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Self-Powered Magnetothermal Fluid Pump
Completed
TRL 4 (started at 2, targeting 4)
Description
The ability to successfully manage thermal loads is increasingly a primary design constraint for many emerging engineered systems. Systems ranging from military aircraft to computational platforms to photovoltaic (PV) power generation all generate unwanted heat and traditional methods for transporting and removing this heat are often heavy, cumbersome, power hungry, or lack adequate heat removal capacity. Excess heat can result in reduced efficiency in PV systems, limit duty cycles for pulsed power applications, and ultimately cause failure of critical components if not managed properly. Similar problematic scenarios exist for many power generation systems, high power radio frequency (RF) devices, portable electronics, and lasers, to name a few. A host of thermal management techniques are currently available including heat pipes, liquid immersion, jet impingement and sprays, thermoelectric coolers, and refrigeration. While these techniques are adequate in some cases, none of these methods alone can meet the needs of future high power thermal management without incurring large penalties of weight, power, or volume. The technology proposed here overcomes these limitations through autonomic, self-powered, and self-cooling functionality by directly converting the unwanted thermal energy into useable mechanical energy for use in coolant pumps or refrigeration compressors.
Benefits
Many of the advanced technologies employed by NASA feature high power densities and significant, transient thermal loads. An autonomic, self-powered thermal management system could be used to improve the performance of many of these systems without significantly increasing system cost, complexity, or power requirements. � Thermal management systems: thermal management of power electronics and data processing systems � Thermal Switches: The device proposed here could serve as a viable alternative to problematic thermal switches, with only slight modification. Tuning of ferromagnetic material Curie temperature and spring dynamics allows for operation at any temperature set point, from well below ambient to elevated temperatures in the several hundred degrees Celsius. � Solar-powered aircraft: enhancement of solar aircraft harvesting efficiency through cooler PV junction temperatures � Fluidic Microsystems: development of self-powered, autonomous microfluidic pumps and microvascular systems to be used in fluid delivery (lubricants, nutritives, etc.) � Energy Storage: Isothermal enthalpic energy storage systems that convert waste heat into pressure or in phase change materials
In addition to NASA and DoD cooling applications for electronics in mobile platform applications, Prime Photonics will market the Omnivore™ MT pump technology as part of an automatic, self-cooling system for use in commercial applications including: � Consumer Electronics: passive cooling of PCs, portable electronics, televisions, and appliances � Server Farms: self-powered, environmentally friendly cooling of internet switching facilities or big data centers � Solar Farms: PV cell cooling to increase efficiency of high-density, concentrated solar farm power generation � Home Heating/Cooling Systems: Temperature gradient between exterior and interior of home to drive pump for heating or compressor for air-conditioning
Details
| Technology area | Thermal Management Systems > Thermal Control Components and Systems > Heat Transport |
| Program | Small Business Innovation Research/Small Business Tech Transfer (SBIR/STTR) |
| Lead organization | Prime Photonics, LC, Blacksburg, VA |
| Start date | 2013-05-23 |
| End date | 2013-11-23 |
Project contacts
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How to get involved
This is early/mid-stage (TRL 4) — the most realistic path in is NASA SBIR/STTR, which funds small businesses and research institutions to develop technology aligned with NASA's needs (equity-free, phased funding). Check whether a current SBIR/STTR solicitation topic overlaps with this project's technology area, or contact the project directly (above) to ask.
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