This application claims priority to Chinese Patent Application No. 202210231607.5, filed Mar. 10, 2022, 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 invention relates to the technical field of throttling, in particular to a throttling device, and also relates to a refrigeration system equipped with the throttling device.
In a refrigeration system, the throttling device is an important component, which mainly changes the coolant (also known as “refrigerant”) passing through the throttling device from high-temperature and high-pressure liquid coolant to low-temperature and low-pressure liquid coolant. At present, there are many throttling modes, such as the modes using thermal expansion valve, electronic expansion valve, throttle orifice plate, and the like. In order to save costs, many water chillers on the market use the mode that combines throttle orifice plate with float valve. In this kind of throttling device, the opening of the throttle orifice plate affects the refrigerant flow, which is an important factor determining whether the refrigeration system can operate in reliable, stable and efficient manner.
Such throttling devices usually include floating balls, connecting rods, valve plates and orifice plates with orifices, etc., wherein the floating balls float up and down with the liquid level of the liquid refrigerant, and drive the valve plates to rotate through the connecting rods, thus controlling the opening of the valve plates and adjusting the flow area of the orifices, and thus further controlling the flow of refrigerant flowing out of the throttling device. Those skilled in the art find that conventional throttling devices operate well when the refrigeration system is under the condition of large capacity and low lift (see area A in
Therefore, there is an urgent need to find a throttling device that can avoid surge of the centrifugal compressor.
In view of the forgoing, according to a first aspect of the present invention, a throttling device is provided, which effectively solves the above problems and problems in other aspects existing in the prior art. In the throttling device according to the present invention, the throttling device comprises: a tank for accommodating liquid refrigerant, with an orifice plate arranged at an outlet of the tank; a floating ball capable of floating on the liquid level of the refrigerant; a pivot rod pivotally fixed on the tank through a pivot shaft; a connecting rod, with one end thereof fixedly connected with the floating ball, and the other end thereof fixedly connected with the pivot rod; a valve plate fixed on the pivot rod and located near an orifice of the orifice plate, wherein the valve plate is capable of adjusting the flow area of the orifice under the action of the pivot rod; and a limit piece located above the valve plate and being movable to limit the valve plate.
In another embodiment of the throttling device according to the present invention, the limit piece is a positioning bolt, which can move up and down along a chute.
In yet another embodiment of the throttling device according to the present invention, the chute has an arc shape.
In still another embodiment of the throttling device according to the present invention, the height of the chute is between the highest position and the lowest position of the orifice of the orifice plate.
In another embodiment of the throttling device according to the present invention, the connecting rod and the pivot rod are fixedly connected by a bolt.
In yet another embodiment of the throttling device according to the present invention, the connecting rod, the pivot rod and the valve plate are made of metal.
In still another embodiment of the throttling device according to the present invention, the valve plate has an arc-shaped cross section.
In another embodiment of the throttling device according to the present invention, the floating ball is a hollow metal ball or a solid non-metallic ball.
In addition, according to a second aspect of the present invention, a refrigeration system is further provided, which includes a centrifugal compressor, a condenser, an economizer, an evaporator and the aforementioned throttling device. The throttling device is communicated with the condenser through an inlet pipe, and with the economizer through the orifice of the orifice plate. The refrigeration system also includes an actuator, wherein the actuator moves the limit piece when the preset surge conditions of the centrifugal compressor are met, so as to adjust the minimum flow area of the orifice.
In another embodiment of the refrigeration system according to the present invention, the preset surge conditions are related to the current stability, motor speed or inlet guide vane opening during operation of the centrifugal compressor.
It can be appreciated that the throttling device according to the present invention provides additional gas flow for the second-stage impeller of the centrifugal compressor to suppress surge caused by insufficient gas supplement, improve the efficiency and stability of the centrifugal compressor, and reduce the sound and vibration of the water chiller under partial load. In addition, the throttling device of the present invention is reliable in operation, low in cost, and can meet the requirements of various operating conditions.
The technical solutions of the present invention will be described in further detail below in conjunction with the accompanying drawings and embodiments, where:
Several embodiments of the present invention will be described in detail below in conjunction with the accompanying drawings. The embodiments described are only examples of the present invention. In addition, in order to concisely describe these embodiments, all features actually implemented may not be fully described in the description.
In the depiction of the embodiments of the present invention, it should be appreciated that the orientation or position relationships indicated by the terms “center”, “longitudinal”, “transverse”, “up”, “down”, “front”, “back”, “left”, “right”, “vertical”, “horizontal”, “top”, “bottom”, “inside”, “outside” are based on the orientation or position relationships shown in the accompanying drawings, which are used only for the convenience of describing the present invention and simplifying the depiction, rather than indicating or implying that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention.
In addition, the terms “first”, “second” and “third” are only used for descriptive purposes, and cannot be understood as indicating or implying the relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined with “first”, “second” and the like can explicitly or implicitly include one or more of these features. In the depiction of the present invention, unless otherwise stated, “a plurality of” means two or more.
Furthermore, the terms “installation”, “connect with” and “connection” should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; or it can be a mechanical connection or an electric connection; or it can be a direct connection, an indirect connection through an intermediate media, or an internal communication between two components. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood on a case-by-case basis.
At present, the throttling device in the refrigeration system can adopt the mode that combines float valve with throttle orifice plate. This kind of throttling device is simple in structure, low in cost, and does not need external signals for adjustment. However, in practical applications, those skilled in the art find that although the throttling device can automatically adjust the flow area within a certain range, its gas supplement performance is poor under some operating conditions and its ability to cope with variable operating conditions and loads is poor.
As shown in
Specifically, when the liquid level of the liquid refrigerant rises, the floating ball 11 will float up accordingly, and drive the valve plate 14 to rotate clockwise around the pivot shaft through the connecting rod 12, thus gradually opening the orifice on the orifice plate 16, where at this time, the flow area of the orifice gradually increases. When the liquid level of the liquid refrigerant drops, the floating ball 11 will float down accordingly, and drive the valve plate 14 to rotate counterclockwise around the pivot shaft through the connecting rod 12, thus gradually covering the orifice on the orifice plate 16, where at this time, the flow area of the orifice gradually decreases. The limit piece 15 is located above the valve plate 14 and can be moved to limit the valve plate 14.
It should be noted that the throttling device of the present invention meets the operation requirements of the unit by changing the flow area: under the condition of large capacity and low lift (see area A in
The operating conditions of the throttling device are described in detail below in conjunction with
When the refrigeration system operates under the conditions of large capacity and low lift, the hot gas bypass is minimum. At this time, the liquid level of the refrigerant is usually above the orifice of the orifice plate of the throttling device (see
In combination with the above embodiments, in other preferred embodiments, the limit piece 15 of the throttling device 10 can be in the form of a positioning bolt, which can move up and down along a chute. In addition, those skilled in the art would readily understand that the height of the chute is between the highest position and the lowest position of the orifice of the orifice plate 16. Further, the chute has a roughly arc shape, so that the limit piece 15 can move along the rotation direction of the valve plate 14, as shown in
In addition, the present invention also provides a refrigeration system comprising the aforementioned throttling device, which is composed of a centrifugal compressor (not shown), a condenser 20, a throttling device 10, an economizer 30, an evaporator (not shown), and the like. The throttling device 10 is communicated with the condenser 20 through an inlet pipe, and with the economizer 30 through the orifice of the orifice plate 16. The centrifugal compressor sucks the low-temperature and low-pressure gas refrigerant from the evaporator, and compresses the low-temperature and low-pressure gas refrigerant into high-temperature and high-pressure gas refrigerant by doing work. The high-temperature and high-pressure gas refrigerant enters the condenser 20 to exchange heat with water and is condensed into high-pressure liquid in the condenser 20 to release a large amount of heat, the water absorbs the heat released and its temperature rises continuously, and the high-pressure liquid is throttled and depressurized by the throttling device 10 and then delivered to the economizer 30. The main function of the economizer 30 is to realize gas-liquid separation and improve the operation efficiency of the unit. The gas-liquid two-phase refrigerant enters the tank of the economizer 30 through a lead-in elbow pipe. The gaseous part of the refrigerant is completely separated from the liquid part through the structure configured in the tank of the economizer 30. The separated gaseous refrigerant enters the centrifugal compressor through the gas outlet pipe to form a secondary gas suction, and the separated liquid refrigerant flows out through the liquid outlet pipe and enters the evaporator for evaporation and refrigeration. The refrigeration system also comprises an actuator, which moves the limit piece when the preset surge conditions of the centrifugal compressor are met, so as to adjust the minimum flow area of the orifice. Further, the preset surge conditions are related to the current stability, motor speed or inlet guide vane opening during operation of the centrifugal compressor.
To sum up, the throttling device of the present invention can automatically adjust the flow in the initiating process or the partial load process and other operating conditions. Under the condition of small capacity and high lift, the minimum flow area of the orifice plate maintains unchanged; under the condition of large capacity and low lift, the minimum flow area of the orifice plate is variable. While meeting the requirements of various operating conditions of the system, it ensure that the flow area is automatically adjusted during the low-load operation phase of the system, so that the system can operate in a safe and stable manner, and prevent the surge of the centrifugal compressor caused by excessive liquid supply leading to compression with liquid, thereby achieving vibration and noise reduction. Therefore, it is recommended to apply the aforementioned throttling device to various refrigeration systems.
Some specific embodiments are listed above to illustrate in detail the throttling device and the refrigeration system equipped with the throttling device according to the invention. These individual examples are only used to illustrate the principle of the present invention and the implementations thereof, but not to limit the present invention. Those skilled in the art may, without departing from the spirit and scope of the present invention, make various modifications and improvements. For example, in order to ensure the structural strength of the internal components of the throttling device, the connecting rod 12, the pivot rod 13 and the valve plate 14 can be made of metal or other high-strength materials. Therefore, all equivalent technical solutions shall belong to the scope of the present invention and be defined by the respective claims of the present invention.
Number | Date | Country | Kind |
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202210231607.5 | Mar 2022 | CN | national |