In the Walker Department of Mechanical Engineering, we design and build devices and systems that transform industries and improve lives around the world. A pioneer in areas such as robotics and advanced manufacturing, Texas Mechanical Engineering is the birthplace of selective laser sintering, one of the first and most successful 3D-printing technologies. Our undergraduate and graduate programs are consistently recognized as the best in the nation, leading the way in mechanical engineering education and innovation. Every stage of our students academic journey is filled with experiential learning opportunities from initiatives like our Freshman Introduction to Research in Engineering to our Senior Design Projects. Students learn how to think creatively and work collaboratively inside and outside of the classroom, taking theoretical ideas and testing them in real-world situations.
Mechanical engineering is one of the broadest engineering disciplines, which is exemplified in our robust curriculum, though which students will develop a strong understanding of mechanics, kinematics, thermodynamics and energy. Students will use these skills to design and analyze everything from heating and cooling systems to medical devices. We are consistently ranked as one of the top programs in the United States and our graduates are equipped to go into a variety of fields, including technology, engineering, business, government and more. The mechanical engineering graduate program is designed to educate and advance the next generation of mechanical engineering leaders, innovators who will transform energy, materials and information to meet the needs of society.
Thermal/Fluid Systems is a major technical area researching dielectric and conventional drying, combustion, IC engines, gas turbine blade cooling, turbulent transport, drag reduction, thermal radiation in absorbing/emitting/scattering media, HVAC, energy management and conservation, numerical simulation of turbulence, viscous and hypersonic flow, laser measurement techniques, electronics cooling, interfacial heat and mass transport, liquid metal magnetohydrodynamics, thermal analysis of manufacturing processes, solar radiation measurement, solar energy applications, micro and nano-scale thermal/fluid transport and systems, thermal/fluid issues in laser material processing, thermal aspects of laser interaction with biological tissues, and energy conversion.