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¸£Àû±ÆÕ¾ Catalog 2025-2026

Mechanical & Aerospace Engr (MAE)

²Ñ´¡·¡Ìý200ÌýÌýIntroduction to Mechanical Engineering DesignÌýÌý(1 credit hours)ÌýÌý

Introduction to mechanical engineering and its application in professional practice. Includes mechanical engineering vocabulary, measurement concepts, safety training, demonstration of basic machine components and systems, dissection of mechanical engineering devices, simple drawing and sketching, 3d printing, technical communication, design, creation of Online Portfolio. (5-week course)

Restriction: Sophomore standing in Mechanical Engineering

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý201ÌýÌýThermal-Fluid SciencesÌýÌý(3 credit hours)ÌýÌý

An integrated introduction to the concept of energy and the laws governing the transfers and transformations of energy and momentum. Emphasis on thermodynamic properties and the First and Second Law analysis of systems and control volumes, internal flows and heat transfer in simple geometries.

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý206ÌýÌýEngineering StaticsÌýÌý(3 credit hours)ÌýÌý

Basic concepts of forces in equilibrium. Distributed forces, frictional forces. Inertial properties. Application to machines, structures, and systems. Credit is not allowed for both ²Ñ´¡·¡Ìý206 and °ä·¡Ìý214.

Prerequisite: C or better in both ²Ñ´¡Ìý241 and ±Ê³ÛÌý205

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý208ÌýÌýEngineering DynamicsÌýÌý(3 credit hours)ÌýÌý

Kinematics and kinetics of particles in rectangular, cylindrical, and curvilinear coordinate systems; energy and momentum methods for particles; kinetics of systems of particles; kinematics and kinetics of rigid bodies in two and three dimensions; motion relative to rotating coordinate systems.

Prerequisite: ²Ñ´¡Ìý242 and C- or better in ²Ñ´¡·¡Ìý206 or °ä·¡Ìý214

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý214ÌýÌýSolid MechanicsÌýÌý(3 credit hours)ÌýÌý

Concepts and theories of internal force, stress, strain, and strength of structural element under static loading conditions. Constitutive behavior for linear elastic structures. Deflection and stress analysis procedures for bars, beams, and shafts.Introduction to matrix analysis of structures.

Prerequisites: ²Ñ´¡Ìý242 and C- or better in (²Ñ´¡·¡Ìý206 or °ä·¡Ìý214)

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý250ÌýÌýIntroduction to Aerospace EngineeringÌýÌý(1 credit hours)ÌýÌý

The objective of this course is to introduce students to the fundamental concepts associated with aerospace engineering. This will be done through lectures focused on fluid flow, structures, dynamics, and complex system design. Students will also engage in hands-on mini-projects that will provide a design experience. Final efforts will culminate in a design portfolio project. 14AE BS Majors only.

Typically offered in Fall only

²Ñ´¡·¡Ìý251ÌýÌýAerospace Vehicle PerformanceÌýÌý(3 credit hours)ÌýÌý

Introduction to the problem of performance analysis in aerospace engineering. Aircraft performance in gliding, climbing, level, and turning flight. Calculation of vehicle take-off and landing distance, range and endurance. Elementary performance design problems. Introduction to space flight.

Prerequisite: C or better in both ²Ñ´¡Ìý241 and ±Ê³ÛÌý205; Co-requisite: °ä³§°äÌý113 or CSC 114 or ²Ñ´¡Ìý116

Typically offered in Fall only

²Ñ´¡·¡Ìý252ÌýÌýAerodynamics IÌýÌý(3 credit hours)ÌýÌý

Fundamentals of perfect fluid theory with applications to incompressible flows over airfoils, wings, and flight vehicle configurations.

Prerequisites: ²Ñ´¡Ìý242 and C- or better in ²Ñ´¡·¡Ìý251

Typically offered in Spring only

²Ñ´¡·¡Ìý253ÌýÌýExperimental Aerodynamics IÌýÌý(1 credit hours)ÌýÌý

Subsonic wind tunnel, instrumentation, data acquisition techniques, technical report preparation. Experiments involve pressure and force/moment measurements of various aerospace vehicle components with supplemental flow visualization.

Corequisites: ²Ñ´¡·¡Ìý252

Typically offered in Spring only

²Ñ´¡·¡Ìý300ÌýÌýMAE Transfer to SuccessÌýÌý(1 credit hours)ÌýÌý

This course will provide an overview of departmental policies and procedures, organizations, and resources available for enhancing the academic success of new transfer students in Mechanical & Aerospace Engineering. Lectures and discussion from departmental representatives will focus on traits of an engineer, availability of cooperative education, career services, campus student organizations and resources. Emphasis will be placed on acclimating students through teamwork and academic achievement within the first year of transfer.

Prerequisite: New MAE transfer students enrolled in their first semester at NC State

Typically offered in Fall only

²Ñ´¡·¡Ìý302ÌýÌýEngineering Thermodynamics IIÌýÌý(3 credit hours)ÌýÌý

Continuation of Engineering Thermodynamics I with emphasis on the analysis of power and refrigeration cycles and the application of basic principles to engineering problems with systems involving mixtures of ideal gases, psychrometrics, nonideal gases, chemical reactions, combustion, chemical equilibrium cycle analysis, and one-dimensional compressible flow.

Prerequisite: (°ä³§°äÌý113 or CSC 114 or ²Ñ´¡Ìý116) and C- or better in ²Ñ´¡·¡Ìý201

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý305ÌýÌýMechanical Engineering Laboratory IÌýÌý(1 credit hours)ÌýÌý

Theory and practice of measurement and experimental data collection. Laboratory evaluation and demonstration of components of the generalized measurement system and their effects on the final result. Applications of basic methods of data analysis aswell as basic instrumentation for sensing, conditioning and displaying experimental qualities. (Instruction and practice in technical report writing.)

Prerequisite: ±Ê³ÛÌý208 and C- or better in either ²Ñ´¡·¡Ìý206 or °ä·¡Ìý214

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý306ÌýÌýMechanical Engineering Laboratory IIÌýÌý(1 credit hours)ÌýÌý

Continuation of ²Ñ´¡·¡Ìý305 into specific types of measurements. Students evaluate and compare different types of instrumentation for measuring the same physical quantity on the basis of cost, time required, accuracy, etc. (Oral and written presentation of technical material).

Prerequisite: ²Ñ´¡·¡Ìý305; Co-requisite: ²Ñ´¡·¡Ìý308

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý308ÌýÌýFluid MechanicsÌýÌý(3 credit hours)ÌýÌý

Development of the basic equations of fluid mechanics in general and specialized form. Application to a variety of topics including fluid statics; inviscid, incompressible fluid flow; design of Fluid dynamic system.

Prerequisite: ²Ñ´¡Ìý242 and C- or better in ²Ñ´¡·¡Ìý208

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý310ÌýÌýHeat Transfer FundamentalsÌýÌý(3 credit hours)ÌýÌý

Analysis of steady state and transient one and multidimensional heat conduction employing both analytical methods and numerical techniques. Integration of principles and concepts of thermodynamics and fluid mechanics to the development of practicalconvective heat transfer relations relevant to mechanical engineers. Heat transfer by the mechanism of radiation heat transfer.

Prerequisite: ²Ñ´¡Ìý341 and C- or better in ²Ñ´¡·¡Ìý201

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý315ÌýÌýFundamentals of VibrationsÌýÌý(3 credit hours)ÌýÌý

The introductory course to vibrations. Lectures focus on free and forced vibration of discrete systems and free vibration of continuous systems. Students learn to apply vibration theory to the analysis and design of machines and/or mechanical components.

Prerequisite: ²Ñ´¡Ìý341 and C- or better in ²Ñ´¡·¡Ìý208

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý316ÌýÌýStrength of Mechanical ComponentsÌýÌý(3 credit hours)ÌýÌý

Analysis and design of mechanical components based on deflection, material, static strength and fatigue requirements. Typical components include beams, shafts, pressure vessels and bolted and welded joints. Classical and modern analysis and design techniques. Computer analysis using the finite element method. Material and manufacturing considerations in design.

Prerequisite: C- or better in ²Ñ´¡·¡Ìý214 or CE 313

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý342ÌýÌýIntroduction to Automotive EngineeringÌýÌý(3 credit hours)ÌýÌý

Fundamental aspects of automotive engineering. Examines various automotive systems [engine, brakes, suspension etc.] as well as their interactions in such areas as safety and performance. Current practices and development for the future.

Prerequisites: (C- or better in ²Ñ´¡·¡Ìý201) and ²Ñ´¡·¡Ìý308 and ²Ñ´¡·¡Ìý315

Typically offered in Spring only

²Ñ´¡·¡Ìý351ÌýÌýAerodynamics IIÌýÌý(3 credit hours)ÌýÌý

Concepts of thermodynamics, compressible fluid flow, and shock waves with application to computing the aerodynamic characteristics of airfoils, wings and flight configurations at high speed.

Prerequisites: ²Ñ´¡·¡Ìý252 and C- or better in ²Ñ´¡·¡Ìý201

Typically offered in Spring only

²Ñ´¡·¡Ìý352ÌýÌýExperimental Aerodynamics IIÌýÌý(1 credit hours)ÌýÌý

Advanced stability and control experiments in the subsonic wind tunnel and external compressible flow experiments in the supersonic wind tunnel.

Prerequisite: ²Ñ´¡·¡Ìý253, Corequisite: ²Ñ´¡·¡Ìý351

Typically offered in Spring only

²Ñ´¡·¡Ìý361ÌýÌýDynamics & ControlsÌýÌý(3 credit hours)ÌýÌý

Dynamics and linear feedback control of aerospace and mechanical systems. Concepts from linear system theory, kinematics, particle dynamics, first- and second-order systems, system dynamics, vibrations, and computational techniques. Feedback controlby root-locus, Nyquist, Bode plots, servo-mechanisms, gain and phase margin, and compensation. Control system design emphasized.

Prerequisite: ²Ñ´¡Ìý341 and C- or better in ²Ñ´¡·¡Ìý208

Typically offered in Fall only

²Ñ´¡·¡Ìý371ÌýÌýAerospace Structures IÌýÌý(3 credit hours)ÌýÌý

Determination of appropriate analysis techniques for Aerospace Structures. Introduction of governing equations and selected solutions for typical structures. Use of these concepts in the design of a representative structural component.

Prerequisite: C- or better in ²Ñ´¡·¡Ìý214 or CE 313

Typically offered in Fall only

²Ñ´¡·¡Ìý372ÌýÌýAerospace Vehicle Structures LabÌýÌý(1 credit hours)ÌýÌý

Demonstration and application of the concepts that have been presented in ²Ñ´¡·¡Ìý371 and ²Ñ´¡·¡Ìý472. Fabrication techniques and the design and construction of a structural component will be emphasized.

Corequisite: ²Ñ´¡·¡Ìý371

Typically offered in Fall only

²Ñ´¡·¡Ìý398ÌýÌýRelativistic Dynamics: An Evolution in Space, Time, and MatterÌýÌý(3 credit hours)ÌýÌý

The historical, societal, and philosophical factors that led to the fundamental ideas in dynamics. The evolution of one's perception of space, time, and matter through the pre-classical, classical, and post-classical periods. We also cover computational methods in dynamics and video media for the development of documentary videos. In the second half of the course, the student studies a selected relativistic dynamics topic and develops a documentary video on the topic.

Prerequisite: ²Ñ´¡Ìý141, junior-level standing

GEP Interdisciplinary Perspectives

Typically offered in Fall only

²Ñ´¡·¡Ìý403ÌýÌýAir ConditioningÌýÌý(3 credit hours)ÌýÌý

Design of a complete air conditioning system for a building. Introduction, Design Objectives - Building Description, Review of Psychrometrics and Air Conditioning Processes, Cooling and Heating Load Calculation, Space Air diffusion, Duct Lay-out and Design, Equipment Selection, Pipe Sizing, Life-cycle Cost Analysis.

Typically offered in Spring only

²Ñ´¡·¡Ìý405ÌýÌýControls LabÌýÌý(1 credit hours)ÌýÌý

Laboratory experiments demonstrate the essential features of classical and modern control theory for single-input and single-output systems.

Corequisite: ²Ñ´¡·¡Ìý435

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý406ÌýÌýEnergy Conservation in IndustryÌýÌý(3 credit hours)ÌýÌý

Application of energy conservation principles to a broad range of industrial situations with emphasis on typical equipment encountered as well as the effect of recent environmental regulations. Topics covered include: steam generators, pollution control, work minimization, heat recovery, steam traps, industrial ventilation, electrical energy management, and economics. Field trip to conduct tests and evaluate operation at three NCSU steam plants.

Typically offered in Spring only

²Ñ´¡·¡Ìý407ÌýÌýSteam and Gas TurbinesÌýÌý(3 credit hours)ÌýÌý

Fundamental analysis of the theory and design of turbomachinery flow passages; control and performance of turbomachinery; gas-turbine engine processes.

Typically offered in Fall only

²Ñ´¡·¡Ìý408ÌýÌýInternal Combustion Engine FundamentalsÌýÌý(3 credit hours)ÌýÌý

Fundamentals common to internal combustion engine cycles of operation. Otto engine: carburetion, combustion, knock, exhaust emissions and engine characteristics. Diesel engine: fuel metering, combustion, knock, and performance. Conventional and alternative fuels used in internal combustion engines.

Prerequisite: ²Ñ´¡·¡Ìý302

Typically offered in Fall only

²Ñ´¡·¡Ìý410ÌýÌýModern Manufacturing ProcessesÌýÌý(3 credit hours)ÌýÌý

Introduction to modern manufacturing processes and technologies. Topics to be covered include traditional machining, laser and electrochemical machining, electro-discharge machining, geometric dimensioning & tolerancing, tolerance chart, statistical process control, metal forming, metal casting, rapid prototyping, welding, micro-fabrication, hybrid processes, and computer aided manufacturing. To relate theory taught in class with practice, the course includes mini projects on machining, rapid prototyping, and material testing.

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý412ÌýÌýDesign of Thermal SystemÌýÌý(3 credit hours)ÌýÌý

Applications of thermodynamics, fluid mechanics, and heat transfer to thermal systems with an emphasis on system design and optimization. Design of heat exchangers. Analysis of engineering economics, including time value of money, present and future worth, payback period, internal rates of return, and cost benefit analysis. Review of component model for pipes, pumps, fans, compressors, turbines, evaporators, condensers and refrigerators. Simulation methods for finding the operating point for thermal systems. Design of thermal systems through methods of optimization.

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý413ÌýÌýDesign of Mechanical SystemsÌýÌý(3 credit hours)ÌýÌý

Integration of the physical sciences, mathematics, and engineering to solve real-world mechanical engineering design problems. Design of mechanical elements including: fasteners, welds, springs, bearings, gears, belts, brakes, clutches, flywheels, shafts. Emphasis on open-ended problems which contain superfluous information and/or insufficient data. Solution techniques focus on problem definition,reduction to a solvable system, and development of a design response. Team based projects. Formal written communication of results.

Typically offered in Fall only

²Ñ´¡·¡Ìý415ÌýÌýMechanical Engineering Design IÌýÌý(3 credit hours)ÌýÌý

The first course in the sequence of a two-semester capstone senior design project. Teamwork, independent learning and communication skills are emphasized. Team of students practice engineering design process through: problem definition, research, brainstorming, optimization, critical review and analysis. Lectures focus on conceptual design, embodiment design, and quality. Communication skills are developed through reports and presentations.

Typically offered in Fall only

²Ñ´¡·¡Ìý416ÌýÌýMechanical Engineering Design IIÌýÌý(4 credit hours)ÌýÌý

The second course in the sequence of a two-semester capstone senior design project. Teamwork, independent learning and communication skills are emphasized. Building on the experience and knowledge from Mechanical Engineering Design I, teams of students extend engineering design process through: investigation, critical review, analysis, and prototype construction and testing. Communication skills are developed through reports and presentations.

Prerequisite: ²Ñ´¡·¡Ìý415

Typically offered in Spring only

²Ñ´¡·¡Ìý420/²Ñ´¡·¡Ìý520ÌýÌýDynamic Analysis of Human MovementÌýÌý(3 credit hours)ÌýÌý

Topics in movement biomechanics and computational analyses of movement, including muscle physiology and mechanics, advanced muscle modeling, neural control of muscle and motor control theories, and dynamic simulation and optimization. Discussion of fundamental research underpinnings and clinical and sports applications.

P: MAE208 or equivalent

Typically offered in Fall only

²Ñ´¡·¡Ìý421ÌýÌýDesign of Solar Energy SystemsÌýÌý(3 credit hours)ÌýÌý

Analysis and design of active and passive solar energy conversion systems for residential and small commercial buildings. Topics to include solar insolation, photovoltaics, solar thermal collectors, thermal storage, controls, system design, performance calculations, economics, site evaluation, shading, suncharts, types of passive systems, and heating load analysis. Evaluation of NCSU Solar House.

Typically offered in Fall only

²Ñ´¡·¡Ìý426/²Ñ´¡·¡Ìý526ÌýÌýFundamentals of Product DesignÌýÌý(3 credit hours)ÌýÌý

Many think of design as more of an art than a science. However, the growing body of research in the engineering design community teaches us ways to navigate the design of consumer products using interdisciplinary design tools and rational decision making. This course introduces students to scientific design techniques that are more effective than "ad hoc" tactics. By exploring how engineering principles integrate with "real world" design challenges, students will learn to solve product design problems that encompass heterogeneous markets, multiple disciplines, and large-scale complex systems.

Prerequisite: ²Ñ´¡Ìý241

Typically offered in Spring only

²Ñ´¡·¡Ìý430ÌýÌýApplied Finite Element AnalysisÌýÌý(3 credit hours)ÌýÌý

Finite element modeling techniques for solving real-world engineering problems are discussed. Theory of finite element discretization is highlighted follow by software implementation, emphasis is given on accurate prescription of boundary conditions that represent actual physical systems, modeling exercises and projects include solid structural problems, heat transfer, structural vibrations, fluid dynamics and contact problems, modeling is carried out using commercial software packages.

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý435ÌýÌýPrinciples of Automatic ControlÌýÌý(3 credit hours)ÌýÌý

Study of linear feedback control systems using transfer functions. Transient and steady state responses. Stability and dynamic analyses using time response and frequency response techniques. Compensation methods. Classical control theory techniquesfor determination and modification of the dynamic response of a system. Synthesis and design applications to typical mechanical engineering control systems. Introduction to modern control theory.

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý440ÌýÌýNon-Destructive Testing and EvaluationÌýÌý(3 credit hours)ÌýÌý

NDT/NDE is a 3-credit elective course covering the general defect and damage types in materials and structures, principles of NDT/NDE techniques, and NDT/NDE applications. Associated lab modules (3 weeks) provide hands-on opportunities to students on often used NDT/NDE methods including magnetic particle, ultrasonics, and eddy current methods. A final project team will work on research and industrial NDT/NDE solutions.

Junior or Senior standing in the College of Engineering

Typically offered in Fall only

²Ñ´¡·¡Ìý451ÌýÌýExperimental Aerodynamics IIIÌýÌý(1 credit hours)ÌýÌý

Laboratory experiments in internal compressible flow and boundary layers in conjunction with ²Ñ´¡·¡Ìý458 or ²Ñ´¡·¡Ìý459. Topics include nozzle flows, constant area duct flows, component/overall performance of a gas turbine, and boundary layer analysis.

Prerequisite: ²Ñ´¡·¡Ìý352

Typically offered in Fall only

²Ñ´¡·¡Ìý452ÌýÌýAerodynamics of V/STOL VehiclesÌýÌý(3 credit hours)ÌýÌý

Introduction to the aerodynamics and performance of vertical and short take-off and landing vehicles. Aerodynamics of propellers and rotors. High lift devices.

Typically offered in Fall only

²Ñ´¡·¡Ìý455ÌýÌýBoundary Layer TheoryÌýÌý(3 credit hours)ÌýÌý

Introduction to the Navier-Stokes Equations and boundary layer approximations for incompressible flow. Calculation techniques for laminar and turbulent boundary layer parameters which affect lift, drag, and heat transfer on aerospace vehicles. Discussions of compressible flows.

Typically offered in Fall only

²Ñ´¡·¡Ìý456ÌýÌýComputational Methods in AerodynamicsÌýÌý(3 credit hours)ÌýÌý

Introduction to computational methods for solving exact fluid equations. Emphasis on development of the fundamentals of finite difference methods and their application to viscous and inviscid flows.

Prerequisite: ²Ñ´¡·¡Ìý252

Typically offered in Spring only

This course is offered alternate years

²Ñ´¡·¡Ìý457ÌýÌýFlight Vehicle Stability and ControlÌýÌý(3 credit hours)ÌýÌý

Longitudinal, directional and lateral static stability and control of aerospace vehicles. Lineralized dynamic analysis of the motion of a six degree-of-freedom flight vehicle in response to control inputs and disturbance through use of the transfer function concept. Control of static and dynamic behavior by vehicle design (stability derivatives) and/or flight control systems.

Typically offered in Spring only

²Ñ´¡·¡Ìý458ÌýÌýPropulsionÌýÌý(3 credit hours)ÌýÌý

One-dimensional, internal, compressible flow including: isentropic flow, normal shocks, flow with friction and simple heat addition. Applications to air-breathing aircraft propulsion systems. Performance, analysis and design of components and overall performance of air-breathing engines.

Prerequisite: ²Ñ´¡·¡Ìý351

Typically offered in Fall only

²Ñ´¡·¡Ìý459ÌýÌýRocket PropulsionÌýÌý(3 credit hours)ÌýÌý

Study of chemical rockets. This includes nozzle theory, flight performance, thermochemical calculations, and component and system analysis and design.

Prerequisite: MAE 351or ²Ñ´¡·¡Ìý302

Typically offered in Fall only

²Ñ´¡·¡Ìý467ÌýÌýIntroduction to Space FlightÌýÌý(3 credit hours)ÌýÌý

Fundamental aspects of space flight including launch vehicle performance and design, spacecraft characteristics, two-body orbital mechanics, earth satellites, interplanetary trajectories, atmospheric entry, and atmospheric heating.

Typically offered in Spring only

²Ñ´¡·¡Ìý470/²Ñ´¡·¡Ìý570ÌýÌýSpace Exploration SystemsÌýÌý(3 credit hours)ÌýÌý

This course will cover topics related to space exploration systems. In particular, the basic concepts of orbital mechanics needed for space mission planning will be covered, along with the essential subsystems found on a typical spacecraft.

Prerequisite: ²Ñ´¡·¡Ìý467 Introduction to Space Flight or Graduate Standing and Consent of Instructor

Typically offered in Fall only

²Ñ´¡·¡Ìý472ÌýÌýAerospace Structures IIÌýÌý(3 credit hours)ÌýÌý

A continuation of ²Ñ´¡·¡Ìý371; deflection of structures, indeterminate structures, minimum weight design fatigue analysis and use of matrix methods in structural analysis. Selection of materials for aircraft construction based on mechanical, physical, and chemical properties.

Prerequisite: ²Ñ´¡·¡Ìý371

Typically offered in Spring only

²Ñ´¡·¡Ìý480ÌýÌýAerospace Vehicle Design IÌýÌý(3 credit hours)ÌýÌý

The is the first module of the Aerospace Engineering capstone senior design sequence. The course will facilitate a synthesis of previously acquired theoretical and empirical knowledge to the design of a practical aerospace vehicle. It will teach undergraduate students how to apply their academic knowledge to the professional practice of engineering, with an emphasis on the aerospace field. The projects are semi-complex and can only be pursued in multidisciplinary teams so that each student has a clearly defined leadership role and is responsible for their subsystem. Analogous to standard industry practice, student teams follow the systems engineering V-Model project life cycle to realize the project objectives.

Prerequisites: (²Ñ´¡·¡Ìý457 or ²Ñ´¡·¡Ìý467) and ²Ñ´¡·¡Ìý252 and ²Ñ´¡·¡Ìý371; Restrictions: Senior standing and Aerospace Engineering Majors

Typically offered in Fall only

²Ñ´¡·¡Ìý481ÌýÌýAerospace Vehicle Design IIÌýÌý(3 credit hours)ÌýÌý

A continuation of ²Ñ´¡·¡Ìý480. The design solutions from ²Ñ´¡·¡Ìý480 are manufactured and verification tests conducted. The "proof-of-concept" prototypes are then flight-tested, and the completed project work presented at the senior design symposium.

Prerequisite: ²Ñ´¡·¡Ìý480

Typically offered in Spring only

²Ñ´¡·¡Ìý482/·¡°ä·¡Ìý482ÌýÌýEngineering Entrepreneurship and New Product Development IÌýÌý(3 credit hours)ÌýÌý

Applications of engineering, mathematics, basic sciences, finance, and business to the design and development of prototype engineering products. This course requires a complete written report and an end-of-course presentation. This is the first course in a two semester sequence. Students taking this course will implement their designed prototype in ·¡°ä·¡Ìý483: Senior Design Project in Electrical Engineering and Computer Engineering II-Engineering Entrepreneurs. Departmental approval required.

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý483/·¡°ä·¡Ìý483ÌýÌýEngineering Entrepreneurship Senior Design IIÌýÌý(3 credit hours)ÌýÌý

Applications of engineering, science, management and entrepreneurship to the design, development and prototyping of new product ideas. Based on their own new product ideas, or those of others, students form and lead entrepreneurship teams (eTeams) to prototype these ideas. The students run their eTeams as 'virtual' startup companies where the seniors take on the executive roles. Joining them are students from other grade levels and disciplines throughout the university that agree to participate as eTeam members. Departmental approval required.

Prerequisite: ·¡°ä·¡Ìý482

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý484ÌýÌýEngineering Entrepreneurship Senior Design LabÌýÌý(1 credit hours)ÌýÌý

This is the lab for ²Ñ´¡·¡Ìý483. Applications of engineering, science, management, and entrepreneurship to the design, development, and prototyping of new product ideas. Based on their own product ideas, or those of others, students form and lead entrepreneurship teams (eTeams) to prototype these ideas. The students run their eTeams as 'virtual' startup companies where the seniors take on the executive roles. Joining them are students from other grade levels and disciplines throughout the ¸£Àû±ÆÕ¾ that agree to participate as eTeam members. Departmental approval required.

Prerequisite: MAE/·¡°ä·¡Ìý482; C: MAE/·¡°ä·¡Ìý483

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý495ÌýÌýSpecial Topics in Mechanical and Aerospace EngineeringÌýÌý(1-3 credit hours)ÌýÌý

Offered as needed to present new or special MAE subject matter.

²Ñ´¡·¡Ìý496ÌýÌýUndergraduate Project Work in Mechanical and Aerospace EngineeringÌýÌý(1-6 credit hours)ÌýÌý

Individual or small group project in engineering, comprising the design of an equipment or system stemming from a mutual student-faculty interest; a substantial final report (project) containing calculations, drawings and specifications must be produced. Alternatively, individual or small group undergraduate research evolving from a mutual student-faculty interest; a conference or scientific journal paper must be submitted for publication. Departmental approval required

Prerequisite: Completion of all required MAE-300 level courses, Corequisite: ²Ñ´¡·¡Ìý415 or MAE 478

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý501ÌýÌýAdvanced Engineering ThermodynamicsÌýÌý(3 credit hours)ÌýÌý

Classical thermodynamics of a general reactive system; conservation of energy and principles of increase of entropy; fundamental relation of thermodynamics; Legendre transformations; phase transitions and critical phenomena; equilibrium and stability criteria in different representation; irreversible thermodynamics. Introduction to statistical thermodynamics.

Typically offered in Spring only

²Ñ´¡·¡Ìý504ÌýÌýFluid Dynamics Of Combustion IÌýÌý(3 credit hours)ÌýÌý

Gas-phase thermochemistry including chemical equilibrium and introductory chemical kinetics. Homogeneous reaction phenomena. Subsonic and supersonic combustion waves in premixed reactants (deflagration and detonation). Effects of turbulence. Introduction to diffusion flame theory.

Typically offered in Fall only

²Ñ´¡·¡Ìý505ÌýÌýHeat Transfer Theory and ApplicationsÌýÌý(3 credit hours)ÌýÌý

Development of basic equations for steady and transient heat and mass transfer processes. Emphasis on application of basic equations to engineering problems in areas of conduction, convection, mass transfer and thermal radiation.

Prerequisite: ²Ñ´¡·¡Ìý310

Typically offered in Fall and Summer

²Ñ´¡·¡Ìý508ÌýÌýAutomotive Power SystemsÌýÌý(3 credit hours)ÌýÌý

This course will cover topics related to automotive power systems. In particular, this course provides fundamental concepts and knowledge on different power station options for automotive applications including internal combustion engines, battery electrical vehicles, engine/battery hybrid vehicles, and fuel cell powered vehicles.

P: Graduate Standing

Typically offered in Spring only

²Ñ´¡·¡Ìý511ÌýÌýAdvanced Dynamics with Applications to Aerospace SystemsÌýÌý(3 credit hours)ÌýÌý

Basic topics in advanced dynamics and with applications to aerospace systems. Rotating coordinate systems, Euler angles, three-dimensional kinematics and kinetics, angular momentum methods and an introduction to analytical mechanics. Examples are concentrated in the area of aerospace vehicles, but the methods learned will be applicable to land-based vehicles and any engineering system undergoing rigid body rotation, e.g. wind turbines, biomechanical systems, machine tools, robotic systems, etc.

Typically offered in Fall and Summer

²Ñ´¡·¡Ìý513ÌýÌýPrinciples of Structural VibrationÌýÌý(3 credit hours)ÌýÌý

Principles of structural vibration beginning from single and multi-degree of freedom systems and extending to distributed systems. Forced system response, vibration of strings, bars, shafts and beams and an introduction to approximate methods.

Prerequisite: ²Ñ´¡·¡Ìý315

Typically offered in Fall only

²Ñ´¡·¡Ìý515ÌýÌýAdvanced Automotive Vehicle DynamicsÌýÌý(3 credit hours)ÌýÌý

This course covers advanced materials related to mathematical models and designs in automotive vehicles as multiple degrees of freedom systems for dynamic behaviors in acceleration, braking, rollover, aerodynamics, suspections, tire, and drive train.

Prerequisite: ²Ñ´¡·¡Ìý208 or ²Ñ´¡·¡Ìý315 or ²Ñ´¡·¡Ìý472 or equivalent; or consent of the instructor

Typically offered in Spring only

²Ñ´¡·¡Ìý517ÌýÌýAdvanced Precision Manufacturing for Products, Systems and ProcessesÌýÌý(3 credit hours)ÌýÌý

This is a graduate level course designed for graduate students and undergraduate seniors. This course examines precision issues for products, manufacturing machines, processes, and instruments. Modern manufacturing technologies are distinct in their multifarious nature in product sizes, materials, energy forms, theories, and information types; however, the key to their success relies on the management of precision. This course discusses issues critical to both existing precision manufacturing and future sub-micron/nano technology. Important topics include fundamental mechanical accuracies; manufacturing systems and processes; geometric dimensioning and tolerancing; process planning, tolerance charts, and statistical process control; principles of accuracy, repeatability, and resolution; error assessment and calibration; error budget; reversal principles; joint design and stiffness consideration; precision sensing and control; precision laser material processing.

Prerequisite: ²Ñ´¡·¡Ìý496 or ²Ñ´¡·¡Ìý415 or equivalent or instructor permission

Typically offered in Fall and Summer

²Ñ´¡·¡Ìý518ÌýÌýAcoustic Radiation IÌýÌý(3 credit hours)ÌýÌý

Introduction to principles of acoustic radiation from vibrating bodies and their related fields. The radiation of simple sources, propagation of sound waves in confined spaces and transmission through different media.

Prerequisite: MA 301 and ²Ñ´¡·¡Ìý308 or MAE 356

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý520/²Ñ´¡·¡Ìý420ÌýÌýDynamic Analysis of Human MovementÌýÌý(3 credit hours)ÌýÌý

Topics in movement biomechanics and computational analyses of movement, including muscle physiology and mechanics, advanced muscle modeling, neural control of muscle and motor control theories, and dynamic simulation and optimization. Discussion of fundamental research underpinnings and clinical and sports applications.

P: MAE208 or equivalent

Typically offered in Fall only

²Ñ´¡·¡Ìý521ÌýÌýLinear Control and Design For Mimo SystemsÌýÌý(3 credit hours)ÌýÌý

Linear Multivariable control and design for multibody engineering systems (robotics) and aircraft controls and navigation. Emphasis on multi-input and multi-output (MIMO) system analysis and design using frequency-based approach. Controllability andobservability, transmission zeroes and pole-zero cancellation, eigenstructures, singular value decomposition in frequency domain, stability and performance robustness of MIMO systems.

Typically offered in Spring only

²Ñ´¡·¡Ìý522ÌýÌýNon Linear System Analysis and ControlÌýÌý(3 credit hours)ÌýÌý

Nonlinear system analysis, Lyapunov stability theory, absolute stability, feedback linearization, sliding mode control, backstepping control technique, as well as various advanced nonlinear control methods.

Prerequisite: ²Ñ´¡·¡Ìý521 or equivalent

²Ñ´¡·¡Ìý525ÌýÌýAdvanced Flight Vehicle Stability and ControlÌýÌý(3 credit hours)ÌýÌý

Preliminary analysis and design of flight control systems to include autopilots and stability augmentation systems. Study of effects of inertial cross-coupling and nonrigid bodies on vehicle dynamics.

Prerequisite: ²Ñ´¡·¡Ìý457

Typically offered in Fall only

²Ñ´¡·¡Ìý526/²Ñ´¡·¡Ìý426ÌýÌýFundamentals of Product DesignÌýÌý(3 credit hours)ÌýÌý

Many think of design as more of an art than a science. However, the growing body of research in the engineering design community teaches us ways to navigate the design of consumer products using interdisciplinary design tools and rational decision making. This course introduces students to scientific design techniques that are more effective than "ad hoc" tactics. By exploring how engineering principles integrate with "real world" design challenges, students will learn to solve product design problems that encompass heterogeneous markets, multiple disciplines, and large-scale complex systems.

Prerequisite: ²Ñ´¡Ìý241

Typically offered in Spring and Summer

²Ñ´¡·¡Ìý528ÌýÌýExperimental Flight TestingÌýÌý(3 credit hours)ÌýÌý

Application of engineering methods to experimental flight testing of fixed-wing aircraft for determination of performance and handling qualities of air vehicles. Risk minimization techniques are included in the formulation of a flight test plan. Collected flight test data is corrected for standard day and analyzed.

Prerequisite: Graduate standing, Aerospace Engineering Majors, ²Ñ´¡·¡Ìý525

Typically offered in Spring only

²Ñ´¡·¡Ìý531ÌýÌýEngineering Design OptimizationÌýÌý(3 credit hours)ÌýÌý

Nonlinear optimization techniques with applications in various aspects of engineering design. Terminology, problem formulation, single and multiple design variables, constraints, classical and heuristic approaches, single and multiobjective problems, response surface modeling, and tradeoffs in complex engineering systems. Numerical optimization algorithms and implementation of these optimization techniques. Graduate standing in engineering recommended.

Prerequisite: Graduate standing in Engineering is recommended.

Typically offered in Fall only

²Ñ´¡·¡Ìý532ÌýÌýSmart Structures and Micro-TransducersÌýÌý(3 credit hours)ÌýÌý

This course is designed for graduate students who wish to learn fundamentals and applications of smart structures and micro transducers. The course focuses on materials, structures, design, fabrication, and characterization of micro transducers. It also covers the recent progress in applications of micro transducers in aerospace, biomedical, civil, electrical and mechanical engineering.

Prerequisite: MAE 314, ²Ñ´¡·¡Ìý315, or equivalent.

Typically offered in Fall only

²Ñ´¡·¡Ìý533ÌýÌýFinite Element Analysis IÌýÌý(3 credit hours)ÌýÌý

Fundamental concepts of the finite element method for linear stress and deformation analysis of mechanical components. Development of truss, beam, frame, plane stress, plane strain, axisymmetric and solid elements. Isoparametric formulations. Introduction to structural dynamics. Practical modeling techniques and use of general-purpose codes for solving practical stress analysis problems.

Typically offered in Fall only

²Ñ´¡·¡Ìý534ÌýÌýMechatronics DesignÌýÌý(3 credit hours)ÌýÌý

Principles of Mechatronics Design, review of logic gates, microprocessor architecture, sensors and actuators, A/D and D/A conversion techniques, real-time multi-tasking programming concepts, direct digital control implementation. "Hands-on" experience through several laboratory assignments and final team project.

Prerequisite: Structured Programming Experience, Senior/Graduate Standing in WPS/MAE.

Typically offered in Spring only

²Ñ´¡·¡Ìý535/·¡°ä·¡Ìý535ÌýÌýDesign of Electromechanical SystemsÌýÌý(3 credit hours)ÌýÌý

A practical introduction to electromechanical systems with emphasis on modeling, analysis, design, and control techniques. Provides theory and practical tools for the design of electric machines (standard motors, linear actuators, magnetic bearings, etc). Involves some self-directed laboratory work and culuminates in an industrial design project. Topics include Maxwell's equations, electromechanical energy conversion, finite element analysis, design and control techniques.

Prerequisite: ²Ñ´¡Ìý341

Typically offered in Spring and Summer

²Ñ´¡·¡Ìý536ÌýÌýMicro/Nano Electromechanical SystemsÌýÌý(3 credit hours)ÌýÌý

Fundamentals and applications of micro/nano sensors and actuators. Emphasis upon MEMS/NEMS design, microfabrication techniques, and case studies of MEMS devices. Nanomaterials and NEMS devices also covered. Students have opportunity to learn commercial software packages on design and simulation of MEMS and hear from experts from leading MEMS companies through guest lectures. Previous knowledge of MEMS and nanotechnology is not required. The course is restricted to advanced undergrads and graduate students in engineering, materials science, physics and biomedical fields.

Typically offered in Fall only

²Ñ´¡·¡Ìý537ÌýÌýMechanics Of Composite StructuresÌýÌý(3 credit hours)ÌýÌý

Manufacturing techniques with emphasis on selection of those producing most favorable end result. Classical plate theory, materials properties and failure theories. Micromechanics, repair, plate solutions and elasticity solutions covered as requiredto meet special interests of students.

Typically offered in Spring only

²Ñ´¡·¡Ìý538ÌýÌýSmart Structures and MaterialsÌýÌý(3 credit hours)ÌýÌý

An application-oriented introduction to smart structures and materials with examples from mechanical, aerospace and biomedical engineering. Experimentally observed phenomena, micromechanisms, and models for material behavior. Team work developing simulation tools for typical applications. Validating results experimentally using PC-based data acquisition systems.

Typically offered in Spring only

²Ñ´¡·¡Ìý539/²Ñ³§·¡Ìý539ÌýÌýAdvanced MaterialsÌýÌý(3 credit hours)ÌýÌý

Introduces production/structure/property/function relation and application of a number of materials mainly for biomedical, mechanical and aerospace applications. Topics include ultra light materials (production, processing and applications of cellular solids), biomaterials (classes and application of materials in medicine and dentistry), composites (classes and application), refractory materials and coatings for high temperature applications, thin film shape memory alloys for micro-electro mechanical systems (MEMS).

Prerequisite: ²Ñ³§·¡Ìý201 and MAE 314

Typically offered in Fall only

²Ñ´¡·¡Ìý540ÌýÌýAdvanced Air Conditioning DesignÌýÌý(3 credit hours)ÌýÌý

Psychrometric process representations. Heating and cooling coil design. Heat pump design. Air washer design. Direct contact heat and mass transfer systems. Ventilation requirements, air dilution calculations. Cooling load calculations; CLTD, CLF andtransfer functions methods. Room air distribution.

Prerequisite: ²Ñ´¡·¡Ìý403, 404

Typically offered in Spring only

²Ñ´¡·¡Ìý541ÌýÌýAdvanced Solid Mechanics IÌýÌý(3 credit hours)ÌýÌý

Development of principles of advanced strength of materials and elasticity theory leading to solution of practical engineering problems concerned with stress and deformation analysis. Tensor analysis, coordinate transformations, alternative measures of strain, elastic constitutive equations, stress measures, formulation and solution of two and three dimensional elasticity problems. Examples include advanced beam theory for shear deformation and large deformation, contact mechanics, stress concentration, pressure vessels and compound cylinders, thermal stress analysis, and stresses in layered microelectronic devices.

Prerequisite: ²Ñ´¡·¡Ìý316

Typically offered in Fall only

²Ñ´¡·¡Ìý543ÌýÌýFracture MechanicsÌýÌý(3 credit hours)ÌýÌý

Concept of elastic stress intensity factor, Griffith energy balance, determination of the elastic field at a sharp crack tip via eigenfunction expansion methods, J integrals analysis, experimental determination of fracture toughness, fatigue crack growth, elastic-plastic crack tip fields. Emphasis on modern numerical methods for determination of stress intensity factors, critical crack sizes and fatigue crack propagation rate predictions.

Prerequisite: ²Ñ´¡·¡Ìý316

Typically offered in Spring and Summer

²Ñ´¡·¡Ìý544ÌýÌýReal Time RoboticsÌýÌý(3 credit hours)ÌýÌý

Real-time programming for servo control using an embedded controller. Software and hardware interfacing for control of a D.C. servo device. Introduction of multi-tasking to establish concurrent control of several processes, transforming servo loop into a process executing concurrently on single board computer. Provision for hands-on development systems and software emulators.

Prerequisite: Pascal, C, FORTRAN or Assembly language experience

²Ñ´¡·¡Ìý545ÌýÌýMetrology For Precision ManufacturingÌýÌý(3 credit hours)ÌýÌý

Foundations of dimensional metrology and error analysis as applied to accuracy and repeatability in machine design. Plane, length, angle, and roundness metrology. Design of precision systems, Abbe' principle, error analysis, measurement, and compensation. Precision instruments and operating principles. Hands-on experience with measurement instruments and techniques.

Prerequisite: Senior standing in MAE or BS in other curriculum

Typically offered in Spring only

²Ñ´¡·¡Ìý546ÌýÌýPhotonic Sensor Applications in StructureÌýÌý(3 credit hours)ÌýÌý

Use of optical fiber and other photonic device based sensors to measure strain, temperature and other measurands in aerospace, mechanical, civil and biomedical applications. An introduction to optical waveguide analysis will be provided at the beginning of the course.

Typically offered in Fall only

This course is offered alternate odd years

²Ñ´¡·¡Ìý550ÌýÌýFoundations Of Fluid DynamicsÌýÌý(3 credit hours)ÌýÌý

Review of basic thermodynamics pertinent to gas dynamics. Detailed development of general equations governing fluid motion in both differential and integral forms. Simplification of the equations to those for specialized flow regimes. Similarity parameters. Applications to simple problems in various flow regimes.

Typically offered in Fall and Summer

²Ñ´¡·¡Ìý551ÌýÌýAirfoil TheoryÌýÌý(3 credit hours)ÌýÌý

Development of fundamental aerodynamic theory. Emphasis upon mathematical analysis and derivation of equations of motion, airfoil theory and comparison with experimental results. Introduction to super sonic flow theory.

Prerequisite: ²Ñ´¡·¡Ìý252

²Ñ´¡·¡Ìý552ÌýÌýIntroduction to Experimental Fluid Dynamics and Measurement SystemsÌýÌý(3 credit hours)ÌýÌý

This course educates graduate students in the design of experiments and basis for model testing and scaling laws; uncertainty and error analysis in selecting measurement systems for experiments; qualitative and quantitative technologies for obtaining measurements; analysis, post-processing and visualization techniques of data.

Prerequisite: ²Ñ´¡·¡Ìý308 and ²Ñ´¡·¡Ìý451 or equivalent

Typically offered in Spring only

²Ñ´¡·¡Ìý553ÌýÌýCompressible Fluid FlowÌýÌý(3 credit hours)ÌýÌý

Equations of motion in supersonic flow; unsteady wave motion, velocity potential equation; linearized flow; conical flow. Slender body theory. Methods of characteristics. Shockwave/ boundary layer interactions.

Typically offered in Spring only

²Ñ´¡·¡Ìý554ÌýÌýHypersonic AerodynamicsÌýÌý(3 credit hours)ÌýÌý

Fundamentals of inviscid and viscous hypersonic flowfields. Classical and modern techniques for calculating shock wave shapes, expansions, surface pressures, heat transfer and skin friction. Applications to high speed aircraft, rockets and spacecraft.

Prerequisite: ²Ñ´¡·¡Ìý553

²Ñ´¡·¡Ìý555ÌýÌýApplications of Acoustic and Elastic Wave PropagationÌýÌý(3 credit hours)ÌýÌý

This course covers the principles for acoustic and elastic propagation in fluids and solids. Diffraction theory is developed for finite sources. The notions of wavepacket, dispersion and waveguiding are reviewed. The fundamentals of the theory of elasticity and elastic propagation in solids are introduced, based on tensor analysis. Time reversal of acoustic waves is presented, as well as applications to underwater acoustics, medical imaging and therapy, nondestructive testing, elasticity imaging.

Typically offered in Spring only

²Ñ´¡·¡Ìý558ÌýÌýMicrofluidics and NanofluidicsÌýÌý(3 credit hours)ÌýÌý

Macroscale fluid mechanics, heat and mass transfer. Theories of microfluidics and nanofluidics. Applications in mechanical, biomedical, and chemical engineering. Discussions of journal articles and modern fluid dynamics projects. Expert guest lectures on advanced micro/nanotechnology topics.

Typically offered in Spring only

²Ñ´¡·¡Ìý560ÌýÌýComputational Fluid Mechanics and Heat TransferÌýÌý(3 credit hours)ÌýÌý

Introduction to integration of the governing partial differential equations of fluid flow and heat transfer by numerical finite difference and finite volume means. Methods for parabolic, hyper-bolic and elliptical equations and application to model equations. Error analysis and physical considerations.

Prerequisite: ²Ñ´¡Ìý501 or MA 512, ²Ñ´¡·¡Ìý550 or MAE 557, proficiency in the FORTRAN programming language is required

Typically offered in Fall only

²Ñ´¡·¡Ìý561ÌýÌýWing TheoryÌýÌý(3 credit hours)ÌýÌý

Discussion of inviscid flow fields over wings in subsonic flow. Vortex lattice methods, lifting surface theories and panel methods developed for wings with attached flow and leading-edge separation. Calculation of aerodynamic characteristics and determination of effects of planform and airfoil shapes.

Prerequisite: ²Ñ´¡·¡Ìý551

Typically offered in Spring only

This course is offered alternate years

²Ñ´¡·¡Ìý562ÌýÌýPhysical Gas DynamicsÌýÌý(3 credit hours)ÌýÌý

Introduction to kinetic theory, statistical mechanics and chemical thermodynamics. Law of Action. Vibrational and chemical rate processes. Application to equilibrium and nonequilibrium flows.

Prerequisite: ²Ñ´¡·¡Ìý550

Typically offered in Fall only

²Ñ´¡·¡Ìý570/²Ñ´¡·¡Ìý470ÌýÌýSpace Exploration SystemsÌýÌý(3 credit hours)ÌýÌý

This course will cover topics related to space exploration systems. In particular, the basic concepts of orbital mechanics needed for space mission planning will be covered, along with the essential subsystems found on a typical spacecraft.

Prerequisite: ²Ñ´¡·¡Ìý467 Introduction to Space Flight or Graduate Standing and Consent of Instructor

Typically offered in Fall only

²Ñ´¡·¡Ìý573ÌýÌýHydrodynamic Stability and TransitionÌýÌý(3 credit hours)ÌýÌý

Conceptual framework and development of hydrodynamic stability theory. Application of the theory to two-dimensional incompressible and compressible subsonic, transonic, supersonic and hypersonic flows. Results for three-dimensional flows. Introduction of mechanisms of transition and discussion of transition models in numerical methods.

Prerequisite: ²Ñ´¡·¡Ìý550

Typically offered in Spring only

This course is offered alternate years

²Ñ´¡·¡Ìý575ÌýÌýAdvanced Propulsion SystemsÌýÌý(3 credit hours)ÌýÌý

The course will focus on non-turbomachinery, air-breathing hypersonic aeropropulsion applications. Specific propulsion systems to be covered include ramjets and scramjets, pulsed detonation engines, and combined cycle engines, with historical perspective.

²Ñ´¡·¡Ìý577/±··¡Ìý577ÌýÌýMultiscale Two-phase Flow SimulationsÌýÌý(3 credit hours)ÌýÌý

Modeling and simulation of two-phase flows using interface tracking approach and ensemble averaging approaches. Model validation and verification based on interface-tracking data, boiling models. Nuclear reactor applications. The course focuses on interface tracking methods understanding as applied to bubbly flow simulations. Students will develop a simplified solver to track 2D bubbles/droplets throughout the course homework assignments and will learn how to apply this approach for better understanding of multi-phase flow as part of the course project.

Typically offered in Spring only

This course is offered alternate odd years

²Ñ´¡·¡Ìý586ÌýÌýProject Work In Mechanical EngineeringÌýÌý(1-6 credit hours)ÌýÌý

Individual or small group investigation of a problem stemming from a mutual student-faculty interest. Emphasis on providing a situation for exploiting student curiosity.

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý589ÌýÌýSpecial Topics In Mechanical EngineeringÌýÌý(1-6 credit hours)ÌýÌý

Faculty and student discussions of special topics in mechanical engineering.

Prerequisite: Advanced Undergraduate standing or Graduate standing

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý650ÌýÌýInternship WorkÌýÌý(3 credit hours)ÌýÌý

This course requires an internship with a company or organization outside the ¸£Àû±ÆÕ¾. The student will secure an internship of a technical nature during the academic semester, with prior approval from the program. The student will complete a co-op report documenting technical activities and outcomes for evaluation.

Restriction: Students admitted into the Mechanical Engineering and Aerospace Engineering programs (14MEMS, 14AEMS)

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý688ÌýÌýNon-Thesis Masters Continuous Registration - Half Time RegistrationÌýÌý(1 credit hours)ÌýÌý

For students in non-thesis master's programs who have completed all credit hour requirements for their degree but need to maintain half-time continuous registration to complete incomplete grades, projects, final master's exam, etc.

Prerequisite: Master's student

Typically offered in Summer only

²Ñ´¡·¡Ìý689ÌýÌýNon-Thesis Master Continuous Registration - Full Time RegistrationÌýÌý(3 credit hours)ÌýÌý

For students in non-thesis master's programs who have completed all credit hour requirements for their degree but need to maintain full-time continuous registration to complete incomplete grades, projects, final master's exam, etc. Students may register for this course a maximum of one semester.

Prerequisite: Master's student

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý695ÌýÌýMaster's Thesis ResearchÌýÌý(1-9 credit hours)ÌýÌý

Thesis Research

Prerequisite: Master's student

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý696ÌýÌýSummer Thesis ResearchÌýÌý(1 credit hours)ÌýÌý

For graduate students whose programs of work specify no formal course work during a summer session and who will be devoting full time to thesis research.

Prerequisite: Master's student

Typically offered in Summer only

²Ñ´¡·¡Ìý702ÌýÌýStatistical ThermodynamicsÌýÌý(3 credit hours)ÌýÌý

Analysis and establishment of conclusions of classical thermodynamics from the microscopic viewpoint. Topics include: ensemble methods, partition functions, translational, rotational and vibrational energy modes of an ideal gas, chemical equilibrium, imperfect gases, dense fluids, critical-point theories, mean free path concepts, Boltzmann equation, hydrodynamic equations from kinetic theory and properties of disordered composite media.

Prerequisite: ²Ñ´¡·¡Ìý501

Typically offered in Spring only

²Ñ´¡·¡Ìý703ÌýÌýDirect Energy ConversionÌýÌý(3 credit hours)ÌýÌý

The course is intended to be an introduction to fundamentals of energy transport and energy conversion concepts from nano to macro scales. The course will cover the state of energy carriers (photons, electrons, and phonons) and their transport characteristics. A focus will be on material properties that dictate energy related processes. The foundational concepts will then be applied to direct energy conversion devices including thermoelectrics and photovoltaics. Finally, the course will cover system analysis of solid-state energy conversion applications.

Typically offered in Spring only

²Ñ´¡·¡Ìý704ÌýÌýFluid Dynamics of Combustion IIÌýÌý(3 credit hours)ÌýÌý

Advanced theory of detonation and deflagration. Ignition criteria. Direct initiation of detonation including blast-wave theory. Transition from deflagration to detonation. Combustion wave structure and stability. Liquid droplet and solid particle combustion.

Prerequisite: ²Ñ´¡·¡Ìý504

Typically offered in Spring only

²Ñ´¡·¡Ìý707ÌýÌýAdvanced Conductive Heat TransferÌýÌý(3 credit hours)ÌýÌý

Comprehensive, unified treatment of methodologies for solving multidimensional transient and steady heat conduction. Approximate and exact methods of solving nonlinear problems, including phase and temperature-dependent thermal properties, nonlinearboundary conditions. Heat conduction in composite media and anisotropic solids. Use of finite integral transform and Green's function techniques.

Typically offered in Spring only

²Ñ´¡·¡Ìý708ÌýÌýAdvanced Convective Heat TransferÌýÌý(3 credit hours)ÌýÌý

Advanced topics in steady and transient, natural and forced convective heat transfer for laminar and turbulent flow through conduits and over surfaces. Mass transfer in laminar and turbulent flow. Inclusion of topics on compressible flow with heat and mass transfer.

Prerequisite: ²Ñ´¡·¡Ìý550

Typically offered in Spring only

²Ñ´¡·¡Ìý709ÌýÌýAdvanced Radiative Heat TransferÌýÌý(3 credit hours)ÌýÌý

Comprehensive and unified treatment of basic theories; exact and approximate methods of solution of radiative heat transfer and the interaction of radiation with conductive and convective modes of heat transfer in participating and non-participatingmedia.

Prerequisite: ²Ñ´¡·¡Ìý505

Typically offered in Fall only

²Ñ´¡·¡Ìý718ÌýÌýAcoustic Radiation IIÌýÌý(3 credit hours)ÌýÌý

Advanced treatment of the theory of sound generation and transmission. Topics include: techniques for solution of the wave equation, radiation from spheres, cylinders and plates, sound propagation in ducts, scattering.

Prerequisite: ²Ñ´¡·¡Ìý518

Typically offered in Spring only

²Ñ´¡·¡Ìý720ÌýÌýMolecular Level Modeling for Engineering ApplicationsÌýÌý(3 credit hours)ÌýÌý

This graduate-level course is intended for engineering graduate students with interests in the simulation of materials and studying their properties at the molecular level using different atomistic simulation techniques. A special focus will be the molecular dynamics simulation method. Students will be taught to build atomic/molecular models, use the open-source LAMMPS software, and process the simulation data. An independent project is required to complete the course to provide hands-on experience on the atomistic simulation techniques.

Restriction: Graduate standing, basic engineering courses on chemistry, heat transfer, thermodynamics, and physics; some experience in coding and coding language. Basic understanding of wave propagation and wave equations

Typically offered in Fall only

²Ñ´¡·¡Ìý721ÌýÌýRobust Control with Convex MethodsÌýÌý(3 credit hours)ÌýÌý

This course emphasizes on control design techniques which result in closed-loop systems that are insensitive to modeling errors and which achieve a prespecified level of performance. Robustness margins against model uncertainty. Robust control design techniques based on linear matrix inequalities. Topics include uncertainty modeling, robust stability and performance, H_inf control, convex optimization technique (LMI), mu-analysis and synthesis, computer-aided analysis and control design.

Prerequisite: Graduate standing in Engineering and Applied Mathematics, ²Ñ´¡·¡Ìý521 or ECE 716

Typically offered in Spring only

²Ñ´¡·¡Ìý725ÌýÌýGeophysical Fluid MechanicsÌýÌý(3 credit hours)ÌýÌý

The principles of fluid mechanics applied to geophysical systems. Special emphasis placed on those features of these systems, such as almost rigid rotation and stable stratification, which produce unique and important effects. The effects of almost rigid rotations on homogeneous and stratified flows examined in detail.

Prerequisite: ²Ñ´¡·¡Ìý501

Typically offered in Fall only

This course is offered alternate years

²Ñ´¡·¡Ìý726ÌýÌýAdvanced Geophysical Fluid MechanicsÌýÌý(3 credit hours)ÌýÌý

Principles of fluid mechanics applied to geophysical systems. Special emphasis on role of stable stratification on the flows in these systems. Detailed study of generation, interaction, propagation and dissipation of internal gravity waves. Studyof other geophysically important flows.

Prerequisite: ²Ñ´¡·¡Ìý725 or equivalent

Typically offered in Spring only

This course is offered alternate years

²Ñ´¡·¡Ìý730ÌýÌýModem PlasticityÌýÌý(3 credit hours)ÌýÌý

Classical theories of plasticity and solutions pertaining to rate-independent and -dependent deformations modes in metals, geomaterials and concrete. Ductile failure modes, i.e., shear-strain localization and other failure modes associated with large deformation modes. Inelastic wave propagation, crystalline constitutive formulations and computational aspects of quasi-static and dynamic plasticity.

Prerequisite: Grad. course in elasticity or strength of materials

Typically offered in Fall only

This course is offered alternate even years

²Ñ´¡·¡Ìý731/²Ñ³§·¡Ìý731ÌýÌýMaterials Processing by DeformationÌýÌý(3 credit hours)ÌýÌý

Presentation of mechanical and metallurgical fundamentals of materials processing by deformation. Principles of metal working, friction, forging, rolling, extrusion, drawing, high energy rate forming, chipless forming techniques, manufacturing system concept in production.

Prerequisite: Six hrs. of solid mechanics and/or materials

Typically offered in Fall only

²Ñ´¡·¡Ìý734ÌýÌýFinite Element Analysis IIÌýÌý(3 credit hours)ÌýÌý

Advanced treatment of finite element analysis for non-linear mechanics problems, including most recent developments in efficient solution procedures. Plate bending and shell elements, computational plasticity and viscoplastic materials, large deformation formulations, initial stability and buckling, structural vibrations, incompressible elasticity, contact problems, flow in incompressible media, weighted residuals and field problems. Development of efficient algorithms for practical application.

Prerequisite: ²Ñ´¡·¡Ìý533

Typically offered in Spring only

²Ñ´¡·¡Ìý742ÌýÌýMechanical Design for Automated AssemblyÌýÌý(3 credit hours)ÌýÌý

Mechanical design principles important in high volume production using modern automated assembly technology. Production and component design for ease of assembly as dictated by part handling, feeding, orientation, insertion and fastening requirements. Existing product evaluation and redesign for improved assemblage.

Prerequisite: Graduate standing or PBS status in Engineering

Typically offered in Fall only

²Ñ´¡·¡Ìý766ÌýÌýComputational Fluid DynamicsÌýÌý(3 credit hours)ÌýÌý

Advanced computational methods for integrating, by use of finite differences, and finite volume discretizations, non-linear governing equations of fluid flow; the Euler equations and the Navier-Stokes equations. Topics from current literature.

Prerequisite: ²Ñ´¡·¡Ìý560; proficiency in the FORTRAN programming language is required

Typically offered in Spring only

²Ñ´¡·¡Ìý770ÌýÌýComputation of Reacting FlowsÌýÌý(3 credit hours)ÌýÌý

Development of governing equations for chemically and thermally nonequilibrium flows. Numerical formulation with application to planetary entry flows and supersonic combustion. Numerical examples. Computational problems.

Typically offered in Spring only

²Ñ´¡·¡Ìý776ÌýÌýTurbulenceÌýÌý(3 credit hours)ÌýÌý

Development of basic concepts and governing equations for turbulence and turbulent field motion. Formulations of various correlation tensors and energy spectra for isotropic and nonisotropic turbulence. Introduction to turbulent transport processes,free turbulence, and wall turbulence.

Prerequisite: ²Ñ´¡·¡Ìý550

Typically offered in Spring only

²Ñ´¡·¡Ìý787ÌýÌýStructural Health MonitoringÌýÌý(3 credit hours)ÌýÌý

The course will provide the students with in-depth knowledge of technologies in structural health monitoring using smart materials as sensing and actuating elements to interrogate the structures. Damage detection techniques such as wave, impedance, and vibration-based damage detection techniques will be discussed and applied to different types of structures. Advanced signal processing techniques such as wavelet, neural network, principal component analysis will be used to make the damage more quantifiable.

Prerequisite: ²Ñ´¡·¡Ìý541 or ²Ñ´¡·¡Ìý513 or equivalent

Typically offered in Spring only

²Ñ´¡·¡Ìý789ÌýÌýAdvanced Topics In Mechanical EngineeringÌýÌý(1-3 credit hours)ÌýÌý

Faculty and graduate student discussions of advanced topics in contemporary mechanical engineering.

Prerequisite: Graduate standing

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý801ÌýÌýMechanical Engineering SeminarÌýÌý(1 credit hours)ÌýÌý

Faculty and graduate student discussions centered around current research problems and advanced engineering theories.

Typically offered in Fall and Spring

²Ñ´¡·¡Ìý830ÌýÌýDoctoral Independent StudyÌýÌý(1-3 credit hours)ÌýÌý

Individual investigation of advanced topics under the direction of member(s) of the graduate faculty.

Typically offered in Spring only

²Ñ´¡·¡Ìý885ÌýÌýDoctoral Supervised TeachingÌýÌý(1-3 credit hours)ÌýÌý

Teaching experience under the mentorship of faculty who assist the student in planning for the teaching assignment, observe and provide feedback to the student during the teaching assignment, and evaluate the student upon completion of the assignment.

Prerequisite: Doctoral student

Typically offered in Fall only

²Ñ´¡·¡Ìý895ÌýÌýDoctoral Dissertation ResearchÌýÌý(1-9 credit hours)ÌýÌý

Dissertation Research

Prerequisite: Doctoral student

Typically offered in Fall, Spring, and Summer

²Ñ´¡·¡Ìý896ÌýÌýSummer Dissertation ResearchÌýÌý(1 credit hours)ÌýÌý

For graduate students whose programs of work specify no formal course work during a summer session and who will be devoting full time to thesis research.

Prerequisite: Doctoral student

Typically offered in Summer only