The present disclosure relates to the field of air conditioners, in particular, to a refrigerant purification apparatus and a refrigerant unit.
When using an existing refrigerant unit, external water may enter the refrigerant system. Once water enters the refrigerant system, it would adversely affect heat transfer and the stability of the refrigerant unit.
Existing refrigerant purification apparatus could not remove the water in the refrigerant systems, so the above problems still affect the operation of the refrigerant unit.
In order to solve the problem of refrigerant purification apparatus in the prior art unable to remove water in refrigerant systems, embodiments of the present disclosure provide a refrigerant purification apparatus and a refrigerant unit.
An embodiment of the present application provides a refrigerant purification apparatus, comprising: a main shell, a liquid separation space and a liquid collection space being formed in the main shell, the liquid collection space being located below the liquid separation space, and the liquid separation space and the liquid collection space being in communication by a collection pipe, wherein the main shell is provided with a first refrigerant inlet and a water outlet in communication with the liquid separation space, and the main shell is also provided with a first refrigerant outlet in communication with the liquid collection space; a separation baffle, provided in the liquid separation space at a position adjacent to the first refrigerant inlet, the separation baffle configured for colliding with a water-containing refrigerant injected from the first refrigerant inlet, so that refrigerant and water in the water-containing refrigerant are separated and layered in the liquid separation space, the collection pipe configured to introduce the refrigerant located at a lower layer within the liquid separation space into the liquid collection space, and the water outlet configured to discharge the water located at a upper layer within the liquid separation space.
In one embodiment, the water outlet is vertically higher than the collection pipe.
In one embodiment, the refrigerant purification apparatus further comprises a water-separation sleeve, the water-separation sleeve is sleeved outside a collection port of the collection pipe, the upper opening of the water-separation sleeve is higher than the collection port, and the lower opening of the water-separation sleeve is lower than the collection port.
In one embodiment, the separation baffle comprises: a side baffle, vertically disposed in the liquid separation space; and an upper baffle, horizontally disposed on the top of the side baffle.
In one embodiment, the separation baffle further comprises a lower baffle, the lower baffle is disposed at the bottom of the side baffle, and the lower baffle separates the liquid separation space and the liquid collection space in the main shell.
In one embodiment, a gas collection space is formed in the main shell, and the gas collection space is located above the liquid separation space and communicates with the liquid separation space. The gas collection space configured to collect the gaseous refrigerant separated from the water-containing refrigerant. The main shell is provided with an air outlet in communication with the gas collection space.
In one embodiment, the refrigerant purification apparatus further comprises a filter, the filter being disposed in the gas collection space to filter the gaseous refrigerant separated from the water-containing refrigerant.
In one embodiment, the filter comprises two porous baffles and a gas-liquid filtering net disposed between the two porous baffles.
In one embodiment, the main shell is provided with a pressure measurement port in communication with the gas collection space.
In one embodiment, the refrigerant purification apparatus further comprises: a sub-shell sleeved on the main shell and adjacent to the gas collection space, and a heat exchange space being formed between the sub-shell and the main shell, on the sub-shell disposed a second refrigerant inlet and a second refrigerant outlet in communication with the heat exchange space.
In one embodiment, the second refrigerant inlet is located below the second refrigerant outlet.
In one embodiment, the refrigerant purification apparatus further comprises a viewing window, the viewing window being mounted on at least one of the main shell and the sub-shell.
In one embodiment, there are a plurality of viewing windows, and the plurality of viewing windows disposed at intervals in a vertical direction.
In the above embodiments, the water-containing refrigerant is injected into the liquid collection space from the first refrigerant inlet, and the water-containing refrigerant is sprayed onto the separation baffle for collision, which is beneficial to the separation of the refrigerant and the water in the water-containing refrigerant. Subsequently, the refrigerant and the water would be deposited in the liquid separation space. Since the density of water is less than the density of the refrigerant, the water would float above the refrigerant. Then, the refrigerant located at the lower layer within the liquid separation space is introduced, by the collection pipe, into the liquid collection space, and then the refrigerant is discharged from the first refrigerant outlet. In this way, water and refrigerant could be effectively separated from the water-containing refrigerant, ensuring the stability of the operation of the refrigerant unit.
The drawings constituting a part of the present disclosure intend to provide a further understanding of the present disclosure. The embodiments of the present disclosure and their descriptions are used to illustrate the present disclosure and are not intended to limit the present disclosure. In the drawings:
In order to make the objectives, technical solutions and advantages of the present disclosure clearer, the present disclosure would be described in further details with embodiments and accompanying drawings. Here, the exemplary embodiments of the present disclosure and the description thereof are used to illustrate the present disclosure, but are not intended to limit the present disclosure.
By applying the technical solution of the present disclosure, the water-containing refrigerant is injected into the liquid collection space 12 through the first refrigerant inlet 14. The water-containing refrigerant is sprayed onto the separation baffle 20 for collision, which is beneficial to the separation of the refrigerant and the water in the water-containing refrigerant. Subsequently, the refrigerant and water would be deposited in the liquid separation space 11. Since the density of water is less than the density of the refrigerant, the water would float above the refrigerant. Then, the collection pipe 17 would introduce the refrigerant located in the lower layer within the liquid separation space 11 into the liquid collection space 12 and then be discharged from the first refrigerant outlet 16; the water located in the upper layer within the liquid separation space 11 would be discharged by water outlet 15. In this way, water and refrigerant would be effectively separated from the water-containing refrigerant, ensuring the stability of the operation of the refrigerant unit.
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By using the refrigerant purification apparatus of the present disclosure, the water in the water-containing refrigerant could be effectively separated out, and the low-pressure refrigerant steam could also be used to cool the high-pressure refrigerant liquid to increase its supercooling degree. The filter 30 could also separate the liquid droplets entrained in the low-pressure refrigerant steam, to avoid liquid contained in incoming gas, and improve the stability of the unit.
The disclosure above is preferred embodiments of the present disclosure and is not intended to limit the present disclosure. For those skilled in the art, the embodiments of the present disclosure may have various modifications and changes. Any modification, equivalent replacement, improvement, etc. within the spirit and principles of the present disclosure should be included in the protection scope of the present disclosure.
Number | Date | Country | Kind |
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201810422065.3 | May 2018 | CN | national |
This application is the United States national phase of International Application No. PCT/CN2018/121534 filed Dec. 17, 2018, and claims priority to Chinese Patent Application No. 201810422065.3 filed May 5, 2018, the disclosures of which are hereby incorporated by reference in their entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/121534 | 12/17/2018 | WO | 00 |