses based on Thermodynamics which is useful to SE (Mech) students and also useful as a reference to all mechanical students.•As I am having experience of Industry and teaching, it is my pleasure to blend my knowledge and put up in front of you in easier language and easier ways with examples.•For higher undergraduate studies learners have to refer many books and references and also they have other subjects, term works, classes etc. So it gets very difficult to study each subject considering time constraint in the semester pattern exams.•For this I had collected data from various Text books, reference books web sites etc. so as to optimize the contents as per syllabus mentioned below. For any lecturer / Professor this is the general practice to collect information and to deliver the lectures so as the learners get benefited and can score maximum.Course Objectives: Main objective of the course is to understand the method of solving numericals.Identify and use units and notations in Thermodynamics.State and illustrate first and second laws of Thermodynamics.Explain the concepts of entropy, enthalpy, reversibility and irreversibility.Apply the first and second laws of Thermodynamics to various gas processes and cycles.To get conversant with properties of steam, dryness fraction measurement, vapor processes and Thermodynamic vapor cycles, performance estimation.To get conversant with Psychrometric Charts, Psychrometric processes, human comfort conditions.Course contents:Unit I Laws of thermodynamics•Introduction of thermodynamics, Review of basic definitions, Zeroth law of thermodynamics, Macro and Microscopic Approach, State Postulate, State, Process and Thermodynamic Cycles, First law of thermodynamics, Joules experiment, Applications of first law to flow and non flow processes and cycles. Steady flow energy equation and its application to different devices. Equivalence of Clausius and Kelvin Planck Statement, PMM I and II, Concept of Reversibility and Irreversibility.Unit II Entropy•Entropy as a property, Clausius inequality, Principle of increase of Entropy, Change of entropy for an ideal gas and pure substance.•Ideal Gas•Ideal Gas definition Gas Laws: Boyle's law, Charle's law, Avagadro's Law, Equation of State, Ideal Gas constant and Universal Gas constant, Ideal gas processes- on P-V and T-S diagrams Constant Pressure, Constant Volume, Isothermal, Adiabatic, Polytropic, Throttling Processes, Calculations of heat transfer, work done, internal energy. Change in entropy, enthalpy.Unit III Thermodynamic cycles•Gas Power Cycles: Air Standard Cycle, Efficiency and Mean Effective Pressure, Carnot Cycle, Otto Cycle, Diesel cycle, Dual cycle, Comparison of cycles, Brayton cycle, Gas Refrigeration Cycle: Reversed Carnot, Bell Coleman Cycle.•Availability: Available and unavailable energy, concept of availability, availability of heat source at constant temperature and variable temperature, Availability of non flow and steady flow systems, Helmholtz and Gibbs function, irreversibility and second law efficiency.Unit IV Properties of Pure substances•Formation of steam, Phase changes, Properties of steam, Use of Steam Tables, Study of P-v,•T-s and Mollier diagram for steam, Dryness fraction and its determination, Study of steam calorimeters (Barrel, Separating, Throttling and combined)•Non-flow and Steady flow vapour processes, Change of properties, Work and heat transfer.•Thermodynamic Vapour Cycle Vapour Power Cycles: Carnot cycle, Rankine cycle, Comparison of Carnot cycle and Rankine cycle, Efficiency of Rankine cycle, Relative efficiency, Effect of superheat, boiler and condenser pressure on performance of Rankine cycle, Vapour Refrigeration Cycles: Reversed Carnot Vapor Cycle, Vapor Compression Cycle and representation of cycle on P-h and T-s diagram, Refrigerating effect, Compressor power and COP estimation (Numerical treatment using R134a only and enthalpy Cp, Cv data should be provided in tabulated form).Unit V Steam Generators•Introduction to fuels, Theoretical amount of Oxygen / Air required for combustion. Stoichiometric Air: Fuel ratio, Excess air, lean and rich mixtures, Stoichiometric A: F ratio for petrol (No Numerical Treatment on fuels and combustion, only basic definitions and terminologies to be covered).•Classification, Constructional details of low pressure boilers, Features of high pressure (power) boilers, Introduction to IBR, Boiler performance calculations-Equivalent evaporation, Boiler efficiency Energy balance, Boiler draught (natural draught numerical only).Unit VI Psychrometry•Psychrometry and Psychrometric Properties, Basic Terminologies, Psychrometric Relations, Psychrometric Chart, Psychrometric Processes, Thermodynamics of Human Body, Comfort Conditions (Numerical treatment using Psychrometric chart only).Course Outcomes: On completion of the course, learner will be able to -Solve any type of numericals from above topics.Apply various laws of thermodynamics to various processes and real systems.Apply the concept of Entropy, Calculate heat, work and other important thermodynamic properties for various ideal gas processes.Estimate performance of various Thermodynamic gas power cycles and gas refrigeration cycle and availability in each case.Estimate the condition of steam and performance of vapour power cycle and vapour compression cycle.Estimate Stoichiometric air required for combustion, performance of steam generators and natural draught requirements in boiler plants.

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