The thermodynamic potential of high-temperature transcritical heat pump cycles for industrial processes with large temperature glides
Термодинамический потенциал высокотемпературных транскритических циклов тепловых насосов для промышленных процессов с большими температурными напорами
2023-07-24
SCID: 54.1/vg33j6y5
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coefficient of performance (COP)industrial process heatingtemperature glidetranscritical heat pump cyclesworking fluid screening
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Abstract (AI)
Industrial heat pumps up to 200 °C are an emerging technology with the potential to reshape the industrial heating supply. For large heat sink temperature glides, transcritical cycles are able to increase the power-to-heat efficiency. Its potential is however yet to be unlocked. To examine this potential, a thermodynamic optimization model is proposed. The model includes robust cycle optimization, is able to screen a large set of working fluids, and includes proper post-processing. This model is applied to three highly relevant industrial cases, namely thermal oil heating, superheated steam drying and spray drying. The heat sink temperature glides for the respective case studies are 60 K, 81 K and 105 K. The results show that a temperature glide larger than 60 K is desired to achieve a better coefficient of performance (COP) with transcritical cycles compared to the classical subcritical cycles. Moreover, new potential working fluids were identified for these high operational temperatures. For the case study with a heat sink temperature glide of 81 K, transcritical cycles allowed for a COP increase of 4.6 %, whereas this increased to 7.3 % for a heat sink temperature glide of 105 K. Furthermore, transcritical cycles introduce a much larger volumetric heating capacity, a lower compressor discharge temperature and a substantially lower pressure ratio. In addition, the best performing working fluids for subcritical cycles are highly flammable, which is only the case for some transcritical working fluids. Therefore, these cycles can be beneficial for temperature glides below 60 K. The compressor for transcritical cycles should however be able to cope with pressures up to 60 bar. If these compressors are available, transcritical cycles are shown to be superior compared to classical subcritical cycles.
Key Findings
1
A thermodynamic optimization model was developed to robustly optimize transcritical heat pump cycles and screen many working fluids for high-temperature industrial applications.
2
Compared with subcritical cycles, transcritical configurations increased COP by 4.6% for an 81 K glide and 7.3% for a 105 K glide.
3
Transcritical cycles achieve higher COP than classical subcritical cycles when the heat-sink temperature glide exceeds 60 K.
4
Transcritical cycles identify additional suitable working fluids, with flammability affecting fewer candidates than among the best-performing subcritical fluids; operation may require compressors rated up to 60 bar.
5
Transcritical cycles provide higher volumetric heating capacity, lower compressor discharge temperature, and substantially lower pressure ratio.
Research Object
high-temperature transcritical heat pump cycles for industrial process heating with large heat-sink temperature glides
Research Subject
the thermodynamic performance and potential of transcritical cycles, including COP, volumetric heating capacity, compressor discharge temperature, pressure ratio, and working-fluid suitability, compared with subcritical cycles
Publication Details
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2023-07-24
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