{"id":35373,"date":"2025-04-10T19:47:19","date_gmt":"2025-04-10T17:47:19","guid":{"rendered":"http:\/\/mead1.upatras.gr\/?post_type=courses&#038;p=35373"},"modified":"2025-09-02T09:50:38","modified_gmt":"2025-09-02T07:50:38","slug":"engineering-thermodynamics-ii","status":"publish","type":"courses","link":"https:\/\/mead.upatras.gr\/en\/courses\/engineering-thermodynamics-ii\/","title":{"rendered":"Engineering Thermodynamics II"},"content":{"rendered":"<p><strong>COURSE CONTENT<\/strong><\/p>\n<p><strong>Exergy<\/strong>, Reversible Work and Irreversibility, Second-Law Efficiency, Exergy Change of a System, Exergy Transfer, The Decrease of Exergy Principle, Exergy Destruction, Exergy Balance: Closed Systems, Control Volumes.<\/p>\n<p><strong>Gas Power Cycles,\u00a0<\/strong>Basic Considerations, The Carnot Cycle and Its Value in Engineering, Air-Standard Assumptions, Reciprocating Engines, Otto-Diesel Cycles, Stirling and Ericsson Cycles, Brayton Cycle, Ideal Jet-Propulsion Cycles, Second-Law Analysis.<\/p>\n<p><strong>Vapor and Combined Power Cycles,\u00a0<\/strong>The Carnot Vapor Cycle, Rankine Cycle: Energy Analysis of the Ideal Rankine Cycle, The Ideal Reheat &amp; Regenerative Rankine Cycles, Second-Law Analysis, Cogeneration, Combined Gas\u2013Vapor Power Cycles.<\/p>\n<p><strong>Refrigeration Cycles,\u00a0<\/strong>The Reversed Carnot Cycle, The Ideal &amp; Actual Vapor-Compression Refrigeration Cycle, Heat Pump Systems, Innovative Vapor-Compression Refrigeration Systems.<\/p>\n<p><strong>Thermodynamic Property Relations,\u00a0<\/strong>The Maxwell Relations, The Clapeyron Equation, General Relations for du, dh, ds, Cv, and Cp,\u00a0 The Joule-Thomson Coefficient, Enthalpy, Internal Energy, Entropy Changes of Real Gases.<\/p>\n<p><strong>Gas Mixtures<\/strong>, Composition of a Gas Mixture: Mass and Mole Fractions, P-v-T Behavior of Gas Mixtures: Ideal and Real Gases, Gas\u2013Vapor Mixtures and Air-Conditioning.<\/p>\n<p><strong>Chemical Reactions,\u00a0<\/strong>Fuels and Combustion, Theoretical and Actual Combustion Processes, Enthalpy of Formation and Enthalpy of Combustion, First-Law Analysis of Reacting Systems, Adiabatic Flame Temperature, Second-Law Analysis of Reacting systems.<\/p>\n<p><strong>Compressible Flow,\u00a0<\/strong>Stagnation Properties, Speed of Sound and Mach Number, One-Dimensional Isentropic Flow, Property Relations for Isentropic Flow of Ideal Gases, Isentropic Flow through Nozzles.<\/p>\n<p>&nbsp;<\/p>\n<p><strong>LEARNING OUTCOMES<\/strong><\/p>\n<p>Upon successful completion of this course the student will develop the following skills:<\/p>\n<ul>\n<li>Energy analysis and design of cycles and power and cooling systems.<\/li>\n<li>Implementation of thermodynamic laws and mass, energy, entropy and exergy balances for the design and optimization of energy production and consumption systems.<\/li>\n<li>Use of Thermodynamic relationships for calculations of thermodynamic properties of substances used in technological processes.<\/li>\n<li>Analysis of thermodynamic processes including gas mixtures, chemical reactions and high speed flow systems.<\/li>\n<li>Experimental exploration in laboratory exercises aims to bring trainees into contact with measurement devices, systems and procedures as well as methodologies for the processing of their results and their evaluation.<\/li>\n<\/ul>\n<p>The above knowledge is necessary and prerequisite for further courses in Mechanical and Aeronautics Engineering, such as that of Heat Transfer, ICE, Gas Turbines and Steam Turbines, etc.<\/p>\n","protected":false},"featured_media":11551,"template":"","meta":{"_acf_changed":false},"msc_category":[],"courses_cat":[1661],"class_list":["post-35373","courses","type-courses","status-publish","has-post-thumbnail","hentry","courses_cat-4th-semester-compulsory"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.2 - 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