A novel footwear technology that leverages foot pressure to passively cool shoe interior air through a miniaturized refrigeration cycle. The system combines a pressurized heel chamber with relief nozzles that expand air to reduce temperature, while also functioning as a cushioning system. Designed for athletic footwear applications.
This technology introduces an innovative approach to thermal comfort in athletic footwear by harnessing the natural pressure exerted by a user's foot to drive a passive refrigeration cycle inside the shoe. As the foot strikes the ground, it compresses air within a dedicated heel chamber, forcing it through relief nozzles where rapid expansion produces a cooling effect, similar to how a mechanical refrigerator operates. The resulting cooler air circulates inside the shoe, reducing temperature, helping to evaporate sweat, and mitigating odor.
Beyond cooling, the pressurized chamber doubles as a cushioning system when designed with appropriate materials and geometry. This dual-function design makes the technology especially well suited for sports and high-performance athletic footwear, where both thermal management and impact absorption are critical. The approach requires no batteries, pumps, or external power sources, relying entirely on the biomechanics of walking or running.
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The technology is currently at an early stage of development, grounded in established thermodynamic principles. Validation is planned through computational fluid dynamics simulations combined with thermodynamic modeling to identify optimal parameter values for chamber geometry, nozzle design, and air insertion points. Following numerical validation, full-scale prototypes will be produced using 3D printing and subjected to thermofluid dynamic laboratory testing. Numerical and experimental data will be correlated to refine the design before handing off specifications to manufacturing partners for prototype production and field testing. The projected timeline for initial results is under one year.
UFSM is a comprehensive, multi‑campus public research university based in Santa Maria, Rio Grande do Sul. Industry engages via the university’s innovation, science and technology park and two incubators that co‑locate startups with faculty and students; capstone projects can be completed inside resident companies. Clinical collaboration is enabled by the University Hospital of Santa Maria within Brazil’s federal hospital network. Research is supported by competitive funding from national and state agencies such as CNPq, CAPES, FINEP and FAPERGS. A dedicated technology transfer office manages IP, licensing and university–industry agreements, under a pro‑rectory focused on innovation and entrepreneurship.