The Application of Icephobic Coatings to Air-Source Heat Pumps

被引:0
作者
Martin, Cara [1 ]
Li, Song [1 ]
Domitrovic, Ron [2 ]
Bush, John [2 ]
Oppenheim, Paul [3 ]
机构
[1] Optimized Thermal Syst Inc OTS, Beltsville, MD 20705 USA
[2] EPRI, Knoxville, TN USA
[3] Univ Florida, Gainesville, FL 32611 USA
来源
2017 ASHRAE WINTER CONFERENCE PAPERS | 2017年
关键词
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
Eliminating or minimizing the defrost penalty of air source heat pumps will increase their energy efficiency and their market penetration. Preliminary research suggests that coating the outdoor coil of a heat pump with an icephobic coating will lead to reduced (or delayed) frost accumulation and defrosting requirements. Additionally, the coatings may allow faster shedding of ice and shorten the defrost duration. Prior research in nanotechnology has shown that a normal layer of polymer with particles for surface texture approximately 10 to 20 microns thick impacted the heat transfer characteristics of a metal substrate. Given the small clearance between fins in an assembled heat exchanger, a procedure was developed to apply this concept to improve heat transfer performance in heat pump applications. Feasibility of this concept was explored through experimental investigation of a residential-style 2.5-ton heat pump system. The outdoor coils of two identical heat pumps were modified to incorporate an icephobic coating. To do so, the coils were removed from the outdoor units. The fin surfaces were roughened with an acid etch and a near mono-molecular layer of a highly repellent material was applied. Roughening the surface can bring about texture similar to the particle method. A very thin coating system was derived using a monomer and a low molecular weight oligomer. This coating system was then applied by pouring it repeatedly over the coils. Both coils were treated in the same fashion. After treatment was applied, the coils were reassembled in the outdoor units and prepared for experimental testing. Using an environmental chamber and temperature-controlled wind tunnel, extensive experiments were conducted to compare the coated coil prototypes against a baseline unit that was not modified. Testing was conducted under controlled conditions and served to quantify the difference in frost accumulation and defrost cycle times between each of the units. Both coated coils showed improvement over the baseline condition in terms of reduced frost accumulation, though results were inconsistent, likely due to uneven application of the icephobic coating. Ultimately, this effort shows the potential of an icephobic coating, but more work is required to address manufacturing techniques and operational challenges. Coating fins prior to assembly into coils, for example, could improve both the process of application of the icephobic coating and coil performance.
引用
收藏
页数:8
相关论文
共 50 条
[41]   Thermal storage integrated into air-source heat pumps to leverage building electrification: A systematic literature review [J].
Ermel, Conrado ;
Bianchi, Marcus V. A. ;
Cardoso, Ana Paula ;
Schneider, Paulo S. .
APPLIED THERMAL ENGINEERING, 2022, 215
[42]   A study on the integration of air-source heat pumps, solar collectors, and PCM tanks for outdoor swimming pools for winter application in subtropical climates [J].
Li, Yantong ;
Nord, Natasa ;
Wu, Huijun ;
Yu, Zhun ;
Huang, Gongsheng .
JOURNAL OF BUILDING PERFORMANCE SIMULATION, 2020, 13 (06) :662-683
[43]   Technical Assessment of Ground-Source, Air-Source, and Hybrid Heat Pumps for Single-Family Buildings in Cold Climates [J].
Eslami-Nejad, Parham ;
Hakkaki-Fard, Ali ;
Aidoun, Zine ;
Ouzzane, Mohamed .
ASHRAE TRANSACTIONS, VOL 122, PT 2, 2016, 122 :270-280
[44]   NEW AIR-SOURCE HEAT PUMP SYSTEM. [J].
Matsuda, Toshiharu ;
Miyamoto, Seigo ;
Minoshima, Yasuo .
ASHRAE Journal, 1978, 20 (08) :32-35
[45]   Increase of energy self-consumption in hybrid RES installations with PV panels and air-source heat pumps [J].
Pater, Sebastian .
CHEMICAL AND PROCESS ENGINEERING-NEW FRONTIERS, 2023, 44 (04)
[46]   Experimental investigation and industrial application of a cascade air-source high temperature heat pump [J].
Wu, Di ;
Jiang, Jiatong ;
Hu, Bin ;
Wang, R. Z. ;
Sun, Yan .
RENEWABLE ENERGY, 2024, 232
[47]   Simulation and comparison of air-source heat pumps using variable composition and constant composition mixtures or pure refrigerant [J].
Liu, Li-Hua ;
Chen, Guang-Ming ;
Wang, Qin .
Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2008, 29 (09) :1458-1462
[48]   Reducing carbon, tackling fuel poverty: adoption and performance of air-source heat pumps in East Yorkshire, UK [J].
Owen, Alice ;
Mitchell, Gordon ;
Unsworth, Rachael .
LOCAL ENVIRONMENT, 2013, 18 (07) :817-833
[49]   Performance analysis of a novel hybrid vapor injection cycle with subcooler and flash tank for air-source heat pumps [J].
Qi, Hongjie ;
Liu, Fuya ;
Yu, Jianlin .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2017, 74 :540-549
[50]   Selection of relevant features to detect and diagnose single and multiple simultaneous soft faults in air-source heat pumps [J].
Llopis-Mengual, Belen ;
Navarro-Peris, Emilio .
APPLIED THERMAL ENGINEERING, 2024, 238