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  4. 10.6110/KJACR.20253710.461

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References

1
Choi, W. J., Lee, W. J., Kim, J. K., Jeong, J. W., and Kim, M. H., 2025, Evaluation of the Applicability of Fifth Generation District Heating and Cooling Systems for Net Zero Energy Campus, Korean Journal of Air-Conditioning and Refrigeration Engineering, Vol. 37, pp. 196-205.DOI
2
Kang, S. B., Choi, J. J., and Lee, H. H., 2025, Hydrogen-LNG Co-firing Test Study in a 20 kW Domestic Boiler. Korean Journal of Air-Conditioning and Refrigeration Engineering, Vol. 37, pp. 63-71.DOI
3
Goedecke, R. and Scholl, S., 2018, Modelling and Simulation of a Pillow Plate Thermosiphon Reboiler, Heat and Mass Transfer, Vol. 55, pp. 95-104.DOI
4
Mitrovic, J. and Peterson, R., 2007, Vapor Condensation Heat Transfer in a Thermoplate Heat Exchanger, Chem. Eng. Techni., Vol. 30, pp. 907-919.DOI
5
Tran, J. M., Sommerfeld, S., Piper, M., and Kenig, E. Y., 2015, Investigation of Pillow-Plate Condensers for the Application in Distiillation Columns, Chemical Engineering Research and Design, Vol. 99, pp. 67-74.DOI
6
Arsenyeva, O., Tran, J., and Kenig, E. Y., 2018, Thermal and Hydraulic Performance of Pillow-Plate Heat Exchangers, Computer Aided Chemical Engineering, Vol. 43, pp. 181-186.DOI
7
Selvnes, H., Allouche, Y., and Hafner, A., 2021, Experimental Characterisation of a Cold Thermal Energy Storage Unit with a Pillow-Plate Heat Exchanger Design, Applied Thermal Engineering, Vol. 199, p. 117507.DOI
8
Piper, M., Olenberg, A., Tran, J. M., and Kenig, E. Y., 2015, Determination of the geometric design parameters of pillow-plate heat exchangers, Applied Thermal Engineering, Vol. 91, pp. 1168-1175.DOI
9
Goedecke, R. and Scholl, S., 2015, Enlared Operation Ranges for Thermosiphon Reboilers using Pillow Plates, Chemical Engineering Research and Design, Vol. 99, pp. 58-66.DOI

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