Prerequisite: graduate standing and seniors by PI. (Course Profile), Prerequisite: MECHENG 235. On average, U-M graduates with a master’s degree in an engineering field can earn 15-25% more than those with a bachelor’s degree in engineering. Elastic and plastic stress-strain relations; yield criteria and flow rules; analyses of various plastic forming operations. Graduate standing or special permission. Prerequisite: MECHENG 424, (BIOMEDE 424). Concept of statistical process control (SPC). (3 credits)  Manufacturing system design methodologies and procedures. Modeling, analysis and control of vehicles with electrified propulsion systems, including electric vehicles, hybrid vehicles, plug-in and fuel cell vehicles. Fundamentals of discrete optimization for engineering design problems. Bases, subspaces, eigenvalues and eigenvectors, canonical forms. Prerequisite: MECHENG 432 or equivalent. This course will cover theoretical aspects of smart materials, sensors and actuator technologies. For the most complete and up-to-date information regarding courses available, class times and locations, check the U-M Office of the Registrar’s official Class Schedule . (4 credits) (3 credits) A broad treatment of stress, strain and strength with reference to engineering design and analysis. "Minimum grade of "C" required for enforced prerequisites. Four lecture classes per week. AEROSP 566 Data Analysis and System Identification. Brown Laboratory Methods for calculation of turbulent flows; the problem of closure, semi-empirical, phenomenological and analytical theories of turbulence, large-eddy and direct simulations of turbulence. Approximate techniques for nonlinear stochastic response. Application of asymptotic methods to fluid mechanics, with special emphasis on the method of matched expansions. Proficiency in the fundamental understanding of materials processing techniques. Design projects. Stress, strain and displacement, equilibrium and compatibility. Analysis of human movement, including gait, running and balance. Given below is a sample of relevant courses recently offered through engineering departments. Joint design and joining methods. Assembly on product and process. Conduction of heat and electricity across interfaces. Constitutive equation for linear small strain viscoelastic response; constant rate and sinusoidal responses; time and frequency dependent material properties; energy dissipation; structural aplications including axial loading, bending, torsion; three dimensional response, thermo-viscoelasticity, correspondence principle, Laplace transform and numerical solution methods. (3 credits) (3 credits) Conceptual design. Students will have the opportunity to develop a program to implement the methods to simulate nanostructure evolution. Emphasizes systems approach to automotive design. Geometry, kinematics, differential kinematics, dynamics, and control of robot manipulators. Material properties, including physical, mechanical, thermal, electrical, economic, corrosion and environmental properties. ME 489 covers economic, environmental and social aspects of sustainability as they pertain to engineering design. Typical power producing cycles and refrigerators. An introduction to the theory of hydrodynamic stability with applications to stability of thermal flows, rotating and curved flows, wallbounded and free shear flows. Applied mathematics for mechanical engineering with an emphasis on mathematical principles and analytical methods. (to be arranged) Minimum grade of "C" required for enforced prerequisites. Topics will include fluid mechanics, thermodynamics, mechanics, materials and dynamical systems. Theoretical principles and practical techniques for controlling mechatronic systems are taught in the context of advanced manufacturing applications. (3 credits) Prerequisite: MECHENG 211. (3 credits) Case studies: sustainable design of consumer products, manufacturing and infrastructure systems. Prerequisite: MECHENG 505 or CEE 510, (NAVARCH 512). (3 credits) Take graduate-level classes during the U-M ME undergraduate program that … the course covers life cycle assessment, carbon/water/energy footprints, economic assessments, mass/energy balances, air/water pollutants, modeling of environmental pollutant concentrations, engineering economics, social considerations, pollution prevention, resource conservation, human and eco-toxicity, life cycle costing, and energy systems. Response of multi-degree of freedom systems. Use of software for synthesis and analysis. Thermodynamic power and refrigeration systems; availability and evaluation of thermodynamic properties; general thermodynamic relations, equations of state and compressibility factors; chemical reactions; combustion; gaseous dissociation; phase equilibrium. Applications to computational fluid mechanics. Small oscillation theory. Individual or group project work where student(s) must apply mechanical engineering principles to research, innovation, service or entrepreneurship projects. ME Department Chair awarded A.C. Eringen Medal by SES, ASME Fluids Engineering Award recognizes Steve Ceccio, Kon-Well Wang received the 2020 ASME Rayleigh Lecture Award, The Regents of the University of Michigan. Individual topics will be covered on a case by case study basis. Application to problems of bending, torsion, plane strain and plane stress, technological problems. Process capability study. (4 credits) Prerequisite: MECHENG 360; preceded or accompanied by MECHENG 461. Taguchi methods. (3 credits) MECHENG 571 – Energy Generation and Storage Using Modern Materials. Reconfigurable manufacturing systems. Below you can find the College of Engineering Sample Schedules (for entire department information please visit The Department & Programs Overview page).The guides provide a general overview of the curriculum and are not a replacement for meeting with your assigned professional and … (3 credits) Vector description of force, position, velocity and acceleration in fixed and moving reference frames. Review of experimental results on the statistics and structure of turbulent flows. Feedback control design and analysis for linear dynamic systems with emphasis on mechanical engineering applications; transient and frequency response; stability; system performance; control modes; state space techniques; digital control systems. Materials Science and Engineering Courses; Mechanical Engineering Courses; Military Officer Education Program; Naval Architecture and Marine Engineering Courses; Nuclear Engineering and Radiological Sciences Courses; Robotics Courses; Technical Communications Courses; UARTS Courses; Academic Rules. (3 credits) Topics include: complex analysis (functions of complex variables, contour integrals, conformal mappings), linear operator theory (vector spaces, linear algebra), ordinary differential equations (series solutions, Laplace and Fourier transforms, Green's functions). (3 credits) (3 credits) Chain reactions, ignition, quenching and flammability limits, detonations, deflagrations and flame stability. Design projects. The general theory of a continuous medium. Extensive use of commercial finite element software packages, through computer labs and graded assignments. Introduction to linear feedback control techniques. 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