국립부경대학교 | 냉동공조공학전공

명예교수

교수사진

최광환교수

  • - 부경대학교 냉동공학 공학학사
  • - 와세다대학 공학석사(태양에너지 전공)
  • - 와세다대학 공학박사(태양에너지 전공)

2025.03 ~ 현재    국립부경대학교 냉동공조공학전공 명예교수

1993. 8 ~ 2025.02  국립부경대학교 냉동공조공학전공, 교수 

2000.03 ~ 2001.02  University of Memphis 교환교수

2003.03 ~ 2005.05  태양에너지학회 부산울산경남지회장

2007.02 ~ 2008.01  인도네시아 UNDIP대학 교환 교수

2010.01 ~ 2010.12  한국태양에너지학회 편집위원장

2011.07 ~ 2011.08  KOICA 국제협력사업 '사업명: Project for Public Sector Solar Water Heating in Zimbabwe' 전문가

2012.03 ~ 2014.02  부경대학교 냉동공조공학과 학과장

2012..01 ~ 2012.12 한국태양에너지학회 부회장, 편집위원장

2013.01 ~ 2015.01  한국태양에너지학회 회장

2014.08 ~ 2016.08  부경대학교 공과대학 학장

2015.04 ~ 2017.04  미래창조과학부 국가과학기술정책위원회 위원

- 태양광 및 태양열 집열기 고성능화 기술

- 태양에너지 연계 히트펌프 및 열에너지 활용 기술

- 제습 및 증발냉각 기반 저전력 냉방 시스템

- 건축물 에너지 해석 및 에너지 효율 평가

- 신재생에너지설계


- 신재생에너지공학

Publications

International Journal (SCI & SCIE)

[1]

“Experimental and Numerical Study on Performance of Indirect Evaporative Cooler with Ba?es”, Heat Transfer Engineering, 2025, 46(5), 0145-7632

[2]

“Experimental performance evaluation of air-based photovoltaic-thermal collector with rectangular turbulators and longitudinal fins”, Energy Reports. 2024, 12, 2352-4847

[3]

“Experimental Study on the Performance of an Air Conditioning Unit with a Baffled Indirect Evaporative Cooler”, Energies, 2024, 17(13), 1996-1073

[4]

“Experimental Study on the Heat Pump Performance Combined with Dual-Purpose Solar Collector”, Energies, 2024, 17(12), 1996-1073

[5]

“Performance Evaluation of Air-Based Photovoltaic Thermal Collector Integrated with Dual Duct and Semicircular Turbulator in Actual Climate Conditions”, Energies, 2024, 17(11), 1996-1073

[6]

“Performance Enhancement of Falling Film Dehumidifier by Variation Number and Width Ratio Rectangular Cylinder Based on CFD Simulation”, Int j. Heat and Mass Transfer, 2024, 221, 0017-9310

[7]

“Numerical study on the performance of a solar-assisted heat pump coupled with a photovoltaic-thermal air heater”, Energy, 2024, 285, 0360-5442

[8]

“Heat Transfer Augmentation and Friction Factor Due to the Arrangement of Rectangular Turbulators in a Finned Air Channel of a Solar Air Heater” Energies, 2023, 16(19), 1996-1073

[9]

“Performance Evaluation of the Air-Type Photovoltaic-Thermal Collector Combined with Transverse Triangle Obstacle” Int j. Energy Research, 2023, 2023, 0363-907X

[10]

“Electrical and Thermal Performances of a Single-Pass Double-Flow Photovoltaic-Thermal Collector Coupled with Nonuniform Cross-Section Rib”, Int j. Energy Research, 2023, 2023, 0363-907X

[11]

“CFD Analysis of the Heat Transfer and Fluid Flow Characteristics Using the Rectangular Rib Attached to the Fin Surface in a Solar Air Heater”, Sustainbility, 2023, 15(6), 2071-1050

[12]

“Parametric study of a novel air-based photovoltaic-thermal collector with a transverse triangular-shaped block”, Renewable energy, 2022, 201, 0960-1481

[13]

“Influence of Triangle-Shaped Obstacles on the Energy and Exergy Performance of an Air-Cooled Photovoltaic Thermal (PVT) Collector”, Sustainbility, 2022, 14(20), 2071-1050

[14]

“Performance Evaluation of PVT Air Collector Coupled with a Triangular Block in Actual Climate Conditions in Korea”, Energies, 2022, 15(11), 1996-1073

[15]

“Innovation of vortex finder geometry (tapered in-cylinder out) and additional cooling of body cyclone on velocity flow field, performance, and heat transfer of cyclone separator”, Powder Technology, 2022, 399, 0032-5910

[16]

“Effect of vortex limiter position and metal rod insertion on the flow field, heat rate, and performance of cyclone separator”, Powder Technology, 2021, 377, 0032-5910

[17]

 

"Performance Evaluation of PV/T Air Collector Having a Single-Pass Double-Flow Air Channel and Non-Uniform Cross-Section Transverse Rib", ENERGIES. 2020, 13(9),1996-1073

[18]

 

"CFD Analysis on the Heat Transfer and Fluid Flow of Solar Air Heater having Transverse Triangular Block at the Bottom of Air Duct", ENERGIES. 2020, 13(5),1996-1073

[19]

 

“Performance Characteristics of a Seawater Ice-Making Device Using a Scraped Surface Double Tube Evaporator”, APPLIED SCIENCES-BASEL. 2018, 8(11), 2076-3417

[20]

 

“Exergy characteristics of R404A indirect refrigeration system using CO2 as a secondary refrigerant”

Heat and Mass Transfer. 2018, 55(4), 0947-7411

[21]

 

“Experimental study on the performance of the vapor injection refrigeration system with an economizer for intermediate pressures”, Heat and Mass Transfer. 2018, 54(10), 0947-7411

[22]

 

“Performance comparison of heat pump with electronic and thermostatic expansion valve according to temperature variation of evaporator heat source”, Journal of Advanced Marine Engineering and Technology. 2018, 42(7), 2234-7925

[23]

 

“Heat Transfer characteristics of Flood-type Evaporator Using R22 and R134a for Fishing Vessels”

Heat Transfer Engineering. 2018, 40(12), 0145-7632

[24]

 

"A Research on the Thermal Daily Performance of Hybrid Solar Collector with Fin-and-Tube Heat Exchanger in Winter", LECTURE NOTES IN ELECTRICAL ENGINEERING. 2017, 465, 1876-1100

[25]

 

"A Study on the Heat Exchanger Performance of Hybrid Solar Collector with Air to Water Heat Exchanger Type", LECTURE NOTES IN ELECTRICAL ENGINEERING. 2017, 465, 1876-1100

[26]

 

“Performance Analysis of Brine Chiller Refrigeration Cycles”, Lecture Notes in Electrical Engineering. 2016, 415, 1876-1100

[27]

 

“Assessment of the performance of a natural gas liquefaction cycle using natural refrigerants”, Heat and Mass Transfer. 2015, 51(1), 0947-7411

[28]

 

“Performance Characteristics of the R404A Indirect Refrigeration System Using CO2 as a Secondary Refrigerant”, international journal of engineering sciences and research technology. 2014, 3(10), 2277-9655                                                 

[29]

 

“The cooling heat transfer characteristics of the supercritical CO2 in micro-fin tube”, Heat and Mass Transfer. 2013, 49(2), 0947-7411

[30]

"A model and simulation of cathode flooding and drying on unsteady proton exchange membrane fuel cell", Journal of Central South University of Technology. 2012, 19(9), 1005-9784

[31]

 

" A Novel Method to Evaluate the Performance of The Liquid Desiccant Air Dehumidifier System"

Energy and Building. 2011, 10.1(10), 0378-7788