This application claims priority to Chinese Patent Application No. 201910276091.4, filed Apr. 8, 2019, and all the benefits accruing therefrom under 35 U.S.C. § 119, the contents of which in its entirety are herein incorporated by reference.
The present disclosure relates to an air conditioning system, and more particularly, the present disclosure relates to a heat cycle system and a control method for a heat cycle system.
Common thermal cycle systems include a pump, a plurality of outdoor units and a plurality of indoor units, which are connected by pipelines. A cooling medium such as water passes through the outdoor units when driven by the pump, and in the outdoor units, it exchanges heat with a refrigerant in a cooling cycle of the outdoor units via a heat exchange device such as a plate heat exchanger. When a flow rate of the cooling medium passing through the outdoor units is lower than a set value, such as 70% of a rated flow rate, there is a risk that the cooling medium will freeze in the outdoor units. Therefore, a bypass pipeline may be provided so that a part of the cooling medium does not pass through the indoor units, thereby ensuring the flow rate of the cooling medium flowing through the outdoor units.
An object of the present disclosure is to solve or at least alleviate problems existing in the related art.
According to some aspects, a thermal cycle system is provided, which includes: driving devices, one or a plurality of outdoor units, and a plurality of indoor units, which are connected by pipelines; a bypass pipeline for the plurality of indoor units, a bypass valve being disposed in the bypass pipeline; a pressure sensor that senses a pressure difference ΔPo across the plurality of outdoor units; and a controller that is preset with a pressure difference set value ΔPset, wherein the controller calculates a pressure offset parameter ΔP=ΔPo−ΔPset and adjusts an opening degree of the bypass valve based on the pressure offset parameter ΔP so that the pressure offset parameter ΔP approaches zero, and wherein the controller is preset with a first pressure offset threshold P1, and the controller is configured such that the closed indoor units enter a bypass mode one by one when ΔP>P1, until ΔP≤P1.
In some embodiments of the thermal cycle system, the controller is preset with a predetermined bypass number N0 of the indoor units, and the controller is configured to compare a load-based operating number N1 of the indoor units with the predetermined bypass number N0 when ΔP>P1; if N1≥N0, the controller sets N1 indoor units to operate, and then sets the closed indoor units to enter the bypass mode one by one until ΔP≤P1; if N0>N1, the controller sets N1 indoor units to operate, and directly sets N0−N1 closed indoor units to enter the bypass mode; and then if still ΔP>P1, the controller sets the closed indoor units to enter the bypass mode one by one until ΔP≤P1.
In some embodiments of the thermal cycle system, the predetermined bypass number N0 accounts for 20%-50% of the total number of the plurality of indoor units.
In some embodiments of the thermal cycle system, said setting the closed indoor units to enter the bypass mode one by one includes: detecting at an interval of a first time t1; and if ΔP≥P1, setting one of the closed indoor units to enter the bypass mode until ΔP≤P1.
In some embodiments of the thermal cycle system, the controller is preset with a second pressure offset threshold P2 that is less than the first pressure offset threshold P1, and the controller is configured to close the indoor units in the bypass mode one by one when ΔP<P2 until all the indoor units in the bypass mode are closed. In particular, the controller is configured to detect at an interval of a second time t2; if ΔP<P2, the opening degree of the bypass valve is less than a predetermined value and there exist indoor units in the bypass mode, then one of the indoor units in the bypass mode is closed until all the indoor units in the bypass mode are closed.
In some embodiments of the thermal cycle system, the indoor unit includes a heat exchanger and a fan, and the bypass mode is a mode in which a cooling medium flows through the heat exchanger of the indoor unit and the fan of the indoor unit is not operated, or the bypass mode is a mode in which a valve on a direct-through flow path between a fluid inlet and a fluid outlet of the indoor unit is opened. In particular, the cooling medium is water.
In another aspect, a control method for a thermal cycle system is provided, the thermal cycle system including: driving devices, one or a plurality of outdoor units, and a plurality of indoor units, which are connected by pipelines; a bypass pipeline connected in parallel with the plurality of indoor units, a bypass valve being disposed in the bypass pipeline; the method including: detecting a pressure difference ΔPo across the plurality of outdoor units; calculating a pressure offset parameter ΔP=ΔPo−ΔPset and adjusting an opening degree of the bypass valve based on the pressure offset parameter ΔP so that the pressure offset parameter ΔP approaches zero, ΔPset being a pressure difference set value; and setting a first pressure offset threshold P1, and setting closed indoor units to enter a bypass mode one by one when ΔP>P1, until ΔP≤P1.
In some embodiments of the method, the method further includes: setting a predetermined bypass number N0 of the indoor units, and comparing a load-based operating number N1 of the indoor units with the predetermined bypass number N0 when ΔP>P1; if N1≥N0, setting N1 indoor units to operate, and then setting the closed indoor units to enter the bypass mode one by one until ΔP≤P1; if N0>N1, setting N1 indoor units to operate, and directly setting N0−N1 closed indoor units to enter the bypass mode; and then if still ΔP>P1, setting the closed indoor units to enter the bypass mode one by one until ΔP≤P1.
In some embodiments of the method, the predetermined bypass number N0 accounts for 20%-50% of the total number of the plurality of indoor units.
In some embodiments of the method, the step of setting the closed indoor units to enter the bypass mode one by one includes: detecting at an interval of a first time t1; and if ΔP>P1, setting one of the closed indoor units to enter the bypass mode until ΔP≤P1.
In some embodiments of the method, the method includes: setting a second pressure offset threshold P2 that is less than the first pressure offset threshold P1, and closing the indoor units in the bypass mode one by one when ΔP<P2 until all the indoor units in the bypass mode are closed. In particular, the method includes: detecting at an interval of a second time t2; if ΔP<P2, the opening degree of the bypass valve is less than a predetermined value and there exist indoor units in the bypass mode, closing one of the indoor units in the bypass mode until all the indoor units in the bypass mode are closed.
In some embodiments of the method, the bypass mode is a mode in which a cooling medium flows through a heat exchanger of the indoor unit and a fan of the indoor unit is not operated, or the bypass mode is a mode in which a valve on a direct-through flow path between a fluid inlet and a fluid outlet of the indoor unit is opened. In particular, the cooling medium is water.
The content of the present disclosure will become easier to understand with reference to the accompanying drawings, in which:
Referring to
In the embodiment of the present disclosure, the controller 9 is preset with a pressure difference set value ΔPset, wherein the controller calculates a pressure offset parameter ΔP=ΔPo−ΔPset and adjusts an opening degree of the bypass valve 41 based on the pressure offset parameter ΔP so that the pressure offset parameter ΔP approaches zero. Specifically, when the pressure offset parameter ΔP is increased, the opening degree of the bypass valve 41 will be increased, thereby increasing a flow rate of the bypass fluid to increase a flow rate of the fluid passing through the outdoor units. Further, the controller 9 is preset with a first pressure offset threshold P1, and the controller is configured such that closed indoor units enter a bypass mode one by one when ΔP>P1, until ΔP≤P1. Generally, ΔP>P1 usually occurs when the opening degree of the bypass valve 41 has reached the maximum. At this point, the bypass valve 41 has no ability to cope with the further increase of ΔP.
In some embodiments, the indoor unit 310 may include a heat exchanger 313 and a fan 310. The bypass mode is, for example, a mode in which the cooling medium flows through the heat exchanger 313 and the fan 310 is not operated. In some embodiments, a direct-through flow path having a valve may be provided between an inlet 312 and an outlet 311 of the heat exchanger 313 of the indoor unit 310, and the valve on the direct-through flow path is opened in the bypass mode so that at least part of the fluid passes directly through the direct-through flow path without passing through the heat exchanger 313.
In some embodiments, the controller 9 is preset with a predetermined bypass number N0 of the indoor units, and the controller 9 is configured to compare a load-based operating number N1 with the predetermined bypass number N0 when ΔP>P1; if N1≥N0, the controller sets N1 indoor units to operate, and then sets the closed indoor units to enter the bypass mode one by one until ΔP≤P1; if N0>N1, the controller sets N1 indoor units to operate, and directly sets N0−N1 closed indoor units to enter the bypass mode; and then if still ΔP>P1, the controller sets the closed indoor units to enter the bypass mode one by one until ΔP≤P1. N1 is the number of indoor units required to be operated determined by the controller of the thermal cycle system based on the current load situation. For the predetermined bypass number N0, in some embodiments, it accounts for more than 20% of the total number L of the plurality of indoor units; more specifically, in some embodiments, the predetermined bypass number N0 accounts for 20%-50% of the total number L of the plurality of indoor units; optionally, the predetermined bypass number N0 accounts for 20%-30% of the total number L of the plurality of indoor units; optionally, the predetermined bypass number N0 is 25% of the total number L of the plurality of indoor units when rounded; optionally, the predetermined bypass number N0 is at least greater than three.
In some embodiments, the step of setting the closed indoor units to enter the bypass mode one by one includes: detecting at an interval of a first time t1; and if ΔP>P1, setting one of the closed indoor units to enter the bypass mode until ΔP≤P1. In some embodiments, the first time t1 may be set based on a response time of the system; for example, the first time t1 may be in a range from 5 seconds to 30 seconds, optionally in a range from 5 seconds to 15 seconds. Alternatively, in some embodiments, the first time t1 may be set to 10 seconds.
In some embodiments, the controller 9 is preset with a second pressure offset threshold P2 that is less than the first pressure offset threshold P1, and the controller 9 is configured to close the indoor units in the bypass mode one by one when ΔP<P2 until all the indoor units in the bypass mode are closed. In some embodiments, the controller 9 is configured to detect at an interval of a second time t2; if ΔP<P2, the opening degree of the bypass valve is less than a predetermined value and there exist indoor units in the bypass mode, then one of the indoor units in the bypass mode is closed until all the indoor units in the bypass mode are closed. Herein, if the opening degree of the bypass valve is less than a predetermined value M, for example, if is it less than 80% of the total opening degree of the bypass valve, then it is considered that the bypass valve now has the ability to cope with the increased flow rate caused by closing the bypass indoor units. In this case, closing the indoor units in the bypass mode will not cause an excessive reduction of the flow rate at the outdoor units, and repeated opening and closing of the indoor units is avoided. In addition, in some embodiments, the second time t2 may be equal to the first time t2, or may be different from the first time t2.
In another aspect, a control method for a thermal cycle system according to an embodiment of the present disclosure will be described with reference to
With continued reference to
With continued reference to
The device and method according to the embodiments of the present disclosure can be adaptively adjusted to ensure the flow rate of the cooling medium flowing through the outdoors unit and avoid situations such as freezing of the cooling medium or system alarm caused by the excessively low flow rate of the cooling medium.
The specific embodiments described above are merely for describing the principle of the present disclosure more clearly, and various components are clearly illustrated or depicted to make it easier to understand the principle of the present disclosure. Those skilled in the art can readily make various modifications or changes to the present disclosure without departing from the scope of the present disclosure. Therefore, it should be understood that these modifications or changes should be included within the scope of protection of the present disclosure.
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