Performance and Exergy Transfer Analysis of Heat Exchangers with Graphene Nanofluids in Seawater Source Marine Heat Pump System
Анализ характеристик и передачи эксергии в теплообменниках с графеновыми наножидкостями в судовой теплонасосной системе с источником тепла в виде морской воды
2020-04-07
SCID: 54.1/y3s9pyvn
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CO2 heat pump systemexergy transfer effectivenessgraphene nanofluidsheat transfer enhancementseawater source heat pump
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Abstract (AI)
A marine seawater source heat pump is based on the relatively stable temperature of seawater, and uses it as the system’s cold and heat source to provide the ship with the necessary cold and heat energy. This technology is one of the important solutions to reduce ship energy consumption. Therefore, in this paper, the heat exchanger in the CO2 heat pump system with graphene nano-fluid refrigerant is experimentally studied, and the influence of related factors on its heat transfer enhancement performance is analyzed. First, the paper describes the transformation of the heat pump system experimental bench, the preparation of six different mass concentrations (0~1 wt.%) of graphene nanofluid and its thermophysical properties. Secondly, this paper defines graphene nanofluids as beneficiary fluids, the heat exchanger gains cold fluid heat exergy increase, and the consumption of hot fluid heat is heat exergy decrease. Based on the heat transfer efficiency and exergy efficiency of the heat exchanger, an exergy transfer model was established for a seawater source of tube heat exchanger. Finally, the article carried out a test of enhanced heat transfer of heat exchangers with different concentrations of graphene nanofluid refrigerants under simulated seawater constant temperature conditions and analyzed the test results using energy and an exergy transfer model. The results show that the enhanced heat transfer effect brought by the low concentration (0~0.1 wt.%) of graphene nanofluid is greater than the effect of its viscosity on the performance and has a good exergy transfer effectiveness. When the concentration of graphene nanofluid is too high, the resistance caused by the increase in viscosity will exceed the enhanced heat transfer gain brought by the nanofluid, which results in a significant decrease in the exergy transfer effectiveness.
Key Findings
1
An experimental CO₂ seawater-source marine heat pump study evaluated graphene nanofluids at six mass concentrations ranging from 0 to 1 wt.% in heat exchangers.
2
At excessively high graphene concentrations, viscosity-related flow resistance outweighed heat-transfer enhancement, causing a significant decline in exergy-transfer effectiveness.
3
Low graphene nanofluid concentrations of 0–0.1 wt.% enhanced heat transfer more than viscosity-induced performance degradation and provided good exergy-transfer effectiveness.
4
The experiments were conducted under simulated constant-temperature seawater conditions using both energy and exergy analyses.
5
The study established an exergy-transfer model for seawater-source tube heat exchangers based on heat-transfer and exergy efficiencies.
Research Object
Heat exchangers in a CO2 seawater-source marine heat pump system using graphene nanofluid refrigerants
Research Subject
Heat-transfer enhancement performance and exergy-transfer effectiveness as functions of graphene nanofluid concentration and viscosity under simulated seawater-temperature conditions
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2020-04-07
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