Multifunctional heat pump system

A heat pump system and multi-functional technology, applied in heat pumps, lighting and heating equipment, damage protection, etc., can solve problems such as frequent start-up of compressors, unstable working conditions of heat pump units, overheating of compressor motors, etc., and achieve hot gas bypass Mixed energy adjustment, realize hot gas bypass energy adjustment function, and avoid the waste of equipment

Pending Publication Date: 2019-01-15
TIANJIN UNIV OF COMMERCE
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

Judging from the actual operation effect of the current small air source heat pumps, the unit is still not ideal for heating. When the cooling load is low or the outdoor ambient temperature is low, the suction pressure of the compressor is low, and the flow rate of the circulating refrigerant is small, which will cause insufficient oil return of the compressor lubricating oil, resulting in deterioration of the lubrication conditions and wear of the compressor cylinder
Moreover, long-term operation of the system below the designed suction pressure will cause the compressor motor to overheat, resulting in damage to the compressor motor coil
In order to protect the compressor, a low-pressure shutdown fault is usually added to the control system, that is, the compressor will stop immediately when the suction pressure is too low, and the compressor will not be allowed to start until the suction pressure rises to a safe value. The compressor starts frequently, which shortens the life of the compressor
Secondly, the most common defrosting method for air source heat pump units is reverse cycle defrosting. This defrosting method has many disadvantages. For example, it needs to absorb heat from the room during defrosting, and the room temperature will drop by 5-6°C, which will affect the comfort of the room. ;When switching between heating and defrosting modes, the system pressure fluctuates violently, resulting in a relativel

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Examples

Experimental program
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Effect test

Example Embodiment

[0029] Embodiment 1: Take the heat pump module in the second heat pump unit B for the cooling process, the heat pump module in the first heat pump unit A performs the bypass adjustment process as an example, that is, in the second heat pump unit B as the cooling process The refrigeration compressor in the heat pump module is running, and the refrigeration compressor in the heat pump module A in the first heat pump unit A of the bypass adjustment process is stopped. The bypass adjustment process includes: (1), hot air bypass to the energy-regulated thermodynamic cycle at the suction end of the refrigeration compressor; (2) hot air bypass to the energy-regulated thermodynamic cycle at the entrance of the indoor heat exchanger; (3), hot air bypass The energy mixed at the suction end of the compressor and the inlet of the indoor heat exchanger adjusts the thermodynamic cycle. The first valve 7, the second valve 8, the third valve 9 and the fourth valve 10 in the heat pump modules i...

Example Embodiment

[0035] Embodiment 2: Take the second heat pump unit B for the heating process, the first heat pump unit A for the bypass adjustment process or the outdoor heat exchanger defrosting process as an example, that is, the second heat pump unit as the heating process The refrigeration compressor in the heat pump module in B operates, and the refrigeration compressor in the heat pump module in the heat pump module A in the first heat pump unit A is stopped as a bypass adjustment process or an outdoor heat exchanger defrosting process. The bypass and defrost process are: (1) hot gas bypass to the energy-regulated thermodynamic cycle at the suction end of the refrigeration compressor; (2) hot gas bypass to the energy-regulated thermodynamic cycle at the entrance of the outdoor heat exchanger; (3) hot gas bypass The energy mix at the suction end of the compressor and the entrance of the outdoor heat exchanger to adjust the thermodynamic cycle; (4) Defrost cycle of the outdoor heat exchang...

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Abstract

The invention discloses a multifunctional heat pump system, and aims to provide a heat pump system which is suitable for a small heat pump system and can be implemented by splicing a plurality of heatpump modules. The multifunctional heat pump system comprises a first heat pump unit and a second heat pump unit, wherein each of the first heat pump unit and the second heat pump unit comprise a plurality of heat pump modules of the same structure; and each heat pump module comprises a refrigeration compressor, an outdoor heat exchanger, an indoor heat exchanger, a four-way reversing valve, an expansion valve, a one-way valve, a first valve, a second valve, a third valve, a fourth valve and a fifth valve. The multifunctional heat pump system can realize hot-gas bypass circulation in various forms during the summer cooling and winter heating, can realize the effect of defrosting the indoor heat exchanger by means of hot-gas bypass in winter heating, and has simple structure and high energyefficiency ratio.

Description

technical field [0001] The invention relates to the technical field of heat pumps, and more specifically, relates to a multifunctional heat pump system that is flexibly spliced ​​with multiple heat pump modules. Background technique [0002] With the adjustment of energy structure and the proposal of global sustainable development strategy, people pay more and more attention to the development and utilization of clean, safe and efficient energy. The air source heat pump system uses electric energy as the driving force, and uses outdoor ambient air as a heat source and heat sink to provide cooling and heat to the regulated object. It is one of the environmentally friendly and efficient energy supply methods that the country is promoting. [0003] At present, due to commercial reasons, there are more and more studies on large-scale units, and less research on small-scale heat pump systems. Judging from the actual operation effect of the current small air source heat pumps, th...

Claims

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Application Information

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IPC IPC(8): F25B30/02F25B41/04F25B47/02F25B49/02F25B41/20
CPCF25B30/02F25B47/022F25B49/02F25B41/20
Inventor 杨永安李瑞申陈少为
Owner TIANJIN UNIV OF COMMERCE
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