TWI715330B - Two-stage compressor - Google Patents

Two-stage compressor Download PDF

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Publication number
TWI715330B
TWI715330B TW108144258A TW108144258A TWI715330B TW I715330 B TWI715330 B TW I715330B TW 108144258 A TW108144258 A TW 108144258A TW 108144258 A TW108144258 A TW 108144258A TW I715330 B TWI715330 B TW I715330B
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chamber
opening
stage compressor
state
fluid
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TW108144258A
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Chinese (zh)
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TW202122685A (en
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葉忠泓
李訓安
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復盛股份有限公司
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Priority to CN202010087017.0A priority patent/CN112901490B/en
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Publication of TW202122685A publication Critical patent/TW202122685A/en

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04CROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
    • F04C23/00Combinations of two or more pumps, each being of rotary-piston or oscillating-piston type, specially adapted for elastic fluids; Pumping installations specially adapted for elastic fluids; Multi-stage pumps specially adapted for elastic fluids
    • F04C23/005Combinations of two or more pumps, each being of rotary-piston or oscillating-piston type, specially adapted for elastic fluids; Pumping installations specially adapted for elastic fluids; Multi-stage pumps specially adapted for elastic fluids of dissimilar working principle
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04CROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
    • F04C28/00Control of, monitoring of, or safety arrangements for, pumps or pumping installations specially adapted for elastic fluids
    • F04C28/02Control of, monitoring of, or safety arrangements for, pumps or pumping installations specially adapted for elastic fluids specially adapted for several pumps connected in series or in parallel
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04CROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
    • F04C29/00Component parts, details or accessories of pumps or pumping installations, not provided for in groups F04C18/00 - F04C28/00

Abstract

A two-stage compressor including a body, a first and a second compressing modules disposed in the body, a pressure releasing module, and a control module is provided. The body has a first chamber, a second chamber, and a third chamber, wherein the second compressing module is communicated between the first and the second chambers, the first chamber is communicated between the first and the second compressing modules, and the second compressing module is communicated between the first and the third chambers. The second compressing module includes a pair of scrolls coupled to each other in a face-to-face manner and rotated about an axis relatively, wherein the first and the third chambers are located at opposite sides of the scrolls. The pressure releasing module is communicated between the first, the second and the third chambers. The control module drives the pressure releasing module to form pressure differences of chambers or not.

Description

雙級壓縮機Two-stage compressor

本發明是有關於一種雙級壓縮機。The present invention relates to a two-stage compressor.

在現今生活中,冷凍系統隨著使用需求而不斷地擴增,其中雙級壓縮機之主要原理是通過多級壓縮來提高冷凍系統的製冷循環效率,並進而達到節能係果。一般而言,雙級壓縮機內部主要裝設有二個不同壓縮模組,例如螺桿壓縮模組與渦卷壓縮模組。In today's life, the refrigeration system is continuously expanded with the demand for use. The main principle of the two-stage compressor is to improve the refrigeration cycle efficiency of the refrigeration system through multi-stage compression, and thereby achieve energy-saving results. Generally speaking, a two-stage compressor is mainly equipped with two different compression modules, such as a screw compression module and a scroll compression module.

然,冷凍系統在實際使用上並非處於隨時需要全負載的狀態,且常需視環境溫度、製冷劑壓縮前後形成的壓縮比等條件而有所不同,因此對於雙級壓縮機而言,其也非需讓不同壓縮模組處於全時作動的狀態。據此,如何讓雙級壓縮機能依據不同工況而提供對應的運轉狀態,以更進一步地提高其運轉效率與適用性,實為相關技術人員所需思考並解決的課題。However, in actual use, the refrigeration system is not in a state that requires full load at any time, and often needs to be different depending on the ambient temperature, the compression ratio formed before and after the refrigerant is compressed, so for the two-stage compressor, it is also It is not necessary to keep different compression modules in full-time active state. According to this, how to make the two-stage compressor provide corresponding operating conditions according to different working conditions, so as to further improve its operating efficiency and applicability, is a problem that relevant technicians need to think and solve.

本發明提供一種雙級壓縮機,其能依據使用工況而提供對應的運轉狀態,以提昇雙級壓縮機的運轉效率與適用性。The present invention provides a two-stage compressor, which can provide corresponding operating states according to operating conditions, so as to improve the operating efficiency and applicability of the two-stage compressor.

本發明的雙級壓縮機,包括機體、第一壓縮模組、第二壓縮模組、洩壓模組以及控制模組。機體具有第一腔室、第二腔室與第三腔室。第一壓縮模組設置於機體,第二壓縮模組設置於機體且連通於第一腔室與第二腔室之間,第一腔室連通於第一壓縮模組與第二壓縮模組之間,且第二壓縮模組連通於第一腔室與第三腔室之間。第二壓縮模組包括一對渦卷,彼此相向且沿一軸可動地套接在一起,第一腔室與第三腔室分別位於渦卷的相對兩側。洩壓模組連通於第一腔室、第二腔室與第三腔室之間。控制模組用以驅動洩壓模組、第一壓縮模組與第二壓縮模組。在第一狀態時,控制模組驅動第一壓縮模組壓縮並傳送流體至第一腔室,且控制模組驅動第二壓縮模組的渦卷再將流體從第一腔室壓縮並傳送至第二腔室與第三腔室。控制模組還驅動洩壓模組阻隔第一腔室與第三腔室,且使洩壓模組阻隔第一腔室與第二腔室,其中第三腔室的流體壓力大於第一腔室的流體壓力以使渦卷彼此抵接,以壓縮行經第二壓縮模組的流體。在第二狀態時,控制模組驅動洩壓模組連通第一腔室與第三腔室,以使第一腔室與第二腔室彼此連通,其中第一腔室的流體壓力與第三腔室的流體壓力一致而使渦卷彼此局部脫離,以停止壓縮行經第二壓縮模組的流體。The two-stage compressor of the present invention includes a body, a first compression module, a second compression module, a pressure relief module, and a control module. The body has a first chamber, a second chamber and a third chamber. The first compression module is disposed on the body, the second compression module is disposed on the body and communicated between the first chamber and the second chamber, and the first chamber is connected between the first compression module and the second compression module The second compression module is connected between the first chamber and the third chamber. The second compression module includes a pair of scrolls, which are opposite to each other and movably sleeved together along an axis. The first chamber and the third chamber are respectively located on opposite sides of the scroll. The pressure relief module is connected between the first chamber, the second chamber and the third chamber. The control module is used for driving the pressure relief module, the first compression module and the second compression module. In the first state, the control module drives the first compression module to compress and transfer fluid to the first chamber, and the control module drives the scroll of the second compression module to compress and transfer the fluid from the first chamber to the The second chamber and the third chamber. The control module also drives the pressure relief module to block the first chamber and the third chamber, and makes the pressure relief module block the first chamber and the second chamber, wherein the fluid pressure of the third chamber is greater than that of the first chamber The pressure of the fluid causes the scrolls to abut against each other to compress the fluid passing through the second compression module. In the second state, the control module drives the pressure relief module to connect the first chamber and the third chamber, so that the first chamber and the second chamber communicate with each other, wherein the fluid pressure of the first chamber is The fluid pressures of the chambers are consistent to cause the scrolls to be partially separated from each other to stop compressing the fluid passing through the second compression module.

在本發明的一實施例中,上述的第二壓縮模組包括第一渦卷與第二渦卷,第一渦卷沿該軸可移動地設置於機體內,第二渦卷沿該軸可轉動地耦接於第一渦卷,第三腔室位於第一渦卷的背側。在第一狀態時,傳送至第三腔室的流體壓力大於位在第一腔室的流體壓力,以驅動第一渦卷抵接第二渦卷而壓縮行經渦卷的流體。在第二狀態時,第三腔室的流體壓力與第一腔室的流體壓力一致,以驅動第一渦卷局部脫離第二渦卷而不壓縮行經渦卷的流體。In an embodiment of the present invention, the above-mentioned second compression module includes a first scroll and a second scroll. The first scroll is movably disposed in the body along the shaft, and the second scroll is movable along the shaft. It is rotatably coupled to the first scroll, and the third chamber is located on the back side of the first scroll. In the first state, the pressure of the fluid delivered to the third chamber is greater than the pressure of the fluid located in the first chamber to drive the first scroll to abut the second scroll to compress the fluid passing through the scroll. In the second state, the fluid pressure of the third chamber is consistent with the fluid pressure of the first chamber to drive the first scroll to partially separate from the second scroll without compressing the fluid passing through the scroll.

在本發明的一實施例中,上述的雙級壓縮機還包括馬達,連接第一壓縮模組與第二渦卷。馬達沿該軸驅動第二渦卷相對於第一渦卷轉動,控制模組電性連接馬達。In an embodiment of the present invention, the aforementioned two-stage compressor further includes a motor connected to the first compression module and the second scroll. The motor drives the second scroll to rotate relative to the first scroll along the shaft, and the control module is electrically connected to the motor.

在本發明的一實施例中,冷凝器連通於上述的機體,膨脹閥連通於冷凝器,且蒸發器連通於該膨脹閥與上述的雙級壓縮機,雙級壓縮機、冷凝器、膨脹閥與蒸發器共同形成流體循環系統。In an embodiment of the present invention, the condenser is connected to the aforementioned body, the expansion valve is connected to the condenser, and the evaporator is connected to the expansion valve and the aforementioned two-stage compressor, two-stage compressor, condenser, and expansion valve Together with the evaporator, it forms a fluid circulation system.

在本發明的一實施例中,上述的控制模組依據流體循環系統的負載電流而使雙級壓縮機轉換至第一狀態或第二狀態。當負載電流大於或等於預設電流時,控制模組轉換雙級壓縮機至第二狀態。當負載電流小於預設電流時,控制模組轉換雙級壓縮機至第一狀態。In an embodiment of the present invention, the aforementioned control module switches the two-stage compressor to the first state or the second state according to the load current of the fluid circulation system. When the load current is greater than or equal to the preset current, the control module switches the two-stage compressor to the second state. When the load current is less than the preset current, the control module switches the two-stage compressor to the first state.

在本發明的一實施例中,上述的控制模組依據蒸發器的流體壓力而使雙級壓縮機轉換至第一狀態或第二狀態。當蒸發器的流體壓力大於或等於預設壓力時,控制模組轉換雙級壓縮機至第二狀態。當蒸發器的流體壓力小於預設壓力時,控制模組轉換雙級壓縮機至第一狀態。In an embodiment of the present invention, the aforementioned control module switches the two-stage compressor to the first state or the second state according to the fluid pressure of the evaporator. When the fluid pressure of the evaporator is greater than or equal to the preset pressure, the control module switches the two-stage compressor to the second state. When the fluid pressure of the evaporator is less than the preset pressure, the control module switches the two-stage compressor to the first state.

在本發明的一實施例中,上述的控制模組依據流體循環系統的壓縮比而使雙級壓縮機轉換至第一狀態或第二狀態。當壓縮比大於或等於預設壓縮比時,控制模組轉換雙級壓縮機至第二狀態。當壓縮比小於預設壓縮比時,控制模組轉換雙級壓縮機至第一狀態。In an embodiment of the present invention, the above-mentioned control module switches the two-stage compressor to the first state or the second state according to the compression ratio of the fluid circulation system. When the compression ratio is greater than or equal to the preset compression ratio, the control module switches the two-stage compressor to the second state. When the compression ratio is less than the preset compression ratio, the control module switches the two-stage compressor to the first state.

在本發明的一實施例中,上述的洩壓模組包括缸體、活塞以及電磁閥。缸體具有第一開口、第二開口、第三開口與第四開口,其中第一開口經由第一管路連通第三腔室,第二開口經由第二管路連通第一腔室,第三開口連通第二腔室,第四開口連通第一腔室。活塞可移動地設置於缸體內,以連通或阻隔第三開口與第四開口。電磁閥設置於第二管路。在第一狀態時,控制模組驅動電磁閥以關閉第二管路,第三腔體的流體經由第一管路與第一開口流入缸體,以抵推活塞阻隔第三開口與第四開口。在第二狀態時,控制模組驅動電磁閥以開啟第二管路,以使第三腔室、第一管路、缸體、第二管路與第一腔室彼此連通而使流體壓力一致,並使活塞連通第三開口與第四開口而讓第一腔室、缸體與第二腔室彼此連通。In an embodiment of the present invention, the aforementioned pressure relief module includes a cylinder, a piston, and a solenoid valve. The cylinder has a first opening, a second opening, a third opening, and a fourth opening. The first opening communicates with the third chamber through the first pipeline, the second opening communicates with the first chamber through the second pipeline, and the third The opening communicates with the second chamber, and the fourth opening communicates with the first chamber. The piston is movably arranged in the cylinder to communicate with or block the third opening and the fourth opening. The solenoid valve is arranged in the second pipeline. In the first state, the control module drives the solenoid valve to close the second pipeline, and the fluid in the third cavity flows into the cylinder through the first pipeline and the first opening to block the third opening and the fourth opening by pushing the piston . In the second state, the control module drives the solenoid valve to open the second pipeline, so that the third chamber, the first pipeline, the cylinder, the second pipeline, and the first chamber communicate with each other to make the fluid pressure consistent , And make the piston communicate with the third opening and the fourth opening, so that the first chamber, the cylinder and the second chamber communicate with each other.

在本發明的一實施例中,缸體具有第一內部空間、第二內部空間與擋部,第一內部空間經由第一開口連接第一管路,第一內部空間經由第二開口連接第二管路,擋部位於第一內部空間與第二內部空間之間。在第一狀態時,第三腔室的流體經由第一管路與第一開口而流入第一內部空間,以抵推活塞遠離擋部而阻隔第三開口與第四開口。In an embodiment of the present invention, the cylinder has a first internal space, a second internal space, and a block, the first internal space is connected to the first pipeline through the first opening, and the first internal space is connected to the second internal space through the second opening. For the pipeline, the block is located between the first internal space and the second internal space. In the first state, the fluid in the third chamber flows into the first internal space through the first pipe and the first opening, so as to push the piston away from the blocking portion to block the third opening and the fourth opening.

在本發明的一實施例中,上述的洩壓模組還包括彈性件,連接在活塞與缸體之間。在第一狀態時,流體抵推活塞以變形彈性件。在第二狀態時,彈性件驅動活塞抵接至擋部,以使第三開口與第四開口經由第二內部空間而彼此連通。In an embodiment of the present invention, the aforementioned pressure relief module further includes an elastic member connected between the piston and the cylinder. In the first state, the fluid pushes against the piston to deform the elastic member. In the second state, the elastic element drives the piston to abut against the blocking portion, so that the third opening and the fourth opening are communicated with each other through the second internal space.

在本發明的一實施例中,在第二狀態時,位在第一腔室的流體的大部分經由第四開口、第二內部空間與第三開口傳送至第二腔室,位在第一腔室的流體的小部分經由第一壓縮模組傳送至第二腔室。In an embodiment of the present invention, in the second state, most of the fluid located in the first chamber is transferred to the second chamber through the fourth opening, the second internal space and the third opening, and the fluid located in the first chamber is A small part of the fluid in the chamber is transferred to the second chamber through the first compression module.

在本發明的一實施例中,上述的第一壓縮模組為螺桿式壓縮模組、活塞式壓縮模組或離心式壓縮模組。In an embodiment of the present invention, the aforementioned first compression module is a screw compression module, a piston compression module, or a centrifugal compression module.

在本發明的一實施例中,上述的洩壓模組包括缸體、活塞、管路以及電磁閥。缸體具有第一開口、第二開口與第三開口。活塞可移動地設置於缸體內,以連通或阻隔第二開口與第三開口。管路連接第三腔室、第一開口與第一腔室之間。電磁閥設置於管路且電性連接控制模組。在第一狀態時,控制模組驅動電磁閥以阻斷流體經由管路流向第一腔室,第三腔室的流體經由管路、第一開口流入缸體,以抵推活塞阻隔第二開口與第三開口。在第二狀態時,控制模組驅動電磁閥以連通第三腔室與第一腔室,以使第三腔室、管路與缸體內部的流體壓力一致,並使活塞連通第二開口與第三開口而讓第一腔室經由缸體連通該第二腔室。In an embodiment of the present invention, the aforementioned pressure relief module includes a cylinder, a piston, a pipeline, and a solenoid valve. The cylinder has a first opening, a second opening and a third opening. The piston is movably arranged in the cylinder to communicate with or block the second opening and the third opening. The pipeline connects the third chamber, the first opening and the first chamber. The solenoid valve is arranged in the pipeline and electrically connected to the control module. In the first state, the control module drives the solenoid valve to block the fluid from flowing to the first chamber through the pipeline, and the fluid in the third chamber flows into the cylinder through the pipeline and the first opening to block the second opening from the piston. With the third opening. In the second state, the control module drives the solenoid valve to connect the third chamber with the first chamber, so that the third chamber, the pipeline, and the fluid pressure inside the cylinder are consistent, and the piston connects the second opening with The third opening allows the first chamber to communicate with the second chamber via the cylinder.

在本發明的一實明的一實施例中,上述的管路具有第一流徑與第二流徑,第一流徑連通第三腔室與第一開口,第二流徑連通第三腔室與第一腔室,電磁閥位於第二流徑。In a practical embodiment of the present invention, the aforementioned pipeline has a first flow path and a second flow path, the first flow path communicates with the third chamber and the first opening, and the second flow path communicates with the third chamber and In the first chamber, the solenoid valve is located in the second flow path.

在本發明的一實明的一實施例中,上述的雙級壓縮機還包括彈性件,連接在活塞與缸體之間。在第一狀態時,流體抵推活塞以變形彈性件。在第二狀態時,彈性件驅動活塞以使第二開口與第三開口經由缸體而彼此連通。In a practical embodiment of the present invention, the aforementioned two-stage compressor further includes an elastic member connected between the piston and the cylinder. In the first state, the fluid pushes against the piston to deform the elastic member. In the second state, the elastic member drives the piston to make the second opening and the third opening communicate with each other via the cylinder.

基於上述,在雙級壓縮機的路線設置中,洩壓模組是連通於機體的第一腔室、第二腔室與第三腔室之間,第二壓縮模組用以將第一腔室的流體壓縮並傳送至第二腔室與第三腔室。再者,第二壓縮模組的渦卷是採浮動設置,並使第一腔室與第三腔室分別位在渦卷的相對兩側。據此,在第一狀態時,控制模組藉由洩壓模組阻隔第一腔室與第三腔室,且因此阻隔第一腔室與第二腔室,因而第三腔室會存在已被壓縮的流體,如此便能因第一腔室、第三腔室的流體壓力差而驅動渦卷相互抵接,以讓保持抵接狀態的渦卷能持續地對行經的流體進行壓縮,一旦需對第二壓縮模組進行卸載,則控制模組驅動洩壓模組連通第一腔室與第三腔室,進而使洩壓模組連通第一腔室與第二腔室,如此,第一腔室、第二腔室與第三腔室處於相互連通狀態,而渦卷將因第三腔室的流體壓力與第一腔室的流體壓力一致而呈現局部脫離狀態,而不再對行經的流體進行壓縮。Based on the above, in the route setting of the two-stage compressor, the pressure relief module is connected between the first chamber, the second chamber and the third chamber of the machine body, and the second compression module is used to connect the first chamber The fluid in the chamber is compressed and transferred to the second chamber and the third chamber. Furthermore, the scroll of the second compression module is arranged floating, and the first chamber and the third chamber are located on opposite sides of the scroll respectively. According to this, in the first state, the control module uses the pressure relief module to block the first chamber and the third chamber, and therefore block the first chamber and the second chamber, so that the third chamber will have The compressed fluid can drive the scrolls to abut against each other due to the fluid pressure difference between the first chamber and the third chamber, so that the scrolls that remain in contact can continuously compress the passing fluid. If the second compression module needs to be unloaded, the control module drives the pressure relief module to communicate with the first chamber and the third chamber, so that the pressure relief module communicates with the first chamber and the second chamber. The first chamber, the second chamber, and the third chamber are in a state of communication with each other, and the scroll will be partially separated because the fluid pressure in the third chamber is consistent with the fluid pressure in the first chamber, and will no longer be aligned The fluid is compressed.

如此一來,雙級壓縮機便能藉由控制模組依據特定條件而對應操控洩壓模組,據以造成上述兩種狀態,讓雙級壓縮機能在第一、第二壓縮模組皆作動的雙級壓縮狀態與僅第一壓縮模組作動的單級壓縮狀態之間切換,進而有效地提升效能與適用性,同時達到進一步節能的效果。In this way, the two-stage compressor can control the pressure relief module according to specific conditions by the control module, thereby creating the above two states, so that the two-stage compressor can operate in both the first and second compression modules Switch between the two-stage compression state and the single-stage compression state in which only the first compression module is activated, thereby effectively improving performance and applicability, while achieving further energy-saving effects.

圖1是依據本發明一實施例的雙級壓縮機的系統示意圖。圖2是圖1的雙級壓縮機部分構件的關係示意圖,其中構件之間的實線連接代表電性連接關係,而構件之間的虛線連接代表結構上的直接或間接連接關係。請同時參考圖1與圖2,在本實施例中,雙級壓縮機100,例如是用於冷凍系統的壓縮裝置,其包括機體150、第一壓縮模組110、第二壓縮模組120、洩壓模組130、控制模組140以及馬達160。機體150具有第一腔室151、第二腔室152、第三腔室153與第四腔室154。第一壓縮模組110,例如是螺桿式壓縮模組、活塞式壓縮模組或離心式壓縮模組,其設置於機體150內且位於第四腔室154,並用以將流體(製冷劑,在此未繪示)從第四腔室154予以壓縮並傳送至第一腔室151。本實施例以螺桿式壓縮模組為例,其包括彼此嚙合驅動的第一螺桿111與第二螺桿112,其中馬達160連接至第一螺桿111以驅動第一螺桿111沿軸C1旋轉且同時帶動第二螺桿112。Fig. 1 is a system schematic diagram of a two-stage compressor according to an embodiment of the present invention. Fig. 2 is a schematic diagram of the relationship of some components of the two-stage compressor of Fig. 1, wherein the solid line connection between the components represents the electrical connection relationship, and the dashed line connection between the components represents the direct or indirect connection relationship on the structure. 1 and 2 at the same time, in this embodiment, the two-stage compressor 100 is, for example, a compression device used in a refrigeration system, which includes a body 150, a first compression module 110, a second compression module 120, The pressure relief module 130, the control module 140, and the motor 160. The body 150 has a first cavity 151, a second cavity 152, a third cavity 153 and a fourth cavity 154. The first compression module 110, for example, a screw compression module, a piston compression module, or a centrifugal compression module, is disposed in the body 150 and located in the fourth chamber 154, and is used to transfer fluid (refrigerant, in (Not shown) is compressed from the fourth chamber 154 and transferred to the first chamber 151. In this embodiment, a screw-type compression module is taken as an example. It includes a first screw 111 and a second screw 112 that are engaged with each other to drive. The motor 160 is connected to the first screw 111 to drive the first screw 111 to rotate along the axis C1 and simultaneously drive it. Second screw 112.

再者,第二壓縮模組120設置於機體150內,連通於第一腔室151與第二腔室152之間,且連通於第一腔室151與第三腔室153之間,第一腔室151位在第一壓縮模組110與第二壓縮模組120之間。在本實施例中,第二壓縮模組120包括一對渦卷,在此以第一渦卷121與第二渦卷122為例,彼此相向且沿軸C1可動地套接在一起。更進一步地說,第一渦卷121沿軸C1可移動地設置於機體150內,而第二渦卷122沿軸C1可轉動地耦接於第一渦卷121,前述馬達160除連接並驅動第一螺桿111之外,馬達160的傳動軸也連接至第二渦卷122,以驅動第二渦卷122沿軸C1相對於第一渦卷121旋轉且沿軸C1存在浮動的狀態。同時,第一腔室151與第三腔室153分別位於第一渦卷121、第二渦卷122的相對兩側,如圖1所示,第三腔室153與第二腔室152位於同一側,被第一渦卷121與第二渦卷122壓縮過的流體除流入第二腔室152外,還會流入第一渦卷121之背側的第三腔室153。Furthermore, the second compression module 120 is disposed in the body 150, communicates between the first chamber 151 and the second chamber 152, and communicates between the first chamber 151 and the third chamber 153, the first The cavity 151 is located between the first compression module 110 and the second compression module 120. In this embodiment, the second compression module 120 includes a pair of scrolls. Here, the first scroll 121 and the second scroll 122 are taken as an example, and they face each other and are movably sleeved together along the axis C1. Furthermore, the first scroll 121 is movably disposed in the body 150 along the axis C1, and the second scroll 122 is rotatably coupled to the first scroll 121 along the axis C1, and the aforementioned motor 160 is not only connected and driven In addition to the first screw 111, the drive shaft of the motor 160 is also connected to the second scroll 122 to drive the second scroll 122 to rotate along the axis C1 relative to the first scroll 121 and to float along the axis C1. At the same time, the first chamber 151 and the third chamber 153 are located on opposite sides of the first scroll 121 and the second scroll 122, respectively. As shown in FIG. 1, the third chamber 153 and the second chamber 152 are located in the same On the other hand, the fluid compressed by the first scroll 121 and the second scroll 122 not only flows into the second chamber 152, but also flows into the third chamber 153 on the back side of the first scroll 121.

正如上述第一渦卷121可被視為沿軸C1的浮動狀態,因此其相對於第二渦卷122便存在完全抵接與否的不同狀態並對行經的流體造成不同效果。在本實施例中,當第一渦卷121抵接至第二渦卷122時,第二壓縮模組120處於壓縮狀態,其能對行經的流體進行壓縮,也就是將第一腔室151的流體進行壓縮並傳送至第二腔室152且排出機體150,即,流體F1是經過第一壓縮模組110與第二壓縮模組120的壓縮。相對地,當第一渦卷121局部脫離第二渦卷122時,則兩者處於釋放狀態,此時第二壓縮模組120無法對行經的流體進行壓縮。在此,相關腔室的流體壓力將是造成渦卷間不同狀態的原因,後續會有進一步的對應說明。Just as the above-mentioned first scroll 121 can be regarded as a floating state along the axis C1, there is a different state of whether it is completely abutted or not relative to the second scroll 122 and has different effects on the passing fluid. In this embodiment, when the first scroll 121 abuts against the second scroll 122, the second compression module 120 is in a compressed state, which can compress the passing fluid, that is, the pressure of the first chamber 151 The fluid is compressed and delivered to the second chamber 152 and discharged from the body 150, that is, the fluid F1 is compressed by the first compression module 110 and the second compression module 120. In contrast, when the first scroll 121 is partially separated from the second scroll 122, the two are in a released state. At this time, the second compression module 120 cannot compress the passing fluid. Here, the fluid pressure in the relevant chamber will be the cause of the different states between the scrolls, and there will be further corresponding explanations later.

另一方面,機體150的第三腔室153是位在第一渦卷121的背側而遠離第二渦卷122,而洩壓模組130連通於第一腔室151、第二腔室152與第三腔室153之間。控制模組140電性連接洩壓模組130與馬達160,並藉由馬達160達到驅動第一壓縮模組110與第二壓縮模組120的目的。On the other hand, the third chamber 153 of the body 150 is located on the back side of the first scroll 121 and away from the second scroll 122, and the pressure relief module 130 is connected to the first chamber 151 and the second chamber 152 And the third chamber 153. The control module 140 is electrically connected to the pressure relief module 130 and the motor 160, and the motor 160 achieves the purpose of driving the first compression module 110 and the second compression module 120.

詳細而言,本實施例的洩壓模組130包括缸體131、活塞132、彈性件133以及電磁閥134,如圖1所示,缸體131具有第一開口E1、第二開口E2、第三開口E3與第四開口E4,其中第一開口E1經由第一管路L1連通第三腔室153,第二開口E2經由第二管路L2連通第一腔室151,第三開口E3連通第二腔室152,第四開口E4連通第一腔室151。活塞132可移動地設置於缸體131內,以連通或阻隔第三開口E3與第四開口E4。電磁閥134設置於第二管路L2且其開關S電性連接控制模組140。彈性件133連接在活塞132與缸體131之間。In detail, the pressure relief module 130 of this embodiment includes a cylinder 131, a piston 132, an elastic member 133, and a solenoid valve 134. As shown in FIG. 1, the cylinder 131 has a first opening E1, a second opening E2, and a second opening E2. Three openings E3 and a fourth opening E4, wherein the first opening E1 communicates with the third chamber 153 via the first pipeline L1, the second opening E2 communicates with the first chamber 151 via the second pipeline L2, and the third opening E3 communicates with the The second chamber 152 and the fourth opening E4 communicate with the first chamber 151. The piston 132 is movably disposed in the cylinder 131 to communicate with or block the third opening E3 and the fourth opening E4. The solenoid valve 134 is disposed in the second pipeline L2 and its switch S is electrically connected to the control module 140. The elastic member 133 is connected between the piston 132 and the cylinder 131.

圖3是圖1的雙級壓縮機於另一狀態的局部放大圖。請同時參考圖1與圖3,在本實施例中,缸體131還具有第一內部空間131a、第二內部空間131b與擋部135,第一內部空間131a經由第一開口E1連接第一管路L1,第一內部空間131a也經由第二開口E2連接第二管路L2,而擋部135位於第一內部空間131a與第二內部空間131b之間。當雙級壓縮機100處於第一狀態時,如圖1所示,控制模組140驅動第一壓縮模組110壓縮並傳送流體至第一腔室151,且控制模組140驅動第二壓縮模組120再將流體從第一腔室151壓縮並傳送至第二腔室152與第三腔室153。再者,對於洩壓模組130而言,在第一狀態時,控制模組140經由開關S而驅動電磁閥134以阻斷第二管路L2。據此,第三腔室153內已被壓縮的流體將僅經由第一管路L1與第一開口E1而流入第一內部空間131a而不會經由第二管路L2流入第一腔室151,且進入第一內部空間131a的流體還能進一步地抵推活塞132,使其如圖1所示右移而阻隔第三開口E3與第四開口E4,且同時變形彈性件133,以達到洩壓模組130阻隔第一腔室151與第二腔室152的效果。同時,第三腔室153內已被壓縮的流體也因其壓力大於第一腔室151的流體壓力。如此一來,位在第三腔室153的流體壓力便成為使第一渦卷121抵接且密合於第二渦卷122的驅動力,且能支撐兩者保持在能對行經第二壓縮模組120的流體進行壓縮的相對位置。Fig. 3 is a partial enlarged view of the two-stage compressor of Fig. 1 in another state. 1 and 3 at the same time, in this embodiment, the cylinder 131 also has a first internal space 131a, a second internal space 131b and a stop 135, and the first internal space 131a is connected to the first pipe via the first opening E1 Road L1, the first internal space 131a is also connected to the second pipeline L2 via the second opening E2, and the stop 135 is located between the first internal space 131a and the second internal space 131b. When the two-stage compressor 100 is in the first state, as shown in FIG. 1, the control module 140 drives the first compression module 110 to compress and transfer fluid to the first chamber 151, and the control module 140 drives the second compression module The group 120 then compresses the fluid from the first chamber 151 and transmits it to the second chamber 152 and the third chamber 153. Furthermore, for the pressure relief module 130, in the first state, the control module 140 drives the solenoid valve 134 via the switch S to block the second pipeline L2. Accordingly, the compressed fluid in the third chamber 153 will only flow into the first internal space 131a through the first pipe L1 and the first opening E1, but will not flow into the first chamber 151 through the second pipe L2. In addition, the fluid entering the first internal space 131a can further push the piston 132 to move it to the right as shown in FIG. 1 to block the third opening E3 and the fourth opening E4, and at the same time deform the elastic member 133 to achieve pressure relief. The module 130 blocks the effect of the first chamber 151 and the second chamber 152. At the same time, the pressure of the compressed fluid in the third chamber 153 is greater than the fluid pressure in the first chamber 151. In this way, the fluid pressure located in the third chamber 153 becomes the driving force to make the first scroll 121 abut and close to the second scroll 122, and can support the two to maintain the second compression. The relative position where the fluid of the module 120 is compressed.

相對地,當欲對第二壓縮模組120進行洩壓時,控制模組140經由開關S而驅動電磁閥134以連通第二管路L2,此舉將產生從第三腔室153、第一管路L1、第一開口E1、第一內部空間131a、第二開口E2、第二管路L2以至第一腔室151進行傳送的流體F2,進而使上述這些區域的流體壓力逐漸一致。對於活塞132而言,第一內部空間131a與第一腔室151的流體壓力一致將導致原本驅動活塞132右移的力量消失,因而彈性件133便能以其彈力驅動活塞132左移,直至活塞132抵接至擋部135,且使活塞132不再阻隔第三開口E3與第四開口E4,也就是讓第三開口E3與第四開口E4經由第二內部空間131b而連通。據此,位於第一腔室151的流體的大部分將經由第四開口E4、第二內部空間131b與第三開口E3流入第二腔室152以至從機體150的左側出口流出。On the other hand, when the pressure of the second compression module 120 is to be released, the control module 140 drives the solenoid valve 134 through the switch S to communicate with the second pipeline L2, which will cause the third chamber 153, the first The fluid F2 conveyed by the pipeline L1, the first opening E1, the first internal space 131a, the second opening E2, the second pipeline L2, and the first chamber 151, thereby gradually making the fluid pressures in the above-mentioned areas uniform. For the piston 132, the same fluid pressure in the first inner space 131a and the first chamber 151 will cause the original force to drive the piston 132 to move to the right disappear, so the elastic member 133 can drive the piston 132 to move left with its elastic force until the piston The 132 abuts against the blocking portion 135 so that the piston 132 no longer blocks the third opening E3 and the fourth opening E4, that is, the third opening E3 and the fourth opening E4 are communicated through the second internal space 131b. Accordingly, most of the fluid in the first chamber 151 will flow into the second chamber 152 through the fourth opening E4, the second internal space 131b, and the third opening E3 to flow out of the left side outlet of the body 150.

在此同時,對於第二壓縮模組120的第一渦卷121而言,隨著第三腔室153的流體壓力逐漸與第一腔室151的流體壓力一致,則代表第一渦卷121無法保持上述能對流體進行壓縮的位置,而會沿軸C1從第二渦卷122處局部脫離而使二者不再密合。在此,當第三腔室153的流體壓力降低的瞬間,第一渦卷121與第二渦卷122之間仍存被壓縮的流體,因此使第一渦卷121與第二渦卷122之間的流體壓力是大於第三腔室153,故能順利地驅動第一渦卷121脫離第二渦卷122的效果。如此,即是對第二壓縮模組120造成卸載的效果,亦即在此狀態(定義為第二狀態)下,第二壓縮模組120不再對行經的流體進行壓縮動作,也就是雙級壓縮機100處於僅由第一壓縮模組110來對流體進行壓縮的單級壓縮狀態。At the same time, for the first scroll 121 of the second compression module 120, as the fluid pressure of the third chamber 153 gradually coincides with the fluid pressure of the first chamber 151, it means that the first scroll 121 cannot Maintaining the above-mentioned position capable of compressing the fluid will partially detach from the second scroll 122 along the axis C1 and make the two no longer close together. Here, when the fluid pressure in the third chamber 153 decreases, the compressed fluid still exists between the first scroll 121 and the second scroll 122, so that the first scroll 121 and the second scroll 122 The fluid pressure between the chambers is greater than the third chamber 153, so the first scroll 121 can be smoothly driven away from the second scroll 122. In this way, the second compression module 120 has an unloading effect, that is, in this state (defined as the second state), the second compression module 120 no longer compresses the passing fluid, that is, two-stage The compressor 100 is in a single-stage compression state where only the first compression module 110 compresses the fluid.

如此一來,在第二狀態時,從第二腔室152經由圖3所示左側出口而被排出機體150的流體F3僅受到第一壓縮模組110的壓縮。換句話說,基於上述的流路配置並藉由浮動的渦卷結構,控制模組140便能有效地藉由開關S操控電磁閥134而對第二壓縮模組120造成卸載與否的效果。當欲再從第二狀態轉換至第一狀態時,控制模組140藉由開關S驅動電磁閥134以阻斷第二管路L2,此時第三腔室153、第一管路L1以至第一內部空間131a便會逐漸蓄積流體,進而造而流體壓力逐漸增加,而當蓄積的流體壓力逐漸大於彈性件133的彈力時,便能順利地將活塞132從圖3所示位置抵推回圖1所示位置,進而讓活塞132再次阻隔在第三開口E3與第四開口E4之間,以切斷第一腔室151與第二腔室152的連通關係。同時,第三腔室153蓄積流體後還能進一步地驅動第一渦卷121再次抵接且密合至第二渦卷122,而讓第二壓縮模組120再次恢復運作。屆此,即完成讓雙級壓縮機100恢復至第一狀態。In this way, in the second state, the fluid F3 discharged from the body 150 from the second chamber 152 through the left outlet shown in FIG. 3 is only compressed by the first compression module 110. In other words, based on the above-mentioned flow path configuration and with the floating scroll structure, the control module 140 can effectively control the solenoid valve 134 through the switch S to cause the second compression module 120 to unload or not. When it wants to switch from the second state to the first state again, the control module 140 drives the solenoid valve 134 through the switch S to block the second pipeline L2. At this time, the third chamber 153, the first pipeline L1 and the An internal space 131a will gradually accumulate fluid, and the fluid pressure will gradually increase. When the accumulated fluid pressure is gradually greater than the elastic force of the elastic member 133, the piston 132 can be smoothly pushed back from the position shown in FIG. 3 The position shown in 1 further blocks the piston 132 between the third opening E3 and the fourth opening E4 to cut off the communication relationship between the first chamber 151 and the second chamber 152. At the same time, the fluid accumulated in the third chamber 153 can further drive the first scroll 121 to abut and close to the second scroll 122 again, so that the second compression module 120 can resume operation again. At this point, the two-stage compressor 100 is restored to the first state.

如圖1所示,在本實施例中,雙級壓縮機100的機體150還會與油分離器12、冷凝器14、膨脹閥16與蒸發器18依序連通而共同形成流體循環系統1,以讓壓縮後的流體F1經過而在冷凝器14、蒸發器18處進行所需的相變化及熱交換動作,之後再由機體150右側所示入口流入而再次被壓縮,其中油分離器12、冷凝器14、膨脹閥16與蒸發器18之作用原理係為習知技藝之人所熟知,故在此不再贅述。As shown in Fig. 1, in this embodiment, the body 150 of the two-stage compressor 100 is also connected with the oil separator 12, the condenser 14, the expansion valve 16 and the evaporator 18 in order to form a fluid circulation system 1. The compressed fluid F1 is allowed to pass through to perform the required phase change and heat exchange actions at the condenser 14 and the evaporator 18, and then flows in from the inlet shown on the right side of the body 150 to be compressed again. The oil separator 12, The working principles of the condenser 14, the expansion valve 16 and the evaporator 18 are well known to those skilled in the art, so they will not be repeated here.

在此並未限制對第二壓縮模組120進行卸載的時機,其可依據雙級壓縮機100的使用環境、需求以及流體條件而予以適當地調整。在一實施例中,控制模組140能依據流體循環系統1的負載電流而使雙級壓縮機100轉換至第一狀態或第二狀態。當系統負載電流大於或等於預設電流時,代表此時會對雙級壓縮機100造成的負載較大,因而有卸載的需求,故控制模組140轉換雙級壓縮機100至第二狀態,以對第二壓縮模組120進行洩壓而不再進行壓縮動作。反過來說,當系統負載電流小於預設電流時,則表示此時尚在雙級壓縮機100的負載範圍而無超載疑慮,因此控制模組140轉換雙級壓縮機100至第一狀態,讓第一壓縮模組110與第二壓縮模組120皆維持運作狀態。The timing of unloading the second compression module 120 is not limited here, and it can be appropriately adjusted according to the use environment, requirements, and fluid conditions of the two-stage compressor 100. In one embodiment, the control module 140 can switch the two-stage compressor 100 to the first state or the second state according to the load current of the fluid circulation system 1. When the system load current is greater than or equal to the preset current, it means that the load on the two-stage compressor 100 is large at this time, and therefore there is a demand for unloading. Therefore, the control module 140 switches the two-stage compressor 100 to the second state. In order to relieve the pressure of the second compression module 120, the compression action is no longer performed. Conversely, when the system load current is less than the preset current, it means that the current situation is within the load range of the two-stage compressor 100 and there is no concern about overloading. Therefore, the control module 140 switches the two-stage compressor 100 to the first state, Both the one compression module 110 and the second compression module 120 maintain an operating state.

在本實施例中,控制模組140還能依據蒸發器18的流體壓力而使雙級壓縮機100轉換至第一狀態或第二狀態。當蒸發器18的流體壓力大於或等於預設壓力時,控制模組140轉換雙級壓縮機100至第二狀態。當蒸發器18的流體壓力小於預設壓力時,控制模組140轉換雙級壓縮機100至第一狀態。In this embodiment, the control module 140 can also switch the two-stage compressor 100 to the first state or the second state according to the fluid pressure of the evaporator 18. When the fluid pressure of the evaporator 18 is greater than or equal to the preset pressure, the control module 140 switches the two-stage compressor 100 to the second state. When the fluid pressure of the evaporator 18 is less than the preset pressure, the control module 140 switches the two-stage compressor 100 to the first state.

類似地,在另一實施例中,控制模組140還能依據流體循環系統1的壓縮比而使雙級壓縮機100轉換至第一狀態或第二狀態。當壓縮比大於或等於預設壓縮比時,控制模組140轉換雙級壓縮機100至第二狀態。當壓縮比小於預設壓縮比時,控制模組140轉換雙級壓縮機100至第一狀態。在此處,流體循環系統1的壓縮比為流體循環系統1內高壓處的流體壓力與低壓處的流體壓力之比例;具體而言,流體循環系統1的壓縮比可為冷凝器14的流體壓力與蒸發器18的流體壓力之比例,或是機體150入口的流體壓力與出口的流體壓力之比例。Similarly, in another embodiment, the control module 140 can also switch the two-stage compressor 100 to the first state or the second state according to the compression ratio of the fluid circulation system 1. When the compression ratio is greater than or equal to the preset compression ratio, the control module 140 switches the two-stage compressor 100 to the second state. When the compression ratio is less than the preset compression ratio, the control module 140 switches the two-stage compressor 100 to the first state. Here, the compression ratio of the fluid circulation system 1 is the ratio of the fluid pressure at the high pressure to the fluid pressure at the low pressure in the fluid circulation system 1; specifically, the compression ratio of the fluid circulation system 1 may be the fluid pressure of the condenser 14 The ratio to the fluid pressure of the evaporator 18, or the ratio of the fluid pressure at the inlet of the body 150 to the fluid pressure at the outlet.

需說明的是,上述預設負載電流、預設壓力或預設壓縮比皆能視條件而予以適當地變更。It should be noted that the aforementioned preset load current, preset pressure, or preset compression ratio can be appropriately changed depending on conditions.

圖4是圖1的雙級壓縮機的實體示意圖。圖5是圖4的雙級壓縮機的局部剖視圖。圖6是圖4的雙級壓縮機的局部側視圖。請同時參考圖4至圖6,經實體化圖1所示系統後的雙級壓縮機100,洩壓模組130的缸體131形成為機體150的一部分,且其內設有多條通道以形成如圖1與圖2所示的管路。請參考圖6並對照圖1即能得知,第一狀態下的活塞132,其在缸體131內的位置形成第一內部空間131a,且第一內部空間131a實質上連通在第一管路L1與第二管路L2之間,而電磁閥134則設置在第二管路L2而據以控制第一內部空間131a的流體是否會流入第一腔室151。Fig. 4 is a physical schematic diagram of the two-stage compressor of Fig. 1. Fig. 5 is a partial cross-sectional view of the two-stage compressor of Fig. 4. Fig. 6 is a partial side view of the two-stage compressor of Fig. 4. Please refer to FIGS. 4 to 6 at the same time. After the two-stage compressor 100 of the system shown in FIG. 1 is materialized, the cylinder 131 of the pressure relief module 130 is formed as a part of the body 150, and there are multiple channels in it. The pipeline as shown in Figure 1 and Figure 2 is formed. Please refer to FIG. 6 and compare with FIG. 1 that the piston 132 in the first state forms a first internal space 131a at its position in the cylinder 131, and the first internal space 131a is substantially connected to the first pipeline Between L1 and the second pipeline L2, the solenoid valve 134 is arranged in the second pipeline L2 to control whether the fluid in the first internal space 131a flows into the first chamber 151 accordingly.

圖7是圖4的雙級壓縮機於另一狀態的局部剖視圖。在此,圖5與圖7的實體結構即分別對應前述圖1與圖3的系統狀態。請同時參考圖3、圖5與圖7,在圖5所示的第一狀態下,活塞132在缸體131內的位置而讓缸體131形成第一內部空間131a,且如圖3所示,活塞132阻隔在第三開口E3與第四開口E4之間,而在圖7所示的第二狀態下,活塞132在缸體131內移動並抵接擋部135(繪示於圖3),而讓缸體131形成第二內部空間131b,以達到圖3所示第三開口E3與第四開口E4能經由第二內部空間131b而彼此連通,同時也使第一渦卷121局部移離第二渦卷122而使兩者之間存在間隙G1,不再對行經的流體進行壓縮。Fig. 7 is a partial cross-sectional view of the two-stage compressor of Fig. 4 in another state. Here, the physical structures of FIGS. 5 and 7 correspond to the system states of FIGS. 1 and 3, respectively. Please refer to FIGS. 3, 5 and 7 at the same time. In the first state shown in FIG. 5, the position of the piston 132 in the cylinder 131 allows the cylinder 131 to form a first internal space 131a, as shown in FIG. , The piston 132 is blocked between the third opening E3 and the fourth opening E4, and in the second state shown in FIG. 7, the piston 132 moves in the cylinder 131 and abuts against the blocking portion 135 (shown in FIG. 3) , And let the cylinder 131 form a second internal space 131b, so that the third opening E3 and the fourth opening E4 shown in FIG. 3 can communicate with each other through the second internal space 131b, while also partially moving the first scroll 121 away The second scroll 122 causes a gap G1 between the two to no longer compress the traveling fluid.

圖8是本發明另一實施例的雙級壓縮機的局部系統示意圖,在此僅就不同處予以繪示及描述,與前述實施例相同處僅以相同標號標示,在此便不再贅述。請參考圖8,在本實施例中,洩壓模組230包括缸體231、活塞132、管路L3、彈性件133與電磁閥134,其中缸體231具有第一開口E11、第二開口E21與第三開口E31,活塞132可移動地設置於缸體231內,以連通或阻隔第二開口E21與第三開口E31。管路L3連接第三腔室153、第一開口E11與第一腔室151之間,且管路L3進一步地區分為第一流徑L31與第二流徑L32,第一流徑L31連通第三腔室153與第一開口E11,第二流徑L32連通第三腔室153與第一腔室151,而電磁閥134位於第二流徑L32。再者,本實施例同樣以控制模組140(繪示於圖2)電性連接並驅動洩壓模組230。Fig. 8 is a partial system schematic diagram of a two-stage compressor according to another embodiment of the present invention. Only the differences are shown and described here, and the same parts as those in the previous embodiment are only marked with the same reference numerals, and will not be repeated here. Please refer to FIG. 8, in this embodiment, the pressure relief module 230 includes a cylinder 231, a piston 132, a pipeline L3, an elastic member 133 and a solenoid valve 134, wherein the cylinder 231 has a first opening E11 and a second opening E21. As with the third opening E31, the piston 132 is movably disposed in the cylinder 231 to communicate with or block the second opening E21 and the third opening E31. The pipeline L3 connects between the third chamber 153, the first opening E11 and the first chamber 151, and the pipeline L3 is further divided into a first flow path L31 and a second flow path L32, and the first flow path L31 is connected to the third chamber The chamber 153 and the first opening E11, the second flow path L32 connects the third chamber 153 and the first chamber 151, and the solenoid valve 134 is located in the second flow path L32. Furthermore, in this embodiment, the control module 140 (shown in FIG. 2) is also electrically connected to and drives the pressure relief module 230.

基於上述配置,在第一狀態時,控制模組140驅動電磁閥134以阻斷流體經由管路L3的第二流徑L32流向第一腔室151,而僅讓第三腔室153的流體經由管路L3的第一流徑L31、第一開口E11流入缸體231,以抵推活塞132阻隔第二開口E21與第三開口E31,同時流體抵推活塞132造成彈性件133變形。在第二狀態時,控制模組140驅動電磁閥134以連通第三腔室153與第一腔室151,以使第三腔室153、管路L3與缸體231內部的流體壓力一致,此時活塞132相對兩側的壓力逐漸達到平衡,因而彈性件133得以驅動活塞132移動以使第二開口E21與第三開口E33經由缸體231的內部空間而彼此連通,而第一腔室151經由缸體231的內部空間連通第二腔室152。據此,本實施例所示洩壓模組230亦能達到與前述實施例的洩壓模組130相同之功效。Based on the above configuration, in the first state, the control module 140 drives the solenoid valve 134 to block the flow of fluid to the first chamber 151 through the second flow path L32 of the pipeline L3, and only allows the fluid in the third chamber 153 to pass through The first flow path L31 and the first opening E11 of the pipeline L3 flow into the cylinder 231 so that the pushing piston 132 blocks the second opening E21 and the third opening E31, and the fluid pushing against the pushing piston 132 causes the elastic member 133 to deform. In the second state, the control module 140 drives the solenoid valve 134 to communicate the third chamber 153 and the first chamber 151, so that the third chamber 153, the pipeline L3, and the fluid pressure inside the cylinder 231 are consistent. When the pressure on opposite sides of the piston 132 gradually reaches equilibrium, the elastic member 133 can drive the piston 132 to move so that the second opening E21 and the third opening E33 communicate with each other through the inner space of the cylinder 231, and the first chamber 151 passes through The internal space of the cylinder 231 communicates with the second chamber 152. Accordingly, the pressure relief module 230 shown in this embodiment can also achieve the same effect as the pressure relief module 130 of the previous embodiment.

綜上所述,在本發明的上述實施例中,雙級壓縮機的第二壓縮機是由浮動的渦卷構成,且據以將受其壓縮的流體部分導引至渦卷的背側以作為驅使渦卷相互抵接的推力,同時,再搭配洩壓模組與相關的流路配置,進而讓控制模組僅需藉由啟閉洩壓模組的電磁閥,即能依據上述結構與流路而完成對第二壓縮模組的卸載動作。In summary, in the above-mentioned embodiment of the present invention, the second compressor of the two-stage compressor is composed of a floating scroll, and accordingly the compressed fluid is guided to the back side of the scroll. As the thrust to drive the scrolls against each other, at the same time, it is matched with the pressure relief module and related flow path configuration, so that the control module only needs to open and close the solenoid valve of the pressure relief module, which can be based on the above structure and The flow path completes the unloading action of the second compression module.

進一步地說,在第一狀態時,藉由洩壓模組而將第一管路以至第一內部空間蓄積的壓縮流體充滿第三腔室,便能據以驅動渦卷相互抵接而對行經的流體進行壓縮,一旦需對第二壓縮模組進行卸載,則洩壓模組改以將第一腔室、第二腔室與第三腔室處於相互連通狀態,而使第三腔室的流體壓力與第一腔室的流體壓力一致,以導致渦卷局部脫離而不再對行經的流體進行壓縮。Furthermore, in the first state, the third chamber is filled with the compressed fluid accumulated in the first pipeline and the first internal space by the pressure relief module, and the scrolls can be driven to abut against each other and pass through. Once the second compression module needs to be unloaded, the pressure relief module is changed to connect the first chamber, the second chamber and the third chamber to each other, so that the third chamber The fluid pressure is consistent with the fluid pressure in the first chamber to cause the scroll to be partially detached and no longer compress the passing fluid.

如此一來,雙級壓縮機便能藉由控制模組依據特定條件而對應操控洩壓模組,據以造成上述兩種狀態,讓雙級壓縮機能在第一、第二壓縮模組皆作動的雙級壓縮狀態與僅第一壓縮模組作動的單級壓縮狀態之間切換,進而有效地提升效能與適用性,同時達到進一步節能的效果。In this way, the two-stage compressor can control the pressure relief module according to specific conditions by the control module, thereby creating the above two states, so that the two-stage compressor can operate in both the first and second compression modules Switch between the two-stage compression state and the single-stage compression state in which only the first compression module is activated, thereby effectively improving performance and applicability, while achieving further energy-saving effects.

1:流體循環系統 12:油分離器 14:冷凝器 16:膨脹閥 18:蒸發器 100:雙級壓縮機 110:第一壓縮模組 111:第一螺桿 112:第二螺桿 120:第二壓縮模組 121:第一渦卷 122:第二渦卷 130、230:洩壓模組 131、231:缸體 131a、131b:內部空間 132:活塞 133:彈性件 134:電磁閥 135:擋部 140:控制模組 150:機體 151:第一腔室 152:第二腔室 153:第三腔室 154:第四腔室 160:馬達 C1:軸 E1、E11:第一開口 E2、E21:第二開口 E3、E31:第三開口 E4:第四開口 F1、F2、F3:流體 G1:間隙 L1:第一管路 L2:第二管路 L3:管路 L31:第一流徑 L32:第二流徑 S:開關 1: Fluid circulation system 12: Oil separator 14: Condenser 16: Expansion valve 18: Evaporator 100: Two-stage compressor 110: The first compression module 111: first screw 112: second screw 120: The second compression module 121: The First Scroll 122: The Second Scroll 130, 230: Pressure relief module 131, 231: cylinder 131a, 131b: internal space 132: Piston 133: Elastic 134: Solenoid valve 135: Block 140: control module 150: body 151: first chamber 152: The second chamber 153: Third Chamber 154: The fourth chamber 160: Motor C1: axis E1, E11: first opening E2, E21: second opening E3, E31: third opening E4: Fourth opening F1, F2, F3: fluid G1: gap L1: The first pipeline L2: Second line L3: Pipeline L31: First flow path L32: Second flow path S: switch

圖1是依據本發明一實施例的雙級壓縮機的系統示意圖。 圖2是圖1的雙級壓縮機部分構件的關係示意圖。 圖3是圖1的雙級壓縮機於另一狀態的局部放大圖。 圖4是圖1的雙級壓縮機的實體示意圖。 圖5是圖4的雙級壓縮機的局部剖視圖。 圖6是圖4的雙級壓縮機的局部側視圖。 圖7是圖4的雙級壓縮機於另一狀態的局部剖視圖。 圖8是本發明另一實施例的雙級壓縮機的局部系統示意圖。 Fig. 1 is a system schematic diagram of a two-stage compressor according to an embodiment of the present invention. Fig. 2 is a schematic diagram of the relationship between some components of the two-stage compressor of Fig. 1. Fig. 3 is a partial enlarged view of the two-stage compressor of Fig. 1 in another state. Fig. 4 is a physical schematic diagram of the two-stage compressor of Fig. 1. Fig. 5 is a partial cross-sectional view of the two-stage compressor of Fig. 4. Fig. 6 is a partial side view of the two-stage compressor of Fig. 4. Fig. 7 is a partial cross-sectional view of the two-stage compressor of Fig. 4 in another state. Fig. 8 is a partial system diagram of a two-stage compressor according to another embodiment of the present invention.

1:流體循環系統 1: Fluid circulation system

12:油分離器 12: Oil separator

14:冷凝器 14: Condenser

16:膨脹閥 16: Expansion valve

18:蒸發器 18: Evaporator

100:雙級壓縮機 100: Two-stage compressor

110:第一壓縮模組 110: The first compression module

111:第一螺桿 111: first screw

112:第二螺桿 112: second screw

120:第二壓縮模組 120: The second compression module

121:第一渦卷 121: The First Scroll

122:第二渦卷 122: The Second Scroll

130:洩壓模組 130: Pressure relief module

131:缸體 131: Cylinder

131a:內部空間 131a: internal space

132:活塞 132: Piston

133:彈性件 133: Elastic

134:電磁閥 134: Solenoid valve

135:擋部 135: Block

150:機體 150: body

151:第一腔室 151: first chamber

152:第二腔室 152: The second chamber

153:第三腔室 153: Third Chamber

154:第四腔室 154: The fourth chamber

160:馬達 160: Motor

C1:軸 C1: axis

E1:第一開口 E1: first opening

E2:第二開口 E2: second opening

E3:第三開口 E3: Third opening

E4:第四開口 E4: Fourth opening

F1、F2:流體 F1, F2: fluid

L1:第一管路 L1: The first pipeline

L2:第二管路 L2: Second line

S:開關 S: switch

Claims (14)

一種雙級壓縮機,包括:一機體,具有一第一腔室、一第二腔室與一第三腔室;一第一壓縮模組,設置於該機體;一第二壓縮模組,設置於該機體,該第二壓縮模組連通於該第一腔室與該第二腔室之間,且該第二壓縮模組連通於該第一腔室與該第三腔室之間,該第一腔室連通於該第一壓縮模組與該第二壓縮模組之間,該第二壓縮模組包括一對渦卷,該對渦卷彼此相向且沿一軸可動地套接在一起,該第一腔室與該第三腔室分別位於該對渦卷的相對兩側;一洩壓模組,連通於該第一腔室、該第二腔室與該第三腔室之間;以及一控制模組,用以驅動該洩壓模組、該第一壓縮模組與該第二壓縮模組,在一第一狀態時,該控制模組驅動該第一壓縮模組壓縮並傳送一流體至該第一腔室,且該控制模組驅動該第二壓縮模組的該對渦卷再將該流體從該第一腔室壓縮並傳送至該第二腔室與該第三腔室,其中該控制模組還驅動該洩壓模組阻隔該第一腔室與該第三腔室,且使該洩壓模組阻隔該第一腔室與該第二腔室,其中該第三腔室的該流體壓力大於該第一腔室的該流體壓力以使該對渦卷彼此抵接,以壓縮行經該第二壓縮模組的該流體,在一第二狀態時,該控制模組驅動該洩壓模組連通該第一腔 室與該第三腔室,以使該第一腔室與該第二腔室彼此連通,其中該第一腔室的該流體壓力與該第三腔室的該流體壓力一致而使該對渦卷彼此局部脫離,以停止壓縮行經該第二壓縮模組的該流體。 A two-stage compressor includes: a body with a first chamber, a second chamber, and a third chamber; a first compression module set in the body; a second compression module set In the body, the second compression module communicates between the first chamber and the second chamber, and the second compression module communicates between the first chamber and the third chamber, the The first chamber communicates between the first compression module and the second compression module. The second compression module includes a pair of scrolls, the pair of scrolls facing each other and movably sleeved together along an axis, The first chamber and the third chamber are respectively located on opposite sides of the pair of scrolls; a pressure relief module is connected between the first chamber, the second chamber and the third chamber; And a control module for driving the pressure relief module, the first compression module and the second compression module. In a first state, the control module drives the first compression module to compress and transmit A fluid reaches the first chamber, and the control module drives the pair of scrolls of the second compression module to compress and transfer the fluid from the first chamber to the second chamber and the third chamber The control module also drives the pressure relief module to block the first chamber and the third chamber, and makes the pressure relief module block the first chamber and the second chamber, wherein the first chamber is The fluid pressure of the three chambers is greater than the fluid pressure of the first chamber so that the pair of scrolls abut against each other to compress the fluid passing through the second compression module. In a second state, the control module The group drives the pressure relief module to communicate with the first cavity Chamber and the third chamber, so that the first chamber and the second chamber communicate with each other, wherein the fluid pressure of the first chamber is consistent with the fluid pressure of the third chamber so that the pair of vortices The rolls are partially separated from each other to stop compressing the fluid passing through the second compression module. 如申請專利範圍第1項所述的雙級壓縮機,其中該第二壓縮模組包括一第一渦卷與一第二渦卷,該第一渦卷沿該軸可移動地設置於該機體內,該第二渦卷沿該軸可轉動地耦接於該第一渦卷,該第三腔室位於該第一渦卷的背側,在該第一狀態時,傳送至該第三腔室的該流體壓力大於位在該第一腔室的該流體壓力,以驅動該第一渦卷抵接該第二渦卷而壓縮行經該對渦卷的該流體,在該第二狀態時,該第三腔室的該流體壓力與該第一腔室的該流體壓力一致,以驅動該第一渦卷局部脫離該第二渦卷而不壓縮行經該對渦卷的該流體。 The two-stage compressor according to the first item of the scope of patent application, wherein the second compression module includes a first scroll and a second scroll, and the first scroll is movably disposed on the body along the shaft Inside, the second scroll is rotatably coupled to the first scroll along the shaft, and the third chamber is located on the back side of the first scroll, and is transferred to the third chamber in the first state The fluid pressure in the chamber is greater than the fluid pressure in the first chamber to drive the first scroll to abut the second scroll to compress the fluid passing through the pair of scrolls. In the second state, The fluid pressure of the third chamber is consistent with the fluid pressure of the first chamber to drive the first scroll to partially separate from the second scroll without compressing the fluid passing through the pair of scrolls. 如申請專利範圍第2項所述的雙級壓縮機,還包括一馬達,連接該第一壓縮模組與該第二渦卷,該馬達沿該軸驅動該第二渦卷相對於該第一渦卷轉動,該控制模組電性連接該馬達。 For example, the two-stage compressor described in item 2 of the scope of patent application further includes a motor connecting the first compression module and the second scroll, and the motor drives the second scroll relative to the first scroll along the shaft. When the scroll rotates, the control module is electrically connected to the motor. 如申請專利範圍第1項所述的雙級壓縮機,其中一冷凝器連通於該機體,一膨脹閥連通於該冷凝器,且一蒸發器連通於該膨脹閥與該雙級壓縮機,該雙級壓縮機、該冷凝器、該膨脹閥與該蒸發器共同形成一流體循環系統,其中該控制模組依據該流體循環系統的負載電流而使該雙級壓縮機轉換至該第一狀態或該第二狀態,當所述負載電流大於或等於預設電流時,該控制模組 轉換該雙級壓縮機至該第二狀態,當所述負載電流小於所述預設電流時,該控制模組轉換該雙級壓縮機至該第一狀態。 As for the two-stage compressor described in the first item of the patent application, a condenser is connected to the body, an expansion valve is connected to the condenser, and an evaporator is connected to the expansion valve and the two-stage compressor, the The two-stage compressor, the condenser, the expansion valve, and the evaporator together form a fluid circulation system, wherein the control module converts the two-stage compressor to the first state or the first state according to the load current of the fluid circulation system In the second state, when the load current is greater than or equal to the preset current, the control module The two-stage compressor is switched to the second state. When the load current is less than the preset current, the control module switches the two-stage compressor to the first state. 如申請專利範圍第1項所述的雙級壓縮機,其中一冷凝器連通於該機體,一膨脹閥連通於該冷凝器,且一蒸發器連通於該膨脹閥與該雙級壓縮機,該雙級壓縮機、該冷凝器、該膨脹閥與該蒸發器共同形成一流體循環系統,其中該控制模組依據該蒸發器的流體壓力而使該雙級壓縮機轉換至該第一狀態或該第二狀態,當該蒸發器的流體壓力大於或等於預設壓力時,該控制模組轉換該雙級壓縮機至該第二狀態,當該蒸發器的流體壓力小於所述預設壓力時,該控制模組轉換該雙級壓縮機至該第一狀態。 As for the two-stage compressor described in the first item of the patent application, a condenser is connected to the body, an expansion valve is connected to the condenser, and an evaporator is connected to the expansion valve and the two-stage compressor, the The two-stage compressor, the condenser, the expansion valve, and the evaporator together form a fluid circulation system, wherein the control module converts the two-stage compressor to the first state or the second state according to the fluid pressure of the evaporator Two states. When the fluid pressure of the evaporator is greater than or equal to the preset pressure, the control module switches the two-stage compressor to the second state. When the fluid pressure of the evaporator is less than the preset pressure, the control module The control module switches the two-stage compressor to the first state. 如申請專利範圍第1項所述的雙級壓縮機,其中一冷凝器連通於該機體,一膨脹閥連通於該冷凝器,且一蒸發器連通於該膨脹閥與該雙級壓縮機,該雙級壓縮機、該冷凝器、該膨脹閥與該蒸發器共同形成一流體循環系統,其中該控制模組依據該流體循環系統的壓縮比而使該雙級壓縮機轉換至該第一狀態或該第二狀態,當所述壓縮比大於或等於預設壓縮比時,該控制模組轉換該雙級壓縮機至該第二狀態,當所述統壓縮比小於預設壓縮比時,該控制模組轉換該雙級壓縮機至該第一狀態。 As for the two-stage compressor described in the first item of the patent application, a condenser is connected to the body, an expansion valve is connected to the condenser, and an evaporator is connected to the expansion valve and the two-stage compressor, the The two-stage compressor, the condenser, the expansion valve, and the evaporator together form a fluid circulation system, wherein the control module converts the two-stage compressor to the first state or the first state according to the compression ratio of the fluid circulation system In the second state, when the compression ratio is greater than or equal to the preset compression ratio, the control module switches the two-stage compressor to the second state. When the overall compression ratio is less than the preset compression ratio, the control module The group converts the two-stage compressor to the first state. 如申請專利範圍第1項所述的雙級壓縮機,其中該洩壓模組包括:一缸體,具有一第一開口、一第二開口、一第三開口與一第四開口,其中該第一開口經由一第一管路連通該第三腔室,該第 二開口經由一第二管路連通該第一腔室,該第三開口連通該第二腔室,該第四開口連通該第一腔室;一活塞,可移動地設置於該缸體內,以連通或阻隔該第三開口與該第四開口;以及一電磁閥,設置於該第二管路且電性連接該控制模組,在該第一狀態時,該控制模組驅動該電磁閥關閉以阻斷該第二管路,該第三腔室的該流體經由該第一管路與該第一開口流入該缸體,以抵推該活塞阻隔該第三開口與該第四開口,在該第二狀態時,該控制模組驅動該電磁閥開啟以連通該第二管路,以使該第三腔室、該第一管路、該缸體、該第二管路與該第一腔室彼此連通而使該流體壓力一致,並使該活塞連通該第三開口與該第四開口而讓該第一腔室、該缸體與該第二腔室彼此連通。 According to the two-stage compressor described in claim 1, wherein the pressure relief module includes: a cylinder with a first opening, a second opening, a third opening, and a fourth opening, wherein the The first opening is connected to the third chamber via a first pipeline, and the first Two openings communicate with the first chamber via a second pipeline, the third opening communicates with the second chamber, and the fourth opening communicates with the first chamber; a piston is movably arranged in the cylinder to Connecting or blocking the third opening and the fourth opening; and a solenoid valve, which is arranged in the second pipeline and electrically connected to the control module. In the first state, the control module drives the solenoid valve to close To block the second pipeline, the fluid in the third chamber flows into the cylinder through the first pipeline and the first opening, so as to push the piston to block the third opening and the fourth opening. In the second state, the control module drives the solenoid valve to open to communicate with the second pipeline, so that the third chamber, the first pipeline, the cylinder, the second pipeline and the first The chambers communicate with each other to make the fluid pressure consistent, and the piston communicates with the third opening and the fourth opening to communicate with the first chamber, the cylinder and the second chamber. 如申請專利範圍第7項所述的雙級壓縮機,其中該缸體具有一第一內部空間、一第二內部空間與一擋部,該第一內部空間經由該第一開口連接該第一管路,該第一內部空間經由該第二開口連接該第二管路,該擋部位於該第一內部空間與該第二內部空間之間,在該第一狀態時,該第三腔室的該流體經由該第一管路與該第一開口而流入該第一內部空間,以抵推該活塞遠離該擋部而阻隔該第三開口與該第四開口。 The two-stage compressor described in item 7 of the scope of the patent application, wherein the cylinder has a first internal space, a second internal space and a block, and the first internal space is connected to the first through the first opening. Pipeline, the first internal space is connected to the second pipeline via the second opening, and the stop is located between the first internal space and the second internal space. In the first state, the third chamber The fluid flows into the first inner space through the first pipe and the first opening, so as to push the piston away from the blocking portion to block the third opening and the fourth opening. 如申請專利範圍第8項所述的雙級壓縮機,其中該洩壓模組還包括一彈性件,連接在該活塞與該缸體之間,在該第一狀 態時,該流體抵推該活塞以變形該彈性件,在該第二狀態時,該彈性件驅動該活塞抵接至該擋部,以使該第三開口與該第四開口經由該第二內部空間而彼此連通。 The two-stage compressor described in item 8 of the scope of patent application, wherein the pressure relief module further includes an elastic member connected between the piston and the cylinder, in the first state In the second state, the fluid pushes the piston to deform the elastic member. In the second state, the elastic member drives the piston to abut the blocking portion, so that the third opening and the fourth opening pass through the second The internal spaces communicate with each other. 如申請專利範圍第8項所述的雙級壓縮機,其中在該第二狀態時,位在該第一腔室的該流體的大部分經由該第四開口、該第二內部空間與該第三開口傳送至該第二腔室,位在該第一腔室的該流體的小部分經由該第二壓縮模組傳送至該第二腔室。 For the two-stage compressor described in item 8 of the scope of patent application, in the second state, most of the fluid located in the first chamber passes through the fourth opening, the second internal space and the first Three openings are transferred to the second chamber, and a small part of the fluid located in the first chamber is transferred to the second chamber through the second compression module. 如申請專利範圍第1項所述的雙級壓縮機,其中該第一壓縮模組為螺桿式壓縮模組、活塞式壓縮模組或離心式壓縮模組。 For the two-stage compressor described in item 1 of the scope of patent application, the first compression module is a screw compression module, a piston compression module or a centrifugal compression module. 如申請專利範圍第1項所述的雙級壓縮機,其中該洩壓模組包括:一缸體,具有一第一開口、一第二開口與一第三開口;一活塞,可移動地設置於該缸體內,以連通或阻隔該第二開口與該第三開口;一管路,連接該第三腔室、該第一開口與該第一腔室之間;以及一電磁閥,設置於該管路且電性連接該控制模組,在該第一狀態時,該控制模組驅動該電磁閥以阻斷該流體經由該管路流向該第一腔室,該第三腔室的該流體經由該管路、該第一開口流入該缸體,以抵推該活塞阻隔該第二開口與該第三開口, 在該第二狀態時,該控制模組驅動該電磁閥以連通該第三腔室與該第一腔室,以使該第三腔室、該管路與該缸體內部的該流體壓力一致,並使該活塞連通該第二開口與該第三開口而讓該第一腔室經由該缸體連通該第二腔室。 The two-stage compressor according to the first item of the patent application, wherein the pressure relief module includes: a cylinder with a first opening, a second opening and a third opening; and a piston, which is movably arranged In the cylinder to communicate or block the second opening and the third opening; a pipeline connecting the third chamber, the first opening and the first chamber; and a solenoid valve disposed in The pipeline is electrically connected to the control module. In the first state, the control module drives the solenoid valve to block the fluid from flowing to the first chamber through the pipeline, and the third chamber Fluid flows into the cylinder through the pipeline and the first opening to push the piston to block the second opening and the third opening, In the second state, the control module drives the solenoid valve to connect the third chamber and the first chamber, so that the third chamber, the pipeline, and the fluid pressure inside the cylinder are consistent , And make the piston communicate with the second opening and the third opening, and let the first chamber communicate with the second chamber through the cylinder. 如申請專利範圍第12項所述的雙級壓縮機,其中該管路具有一第一流徑與一第二流徑,該第一流徑連通該第三腔室與該第一開口,該第二流徑連通該第三腔室與該第一腔室,該電磁閥位於該第二流徑。 The two-stage compressor according to item 12 of the scope of patent application, wherein the pipeline has a first flow path and a second flow path, the first flow path communicates with the third chamber and the first opening, and the second The flow path communicates with the third chamber and the first chamber, and the solenoid valve is located in the second flow path. 如申請專利範圍第12項所述的雙級壓縮機,還包括一彈性件,連接在該活塞與該缸體之間,在該第一狀態時,該流體抵推該活塞以變形該彈性件,在該第二狀態時,該彈性件驅動該活塞以使該第二開口與該第三開口經由該缸體而彼此連通。 For example, the two-stage compressor described in item 12 of the scope of the patent application further includes an elastic member connected between the piston and the cylinder. In the first state, the fluid pushes the piston to deform the elastic member In the second state, the elastic member drives the piston to make the second opening and the third opening communicate with each other through the cylinder.
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