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A Comparison of System Architectures for a Mechanically Pumped Two-Phase Thermal Control SystemThe NASA Jet Propulsion Laboratory is developing a mechanically pumped two-phase fluid loop thermal control system to enable novel mission designs and greater science return. Pumped two-phase fluid loops have the potential to provide robust and effective thermal control that combine the best aspects of passive two-phase systems (heat pipes) and mechanically pumped single-phase fluid loops. The current program requirements include the development of a system with multiple 1 sq.m evaporators, each of which is capable of remaining spatially and temporally isothermal while accommodating heat loads of up to 500 W and local fluxes of up to 5 W/sq.cm. The goal is to attain this using less than 5 W of power. Such a system would be able to accommodate the next generation of payload and bus electronics while using minimal resources. This paper compares two different mechanically pumped two-phase fluid loop architectures in the context of these requirements. A mixed flow and separated flow architecture are compared on a theoretical and experimental basis. Test data from sub-scale, single evaporator/single condenser, mixed flow and separated flow testbeds are presented. In addition, a model is introduced to better understand separated flow systems and some expressions for the theoretical performance limits of such systems are developed. To date, the investigation suggests that a separated flow architecture is better suited to the program requirements. Separated flow systems have the potential to accommodate an isothermalizing two-phase evaporator while using lower levels of power than would be required for a mixed flow system. In addition, it is argued that separated flow systems are more robust and amenable to analysis than mixed flow systems, since they significantly reduce the occurrence of two-phase flow by separating phases in the evaporator. Future work will include developing a full-scale testbed that includes multiple evaporators and condensers in a representative flight configuration.






Document ID
20190028430
Acquisition Source
Jet Propulsion Laboratory
Document Type
Abstract
External Source(s)
Authors
Furst, Benjamin
(Jet Propulsion Laboratory, California Institute of Technology (JPL/CalTech) Pasadena, CA, United States)
Sunada, Eric
(Jet Propulsion Laboratory, California Institute of Technology (JPL/CalTech) Pasadena, CA, United States)
Cappucci, Stefano
(Jet Propulsion Laboratory, California Institute of Technology (JPL/CalTech) Pasadena, CA, United States)
Bhandari, Pradeep
(Jet Propulsion Laboratory, California Institute of Technology (JPL/CalTech) Pasadena, CA, United States)
Daimaru, Takurou
(Tohoku University Sendai, Japan)
Nagai, Hiroki
(Tohoku University Sendai, Japan)
Date Acquired
August 1, 2019
Publication Date
July 16, 2017
Subject Category
Systems Analysis And Operations Research
Fluid Mechanics And Thermodynamics
Report/Patent Number
JPL-CL-CL#17-2235
Report Number: JPL-CL-CL#17-2235
Meeting Information
Meeting: International Conference on Environmental Systems (ICES)
Location: Charleston, SC
Country: United States
Start Date: July 16, 2017
End Date: July 20, 2017
Sponsors: International Conference On Environmental Systems, Inc.
Distribution Limits
Public
Copyright
Other

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