除霜
气体压缩机
制冷剂
材料科学
空气源热泵
工作(物理)
机械
环境科学
逆变器
热力学
相对湿度
性能系数
汽车工程
热泵
霜冻(温度)
湿度
热交换器
冷却能力
控制理论(社会学)
可靠性(半导体)
热的
灵敏度(控制系统)
核工程
空调
近似误差
温度测量
联轴节(管道)
作者
Xuyan Xu,Tao Zhang,Dongming Li,Wanchun Sun,Zhijiang Wu,Yansheng Xu
出处
期刊:Energies
[Multidisciplinary Digital Publishing Institute]
日期:2026-06-10
卷期号:19 (12): 2787-2787
摘要
This study presents a novel investigation into the coupled effects of ambient temperature and compressor frequency on frosting behavior and thermal performance of inverter-driven air-source heat pumps (ASHPs) under low-temperature, high-humidity conditions. Unlike previous studies that focused on single environmental parameters, this work systematically explores temperature–frequency coupling. Experiments were conducted on a 3-HP DC inverter low-ambient-temperature ASHP unit using a multi-climate simulated enthalpy difference test bench. Single-factor analysis shows that frosting is most severe at 0 °C, where the frost growth rate peaks. Regarding compressor frequency, the coefficient of performance (COP) initially increases and then decreases with frequency. The maximum COP occurs near 45 Hz, representing the optimal energy efficiency balance in this experimental system. Sensitivity analysis demonstrates that relative humidity contributes less than 5% to performance degradation at the critical 10% COP reduction point. Thus, ambient temperature and compressor frequency are the core determinants of defrosting timing. A dual-factor prediction model for the critical defrosting air-to-coil temperature difference (∆T) is developed using temperature (t) and frequency (f) as independent variables. Validation confirms that the model maintains prediction error within 10% under both single-factor and multi-factor coupling conditions. Collectively, this research quantifies the coupled effects of ambient temperature and compressor frequency on frosting performance and provides a novel theoretical framework for precise defrosting control in inverter ASHPs based on performance attenuation.
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