CN218235484U - Sliding vane for compressor, compressor and temperature adjusting system - Google Patents
Sliding vane for compressor, compressor and temperature adjusting system Download PDFInfo
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- CN218235484U CN218235484U CN202221928806.3U CN202221928806U CN218235484U CN 218235484 U CN218235484 U CN 218235484U CN 202221928806 U CN202221928806 U CN 202221928806U CN 218235484 U CN218235484 U CN 218235484U
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Abstract
The utility model relates to a gleitbretter for compressor, compressor and temperature regulation system, this gleitbretter for compressor include the gleitbretter includes the gleitbretter body, the side of gleitbretter body is provided with the roller groove, the terminal surface of gleitbretter body is provided with the gleitbretter oil groove, the one end of gleitbretter oil groove to a side of the gleitbretter body extends, and runs through this side; the sliding sheet, the compressor and the temperature adjusting system for the compressor can improve the sealing performance of the compressor and reduce the leakage amount of high-pressure refrigerant outside the compression cavity, so that the energy efficiency ratio is effectively improved.
Description
Technical Field
The utility model relates to a compressor field, in particular to gleitbretter, compressor and temperature regulation system for compressor.
Background
In the refrigeration compressor industry, the rotor type compressor keeps absolute market advantages under various favorable conditions such as simple structure, longer service life, mature processing technology and the like. With the improvement of the productivity level, whether the raw material, the processing equipment or the production capacity can ensure that the parts of the compressor are produced in batches and have higher processing precision, but the leakage problem and the clearance problem inside the compressor are limited by the traditional structure, so that the further improvement of the energy efficiency of the rotor compressor is greatly hindered.
All assemble with the face and the position relation of face looks laminating between main bearing, cylinder, auxiliary bearing, bent axle/piston and each part of gleitbretter in traditional rotary compressor pump body structure, according to the function different or relatively fixed: such as the cylinder and the main and auxiliary bearings, or relative movement: for example, the sliding sheet, the air cylinder and the main and auxiliary bearings, the pump body structure can effectively operate due to good processing precision, but when the refrigerant is compressed, the high pressure and temperature enable a part of high-pressure refrigerant to leak into other spaces except the compression cavity through the tiny gaps of the matching surfaces to produce useless work, and the energy efficiency ratio is reduced.
SUMMERY OF THE UTILITY MODEL
Based on the deficiencies of the prior art, the utility model provides a can improve compressor and temperature regulation system of energy efficiency ratio.
An embodiment of the utility model provides a gleitbretter for compressor, include the gleitbretter includes the gleitbretter body, the side of gleitbretter body is provided with the roller groove, the terminal surface of gleitbretter body is provided with the gleitbretter oil groove, the one end of gleitbretter oil groove to a side of gleitbretter body extends, and runs through this side.
Preferably, the gleitbretter oil groove includes the gleitbretter oil groove, it is located to go up the gleitbretter oil groove on the up end of gleitbretter body, the one end of going up the gleitbretter oil groove to a side of gleitbretter body extends, and runs through this side.
Preferably, the upper sliding vane oil groove comprises a first upper sliding vane oil groove and a second upper sliding vane oil groove, and one end of the first upper sliding vane oil groove extends to one side surface of the sliding vane body and penetrates through the side surface; the first upper sliding sheet oil groove is communicated with the second upper sliding sheet oil groove, and one end of the second upper sliding sheet oil groove penetrates through the side wall of the roller groove and is communicated with the roller groove.
Preferably, the sliding vane oil groove further comprises a lower sliding vane oil groove, the lower sliding vane oil groove is located on the lower end face of the sliding vane body, the lower sliding vane oil groove comprises a first lower sliding vane oil groove and a second lower sliding vane oil groove, and one end of the first lower sliding vane oil groove extends to one side face of the sliding vane body and penetrates through the side face; the first lower sliding sheet oil groove is communicated with the second lower sliding sheet oil groove, and two ends of the second lower sliding sheet oil groove are not penetrated through.
Preferably, still be provided with vertical gleitbretter oil groove, go up the gleitbretter oil groove and go down the gleitbretter oil groove on the gleitbretter body, vertical gleitbretter oil groove sets up the side of gleitbretter, go up the gleitbretter oil groove and set up respectively with lower gleitbretter oil groove the up end and the lower terminal surface of gleitbretter, vertical gleitbretter oil groove intercommunication go up the gleitbretter oil groove with lower gleitbretter oil groove.
Preferably, the transverse section of the roller groove is arc-shaped, a first roller groove end surface and a second roller groove end surface are respectively formed at two ends of the roller groove, the first roller groove end surface is close to the low-pressure side of the cylinder, and the second roller groove end surface is close to the high-pressure side of the roller groove; the second roller groove end face protrudes beyond the first roller groove end face.
The invention also provides a compressor, which comprises a rotating shaft assembly, a sliding sheet, an air cylinder, a main bearing, an auxiliary bearing and a shell, wherein the rotating shaft assembly, the sliding sheet, the air cylinder, the main bearing and the auxiliary bearing are positioned in the shell, the sliding sheet is any one sliding sheet, the rotating shaft assembly penetrates through the air cylinder, the main bearing and the auxiliary bearing, the main bearing is positioned at the upper part of the air cylinder, and the auxiliary bearing is positioned at the lower part of the air cylinder; the rotating shaft assembly comprises a rotating shaft and a piston, the rotating shaft is fixedly connected with the piston, a cavity is formed in the rotating shaft, an opening is formed in the lower end of the cavity, an oil pool is formed in the shell, the opening is located in the oil pool, a first oil outlet hole is formed in the rotating shaft, the upper end face of the piston and the lower end face of the piston are formed in two ends of the piston body, and the first oil outlet hole is arranged close to the upper end face of the piston; and when the helical blade rotates along with the rotating shaft, the lubricating oil in the oil pool is brought into the cavity and thrown out of the first oil outlet, and the lubricating oil coming out of the first oil outlet falls on the upper end face of the piston.
Preferably, the cylinder comprises a cylinder body, a compression cavity is formed in the cylinder body, a slide groove and a cylinder upper end surface oil groove are further formed in the cylinder body, the slide groove is communicated with the compression cavity, the cylinder upper end surface oil groove is located on the upper end surface of the cylinder, and the cylinder upper end surface oil groove penetrates through the side wall of the slide groove and is communicated with the slide groove.
Preferably, the lower terminal surface of cylinder is provided with cylinder lower extreme face oil groove, be provided with the vertical oil groove of cylinder on the lateral wall in slide groove, the both ends of the vertical oil groove of cylinder respectively with cylinder up end face oil groove with cylinder lower extreme face oil groove communicates.
Preferably, the main bearing comprises a main bearing body, an oil guide groove is formed in the main bearing body, a projection of the oil guide groove in the axial direction coincides with a part of the piston and also coincides with a part of the cylinder and/or a part of the sliding vane, a first oil groove is formed in the upper end face of the piston, and lubricating oil from the first oil groove is thrown to the cylinder and/or the sliding vane through the oil guide groove under the action of centrifugal force.
Preferably, the oil guide groove comprises a low-pressure side oil guide groove, the low-pressure side oil guide groove is positioned on the low-pressure side of the sliding vane, and the projection of the low-pressure side oil guide groove in the axial direction is overlapped with an oil groove on the upper end surface of the cylinder; and/or the presence of a gas in the gas,
lead the oil groove and include high pressure side oil groove, high pressure side oil groove is located the high pressure side of gleitbretter, the cylinder up end oil groove has been seted up on the cylinder, cylinder up end oil groove includes first cylinder up end oil groove, high pressure side oil groove in its axial direction's projection with first cylinder up end oil groove has the coincidence, first cylinder up end oil groove does not extend to the low pressure side of cylinder.
The invention also provides a temperature adjusting system which is characterized by further comprising an evaporator, a condenser and the compressor, wherein the refrigerant circularly flows among the compressor, the evaporator and the condenser.
The utility model discloses the gleitbretter that sets up is provided with the oil groove, makes and forms the oil film in the gap of gleitbretter and base bearing and/or auxiliary bearing and/or cylinder, improves the leakproofness between these parts, reduces the high pressure refrigerant seepage to the outer volume of compression chamber to effectively improve the energy efficiency ratio.
Drawings
The foregoing and other objects, features and advantages of the invention will be apparent from the following more particular description of preferred embodiments of the invention, as illustrated in the accompanying drawings. Like reference numerals refer to like parts throughout the drawings, and the drawings are not intended to be drawn to scale in actual dimensions, emphasis instead being placed upon illustrating the principles of the invention.
Fig. 1 is an exploded view of a part of a compressor according to an embodiment of the present invention.
Fig. 2 is a perspective view of the rotating shaft assembly of the present invention in a state where the upper end thereof faces upward.
Fig. 3 is a perspective view of the state where the lower end of the rotary shaft assembly of the present invention faces upward.
Fig. 4 is a perspective view of the slider of the present invention in a state where the upper end faces upward.
Fig. 5 is a perspective view of the slider of the present invention in a state that a lower end thereof faces upward.
Fig. 6 is a perspective view of the cylinder of the present invention in a state in which the upper end thereof faces upward.
Fig. 7 is an enlarged view of a portion B in fig. 6.
Fig. 8 to 10 are perspective views of a cylinder according to another embodiment of the present invention in a state in which an upper end of the cylinder faces upward.
Fig. 11 is a perspective view of the cylinder of the present invention in a state in which the lower end thereof faces upward.
FIG. 12 is a perspective view of the main bearing of the present invention with the lower surface facing upward.
Fig. 13 is an overall configuration diagram of a sub-bearing of the present invention.
FIG. 14 is an overall structural view of a sub-bearing according to another embodiment of the present invention
Fig. 15 is a schematic view showing the cooperation of the components in the compressor of the present invention.
Fig. 16 is a cross-sectional view along direction AA of fig. 14.
Fig. 17 is a sectional view of a compressor of the present invention having two cylinders.
Fig. 18 is an overall configuration diagram of the middle spacer in fig. 17.
In the figure: 1. a rotating shaft assembly; 11. a rotating shaft; 111. a first oil outlet hole; 112. a second oil outlet hole; 113. a third oil outlet; 12. a piston; 121. a first oil groove; 1211. a first annular groove; 1212. a first connecting groove; 1213. a first storage tank; 122. a second oil groove; 1221. a second annular groove; 1222. a second communicating groove; 1223. a second storage tank; 123. a transition chamber; 124. an upper opening; 125. a lower opening; 2. sliding blades; 21. A roller groove; 22. an upper slider oil groove; 221. a first upper slider oil groove; 222. a second upper slider oil groove; 23. A lower slider oil groove; 231. a first lower slide oil groove; 232. a second lower slider oil groove; 3. a cylinder; 31. a compression chamber; 32. a slide groove; 33. an oil groove on the upper end surface of the cylinder; 331. an oil groove on the upper end surface of the first cylinder; 332. an oil groove is formed in the upper end face of the second cylinder; 34. an oil groove on the lower end surface of the cylinder; 35. a cylinder longitudinal oil groove; 36. a communication gap; 37. an air inlet of the cylinder; 38. a cylinder air outlet; 301. an upper cylinder body; 302. a lower cylinder body; 4. A main bearing; 41. an oil guide through hole; 42. an oil guide groove; 421. a low-pressure side oil guide groove; 422. a high-pressure side oil guide groove; 5. a secondary bearing; 51. introducing high pressure into the gas tank; 52. a low-pressure gas outlet groove; 53. the auxiliary bearing oil guide groove; 6. a roller; 7. a middle partition plate; 71. the middle clapboard leads the oil groove.
Detailed Description
To facilitate an understanding of the present invention, the present invention will now be described more fully with reference to the accompanying drawings.
It will be understood that when an element is referred to as being "connected" to another element, it can be directly connected to the other element or intervening elements may also be present. The terms "mounted," "one end," "the other end," and the like are used herein for illustrative purposes only.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. The terminology used in the description herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. As used herein, the term "and/or" includes any and all combinations of one or more of the associated listed items.
Referring to fig. 1 to 18, an embodiment of the present invention provides a compressor, including a rotating shaft assembly 11, a sliding vane 2, a cylinder 3, a main bearing 4, an auxiliary bearing 5 and a housing, where the rotating shaft assembly 11 penetrates through the cylinder 3, the main bearing 4 and the auxiliary bearing 5, the main bearing 4 is located at an upper portion of the cylinder 3, and the auxiliary bearing 5 is located at a lower portion of the cylinder 3; the pivot subassembly 11 includes pivot 11 and piston 12, and pivot 11 and piston 12 fixed connection are formed with the cavity in the pivot 11, and the lower extreme of cavity is provided with the opening, is formed with the oil bath in the shell, and the opening is located the oil bath, is provided with the pivot oil outlet in the pivot 11, and the pivot oil outlet is linked together with the cavity. The embodiment of the utility model provides a through set up the pivot oil outlet on the lateral wall of pivot 11, can introduce the lubricating oil in the oil bath to pivot subassembly 11 through external force, gleitbretter 2, cylinder 3, in the gap between main bearing 4 and the auxiliary bearing 5, make between main bearing, cylinder, auxiliary bearing, pivot subassembly and the gleitbretter all with the face form the oil film in the gap that the face pasted mutually, improve the leakproofness between it, reduce the refrigerant seepage to the outer volume of compression chamber 31 in compression process, thereby effectively improve the energy efficiency ratio.
Referring to fig. 2 and 3, the oil outlet holes of the rotating shaft include a first oil outlet hole 111, the two ends of the piston body are formed with an upper end surface of the piston and a lower end surface of the piston, and the first oil outlet hole 111 is disposed near the upper end surface of the piston; the cavity of the rotating shaft 11 is fixed with a helical blade, when the helical blade rotates along with the rotating shaft 11, the lubricating oil in the oil pool is brought into the cavity and thrown out of the first oil outlet hole 111, and the lubricating oil coming out of the first oil outlet hole 111 falls on the upper end face of the piston. The piston 12 can bring the lubricating oil to the upper surface of the piston 12 and the surface of the cylinder 3 contacting the piston 12 in the process of rotating along with the rotating shaft 11, namely, the lubricating effect is achieved, and the sealing effect between the cylinder 3 and the piston 12 is better due to an oil film generated between the cylinder 3 and the piston 12. In other embodiments, the lubricant in the oil pool can be pumped into the upper part of the cavity of the rotating shaft by an oil pump.
In the preferred embodiment, the piston upper end surface is formed with a first oil groove 121, and the lubricating oil thrown from the first oil outlet hole is gathered in the first oil groove to play the role of oil seal and lubricating the piston and main bearing connecting surface. In another preferred embodiment, the oil outlet hole of the rotating shaft further comprises a third oil outlet hole 113, the lower end surface of the piston is provided with a second oil groove 122, during the rotation of the piston 12, the lubricating oil in the third oil outlet hole 113 is thrown between the piston and the auxiliary bearing and is collected in the second oil groove, and the lubricating oil in the second oil groove 122 can form a sealing oil film between the second oil groove 122 and the auxiliary bearing 5, and can also play a role of lubrication and sealing. In other embodiments, the piston upper end surface is formed with the first oil outlet hole 111 and the third oil outlet hole 113, and the first oil outlet hole 111 and the third oil outlet hole 113 function as in the above two embodiments.
In a preferred embodiment, the first oil groove 121 includes a first annular groove 1211, a first connecting groove 1212, and a first reservoir groove 1213, the first annular groove 1211 surrounds the shaft hole, and the inner side of the first annular groove 1211 penetrates through the side wall of the shaft hole, and the lubricating oil in the first annular groove 1211 can penetrate between the rotating shaft 11 and the piston 12 to perform an oil film sealing function. One end of the first connecting groove 1212 is communicated with the first annular groove 1211, the other end of the first connecting groove 1212 is communicated with the first storage groove 1213, and the lubricating oil in the first annular groove 1211 is guided into the first connecting groove 1212 and the first storage groove 1213, so that the lubricating oil is more easily smeared between the piston 12 and the main bearing 4, and the lubricating oil leaks to other structures of the compressor, so that an oil film is more easily formed on the contact surfaces of other components, and the sealing effect of the compressor is further enhanced.
Referring to fig. 3, in the preferred embodiment, the rotating shaft 11 is provided with a third oil outlet 113, the third oil outlet 113 is located at the lower part of the piston 12, the lower end surface of the piston is provided with a second oil groove 122, and the lubricating oil thrown out from the third oil outlet 113 is at least partially collected in the second oil groove 122. The second oil groove 122 includes a second annular groove 1221, a second communication groove 1222, and a second storage groove 1223, the second annular groove 1221 communicates with the first annular groove 1211, one end of the second communication groove 1222 communicates with the second annular groove 1221, and the other end of the second communication groove 1222 communicates with the second storage groove 1223. The lubricating oil thrown out from the third oil outlet 113 flows in the second annular groove 1221, the second communication groove 1222, and the second reservoir groove 1223, and the lubricating oil is spread more easily between the sub-bearing 5 and the piston 12 to form an oil film, thereby performing both a lubricating function and an oil sealing function. First oil groove 121 is longer than second oil groove 122, specifically, second oil groove 122 is located the position of keeping away from lower opening 125 of piston 12, and second oil groove 122 only extends in piston 12 unopened position, and piston 12 open position wall is thinner, and it can influence the stability of piston 12 structure to open the groove again, so set up, under the circumstances that guarantees that the lubricating oil flows, makes the structural stability of piston 12 still guarantee, reduces eccentric piston 12 because of the damaged risk of pressure is too big. And an auxiliary bearing oil guide groove is formed in the auxiliary bearing, the projection of the auxiliary bearing oil guide groove in the axial direction of the auxiliary bearing oil guide groove is positioned on the piston and the cylinder, so that lubricating oil coming out of the third oil outlet falls on the piston, and is thrown to a position between the cylinder and the auxiliary bearing through the auxiliary bearing oil guide groove under the action of centrifugal force to form an oil film at the position, and the sealing effect is enhanced.
The utility model discloses up end (contrary T) and lower terminal surface (T) at pivot 11 are provided with first oil groove and second oil groove respectively, rotary motion is done to pivot 11 under motor drive, combine 11 inside cavity structures in pivot, lubricating oil in the oil bath can be led to in first oil groove and the second oil groove, lubricating oil in the oil groove can form sealed oil film, effectually prevent that the high-pressure gas in the compression chamber 31 from struggling into among the inside cavity of piston 12, reduce the friction resistance of terminal surface (T) and up end (contrary T) down simultaneously, reduce wearing and tearing.
In a preferred embodiment, the piston 12 is an eccentric piston, a transition cavity 123 and an upper opening 124 are formed in the piston 12, the upper opening 124 is communicated with the transition cavity 123, the upper opening 124 comprises a first upper opening 124 and a second upper opening 124, the first upper opening 124 is positioned on one side of the maximum radius of the eccentric piston, the second upper opening 124 is positioned on the other side of the maximum radius of the eccentric piston, and it should be noted that the maximum radius of the eccentric piston refers to a line with the largest vertical distance from the center line of the rotating shaft 11 to the edge of the piston 12.
In an embodiment, the first connecting channel 1212 is located on the maximum radius of the eccentric piston 12, i.e. the first connecting channel 1212 is located between the first upper opening 124 and the second upper opening 124, the first connecting channel 1212 extending along the maximum radius. In another embodiment, the first connecting channel 1212 is located near the maximum radius of the eccentric piston 12. The first communicating groove 1212 is located between the first upper opening 124 and the second upper opening 124, and at least one end of the first storage groove 1213 is connected to the first communicating groove 1212, and further, the first communicating groove 1212 is located at the maximum radius of the eccentric piston, and since the maximum radius of the eccentric piston is the position where the eccentric piston is in sealing contact with the cylinder 3, and the position is closest to the cylinder 3, it is also easiest to throw the lubricating oil located on the eccentric piston to the positions of the cylinder 3 and the vane 2, and therefore, an oil groove is provided at this position, and it is easier to accumulate more lubricating oil and throw the lubricating oil to the upper end surface of the cylinder and the upper end surface of the vane 2. First hold up tank 1213 extends to eccentric piston's low pressure side (need explain that, the utility model discloses well high pressure side and low pressure side are with the diameter at gleitbretter place as the boundary line), because high-pressure side pressure is big, the lateral wall of eccentric piston's high pressure side need bear bigger pressure, and the low pressure side then does not have this risk, consequently, extends first hold up tank 1213 to the low pressure side, can reduce eccentric piston 12 because of the too big impaired risk of pressure.
In the preferred embodiment, the first oil outlet hole 111 is formed with a notch on the periphery thereof, so that a gap is formed when the rotating shaft 11 is engaged with an external component, since the contact surface between the rotating shaft 11 and the main bearing 4 is substantially in a sealed state, if no notch is formed, the amount of the lubricating oil thrown out from the first oil outlet hole 111 is very small, and the lubricating oil cannot be sealed and lubricated, and the provision of a notch enables the lubricating oil to be more easily thrown out from the first oil outlet hole 111. In another preferred embodiment, at least a portion of the rotating shaft 11 between the upper portion of the first oil outlet hole 111 and the upper end surface of the piston has a smaller diameter than the upper portion of the first oil outlet hole 111, so that a gap is formed at the position of the first oil outlet hole 111, and similarly, in order to more easily throw out the lubricating oil, it should be noted that the upper portion of the first oil outlet hole 111 refers to a point or an annular line located at the upper portion of the first oil outlet hole 111, and the specific position of the upper portion of the first oil outlet hole 111 is not limited in the present invention as long as it is located at the upper portion of the first oil outlet hole 111 in the vertical direction. Of course, the diameter of the rotating shaft 11 may be different at other positions, and it is within the scope of the present application as long as the above conditions of the present application are satisfied.
The cavity internal fixation of pivot 11 has helical blade, has seted up on the diapire of main bearing 4 and has led oil through hole 41, and helical blade when rotating along with pivot 11, can take lubricating oil to the upper portion of cavity. The oil outlet holes of the rotating shaft further comprise a second oil outlet hole 112, the second oil outlet hole 112 is located at the top of the rotating shaft 11, when the helical blade rotates along with the rotating shaft 11, lubricating oil in the oil pool is brought into the cavity and thrown out from the second oil outlet hole 112 to fall into the main bearing 4, and the lubricating oil enters between the main bearing 4 and the air cylinder 3 through the oil guide through hole 41. The utility model discloses a set up on the main bearing 4 of compressor and lead oil through-hole 41, set up the oil bath on secondary bearing 5, utilize on helical blade's the lubricating oil of gathering in with the oil bath introduces the up end of cylinder 3, ensure that its oil mass supply is abundant, lubricating oil can cyclic utilization.
Referring to fig. 4 and 5, the sliding vane 2 includes a sliding vane body, a roller groove 21 is provided at a side surface of the sliding vane body, an upper sliding vane oil groove 22 is provided at an upper end surface of the sliding vane body, and one end of the upper sliding vane oil groove 22 extends to one side surface of the sliding vane body and penetrates through the side surface. Along with piston 12's rotation, reciprocating motion can be done to gleitbretter 2, when gleitbretter 2 moved the state of supreme gleitbretter oil groove 22 and cylinder up end oil groove 33 intercommunication, in lubricating oil in the cylinder up end oil groove 33 can flow into last gleitbretter oil groove 22, when the lubricating oil in last gleitbretter oil groove 22 was enough many, can form the oil blanket, strengthens sealed effect.
In a preferred embodiment, the upper vane oil groove 22 includes a first upper vane oil groove 221 and a second upper vane oil groove 222, and one end of the first upper vane oil groove 221 extends toward one side surface of the vane body and penetrates the side surface for communicating with the cylinder upper end surface oil groove 33 to introduce the lubricating oil in the cylinder upper end surface oil groove 33 into the upper vane oil groove 22. The first upper slider oil groove 221 is communicated with the second upper slider oil groove 222, one end of the second upper slider oil groove 222 penetrates through the side wall of the roller groove 21 and is communicated with the roller groove 21, and the lubricating oil in the upper slider oil groove 22 permeates into the roller groove 21 to play a role in lubricating between the roller 6 and the roller groove 21.
In a preferred embodiment, the lower end surface of the vane body is also provided with a lower vane oil groove 23, the lower vane oil groove 23 includes a first lower vane oil groove 231 and a second lower vane oil groove 232, and one end of the first lower vane oil groove 231 extends to and penetrates through one side surface of the vane body; the first lower vane oil groove 231 is communicated with the second lower vane oil groove 232; first upper slide oil groove 221 and first lower slide oil groove 231 all communicate the low pressure side of gleitbretter body, and lubricating oil oozes the lower part of gleitbretter body from between gleitbretter 2 and the gleitbretter groove 32, flows into second lower slide oil groove 232 from first lower slide oil groove 231 again, has sufficient lubricating oil in lower slide oil groove 23, will permeate the gap between gleitbretter 2 and the upper bearing in, plays the effect of oil blanket equally, provides sealed effect.
Referring to fig. 6, in a preferred embodiment, the cylinder 3 includes a cylinder body, a compression cavity 31 is formed on the cylinder body, a slide groove 32 and a cylinder upper end surface oil groove 33 are further formed on the cylinder body, the slide groove 32 is communicated with the compression cavity 31, the cylinder upper end surface oil groove 33 is located on an upper end surface of the cylinder 3, the cylinder upper end surface oil groove 33 penetrates through a side wall of the slide groove 32 and is communicated with the slide groove 32, and lubricating oil in the cylinder upper end surface oil groove 33 can be introduced into the slide groove 32, so that relative movement between the slide 2 and the cylinder 3 is lubricated.
Referring to fig. 6 and 7, in a preferred embodiment, the cylinder upper end surface oil groove 33 is disposed around the compression cavity 31, a communication notch 36 is disposed on an upper side wall of the sliding vane groove 32, the communication notch 36 is communicated with the cylinder upper end surface oil groove 33, the communication notch 36 can receive lubricating oil of the cylinder upper end surface oil groove 33, and can also receive lubricating oil thrown out when the piston 12 rotates, and then guide the lubricating oil into the upper sliding vane oil groove 22, and at the same time, the time that the upper sliding vane oil groove 22 can be communicated with other oil passages is longer, and more lubricating oil flows into the upper sliding vane oil groove 22.
Referring to fig. 9 and 10, in the preferred embodiment, the cylinder head side oil grooves 33 include a first cylinder head side oil groove 331 and a second cylinder head side oil groove 332, the first cylinder head side oil groove 331 penetrates one side wall of the vane groove 32 to permeate downward through a gap between the vane 2 and the cylinder 3, the second cylinder head side oil groove 332 penetrates the other side wall of the vane groove 32 to receive the permeated lubricating oil between the vane 2 and the cylinder 3, and the first cylinder head side oil groove 331 and the second cylinder head side oil groove 332 are not communicated with each other.
Referring to fig. 6, in a preferred embodiment, the cylinder upper end surface oil groove 33 extends along the edge of the compression chamber 31; referring to fig. 8, in another embodiment, a partial cylinder upper end oil groove 33 extends along the edge of the compression chamber 31. No matter how extended the cylinder oil groove is, it can more easily receive the lubricating oil thrown out by the piston 12 if it is close to the edge of the compression chamber 31.
Referring to fig. 11, in a preferred embodiment, the lower end surface of the cylinder 3 is provided with a cylinder lower end surface oil groove 34, at least one end of the cylinder upper end surface oil groove 33 penetrates one of the side walls of the slide plate groove 32, and at least one end of the cylinder lower end surface oil groove 34 penetrates one of the side walls of the slide plate groove 32, for communicating the cylinder upper end surface oil groove 33 and the cylinder lower end surface oil groove 34 through the slide plate groove 32.
Referring to fig. 7, in the preferred embodiment, a cylinder longitudinal oil groove 35 is provided on a side wall of the vane groove 32, one end of the cylinder longitudinal oil groove 35 is communicated with the cylinder upper end surface oil groove 33, further, the cylinder longitudinal oil groove 35 is communicated with a communication notch 36, and lubricating oil permeates between the vane 2 and the cylinder 3 from the communication notch 36, so as to increase the speed of the lubricating oil permeating into the cylinder lower end surface oil groove 34 from the cylinder upper end surface oil groove 33.
Oil grooves are formed in the upper end face and the lower end face of the cylinder 3 and two side faces of the sliding sheet groove 32, the upper end face is assembled with the end face of the main bearing 4, the lower end face is assembled with the end face of the auxiliary bearing 5, a sliding sheet 2 is installed in the sliding sheet groove 32, and the oil grooves which are mutually connected and play a role in strengthening sealing can be formed after the structures are assembled; the upper end face and the lower end face of the sliding sheet 2 are respectively provided with an oil groove, along with the reciprocating motion of the sliding sheet 2, oil in the oil grooves not only reduces the friction resistance, but also can strengthen the sealing and prevent the air leakage between the high-pressure cavity and the low-pressure cavity through the matching surfaces of the sliding sheet 2 in the running process of the pump body.
Referring to fig. 17 to 18, the compressor further includes a middle partition plate 7, the cylinder body includes an upper cylinder body 301 and a lower cylinder body 302, the piston includes an upper piston and a lower piston, the middle partition plate 7 is located between the upper cylinder body 301 and the lower cylinder body 302, the upper piston is located in the compression cavity of the upper cylinder body 301, and the lower piston is located in the compression cavity of the lower cylinder body 302, which is a compressor with a dual-cylinder structure. The first oil outlet hole 111 includes an upper oil outlet hole and a lower oil outlet hole, and the lubricating oil thrown out from the upper oil outlet hole falls on the upper end surface of the upper piston, and the lubricating oil thrown out from the lower oil outlet hole falls on the upper end surface of the lower piston. Referring to fig. 18, a middle partition plate oil guide groove 71 is disposed on the middle partition plate 7, a projection of the middle partition plate oil guide groove 71 in the axial direction coincides with a part of the pistons (it should be noted that a projection of the middle partition plate oil guide groove 71 in the axial direction refers to a projection of the middle partition plate oil guide groove 71 along the direction of the rotating shaft 11 and falling on a plane where the upper end surface of the lower cylinder body is located, in this application, other descriptions regarding the projection direction may refer to this explanation), and also coincides with a part of the lower cylinder body and/or a part of the lower sliding vane, lubricating oil coming out from the lower piston is thrown to the lower cylinder and/or the lower sliding vane through the middle partition plate oil guide groove 71 under the action of centrifugal force, an action of the middle partition plate oil guide groove 71 disposed on the middle partition plate 7 is completely the same as an action of the main bearing oil guide groove disposed on the main bearing, and is not described herein again. In one embodiment, one of the intermediate partition oil guide grooves 71 may be provided, and the intermediate partition oil guide groove 71 is provided at the high pressure side or the low pressure side of the lower cylinder body. In other embodiments, two intermediate partition oil guide grooves 71 may be provided, and the two intermediate partition oil guide grooves 71 are located on the high pressure side and the low pressure side of the lower cylinder, respectively. The oil groove formed in the lower cylinder body 302 is matched with the oil guide groove 71 of the middle partition plate, so that the high-pressure side and the low-pressure side of the lower cylinder body 302 are prevented from air blowby.
Referring to fig. 12, in a preferred embodiment, the main bearing 4 includes a main bearing body, an oil guide groove 42 is formed in the main bearing body, a projection of the oil guide groove 42 in the axial direction coincides with a part of the piston 12 and also coincides with a part of the cylinder 3 and/or a part of the vane 2, and lubricating oil coming out of the first oil groove 121 is thrown onto the cylinder 3 and/or the vane 2 through the oil guide groove 42 under the action of centrifugal force, so that the lubricating oil on the piston 12 is transferred to the cylinder 3 and/or the vane 2, and the lubricating oil can also generate an oil film at a joint of other components, thereby further increasing a sealing effect of the cylinder 3.
Referring to fig. 12, in the first preferred embodiment, the oil guide groove 42 includes a low pressure side oil guide groove 421, and the low pressure side oil guide groove 421 is located on the low pressure side of the vane 2 and has a projection in the axial direction coinciding with the cylinder upper end surface oil groove 33. In the second embodiment, the oil guiding groove 42 includes a high-pressure side oil guiding groove 422, the high-pressure side oil guiding groove 422 is located on the high-pressure side of the sliding vane 2, a projection of the high-pressure side oil guiding groove 422 in the axial direction coincides with the first cylinder upper end surface oil groove 331, the first cylinder upper end surface oil groove 331 is opened on the high-pressure side of the cylinder, the first cylinder upper end surface oil groove 331 does not extend to the low-pressure side of the cylinder 3, the low-pressure side is provided with the second cylinder upper end surface oil groove 332, the second cylinder upper end surface oil groove 332 is only opened on the low-pressure side of the cylinder, and the first cylinder upper end surface oil groove 331 and the second cylinder upper end surface oil groove 332 are not communicated. In the third embodiment, the oil guide groove 42 includes a low pressure side oil guide groove 421 and a high pressure side oil guide groove 422, the low pressure side oil guide groove 421 is the same as in the first embodiment, and the high pressure side oil guide groove 422 is the same as in the second embodiment, which are not described again. In more embodiments, the secondary bearing is also provided with an oil guide groove, and the structure and the function of the oil guide groove can refer to the oil guide groove of the main bearing.
In the preferred embodiment, the oil-guiding groove 42 has a depth of 0.1mm to 0.2mm or 0.2mm to 0.25mm or 0.25mm to 0.5mm or 0.5mm to 0.8mm or 0.8 to 1mm. The thickness of the bottom wall of the main bearing 4 is generally 3mm, if the oil guide groove 42 is too shallow, the oil throwing effect is not good, and if the oil guide groove is too deep, the mechanical stability and the air tightness of the main bearing 4 are affected. In other embodiments, the ratio of the thickness of the wall in which the oil groove is located to the depth of the oil groove is 6-30.
Referring to fig. 12, in the first embodiment, the rotating shaft oil outlet hole includes a first oil outlet hole 111, and a first oil passage is formed in the compressor, and the first oil passage includes, in order, the first oil outlet hole 111 on the rotating shaft 11, a first oil groove 121 on the piston 12, and an oil guide groove 42 on the main shaft; the first oil path further includes an oil groove 33 located on the cylinder 3 and an oil groove 22 located on the sliding vane 2, which are communicated with the oil guide groove 42. In the second embodiment, the oil outlet holes of the rotating shaft include the second oil outlet hole 112, and a second oil passage including the second oil outlet hole 112 provided in the rotating shaft 11 and the oil guide through hole 41 provided in the main bearing 4 is formed in the compressor. In the third embodiment, the oil outlet holes of the rotating shaft include the third oil outlet hole 113, a third oil path is formed in the compressor, the third oil path includes the cylinder lower end surface oil groove 34 located in the third oil outlet hole 113 and located in the lower end surface of the piston 12, the cylinder lower end surface oil groove 34 is arranged to form a gap between the auxiliary bearing 5 and the piston 12, and the lubricating oil is collected in the gap to lubricate and seal the auxiliary bearing 5 and the piston 12. In other embodiments, two or three of the first oil passage, the second oil passage, and the third oil passage may be present at the same time.
Referring to FIG. 3, in the preferred embodiment, the piston 12 is an eccentric piston, and a transition chamber 123 and a lower opening 125 are formed in the piston 12, the lower opening 125 communicating with the transition chamber 123. Referring to fig. 13 and 14, the sub-bearing 5 is provided with a high pressure lead-in air groove 51 and a low pressure lead-out air groove 52; the projection of the high-pressure air-introducing groove 51 in the axial direction is located on the high-pressure side of the cylinder 3 and between the slide plate groove 32 and the cylinder air outlet 38, when the eccentric rotating shaft 11 rotates to a specific position, the high-pressure air-introducing groove 51 just straddles the side wall of the lower opening 125, so that the transition cavity 123 is communicated with the high-pressure cavity, and high-pressure refrigerant in the high-pressure cavity can enter the transition cavity 123 instantly. The projection of the low-pressure air-guiding groove 52 in the axial direction is located on the low-pressure side of the cylinder 3 and downstream of the cylinder air inlet 37 (downstream of the direction in which the piston 12 rotates), when the eccentric piston 12 rotates at a specific position, the low-pressure air-guiding groove just straddles over the side wall of the transition cavity 123, the low-pressure air-guiding groove conducts the transition cavity 123 with the low-pressure cavity, and the high-pressure refrigerant in the transition cavity 123 can also enter the low-pressure cavity instantaneously. In the prior art, the high-pressure refrigerant in the compression cavity 31 is decompressed through the air cylinder air outlet 38, and as some gaps exist between the air cylinder air outlet 38 and the sliding vane 2, part of the high-pressure refrigerant (clearance volume) can be remained, the high-pressure refrigerant (clearance volume) in the angle range can reversely flow back to the low-pressure cavity along with the rotation of the eccentric piston 12, and at the moment, the clearance volume expands due to the low pressure in the cavity and occupies partial space of the suction cavity, so that the low-pressure refrigerant newly sucked from the outside can be reduced in each action, the volumetric efficiency of the compressor is directly reduced, and the energy efficiency ratio is further directly reduced. The utility model discloses a set up leading-in air duct 51 of high pressure and low pressure derivation air duct 52 on auxiliary bearing 5, realize shifting the highly compressed refrigerant of residual part to the low pressure chamber in to continue the compression to it, thereby compensatied not enough among the prior art, improved the energy efficiency ratio of compressor.
Referring to fig. 14, in the preferred embodiment, a sub-bearing oil guide groove 53 is provided in the sub-bearing 5 to allow the lubricating oil to pass therethrough. In another preferred embodiment, a high-pressure leading-in air groove 51 and a low-pressure leading-out air groove 52 are further arranged on the auxiliary bearing 5, the high-pressure leading-in air groove 51 and the low-pressure leading-out air groove 52 are matched as leading-in and leading-out control switches of clearance volumes, high-pressure clearances can be sucked and discharged into the transition cavity 123, the main function of the structure is that the high-pressure leading-in air groove 51 and the low-pressure leading-out air groove are communicated as switches at specific positions, the high-pressure leading-in air groove and the high-pressure leading-out air groove are communicated with the transition cavity 123 of the eccentric part of the rotating shaft 11, and the transition cavity 123 of the eccentric part of the rotating shaft and the low-pressure compressor are communicated with each other to release the clearance volume with higher pressure after the high-pressure leading-in air groove 51 is closed.
The utility model also provides a temperature regulation system still includes evaporimeter, condenser and the compressor of above-mentioned arbitrary item, has the refrigerant circulation to flow between compressor, evaporimeter, the condenser.
The utility model discloses a draw lubricating oil through the pivot oil outlet, at cylinder 3 terminal surface and the 11 eccentric part end pairs in slide groove 32 both sides face, 2 terminal surfaces of gleitbretter and pivot set up the oil groove, and lead oil groove 42 in the setting of base bearing 4, thereby realize not adding the effective leakproofness of each fitting surface in the compressor pump body compression chamber 31 with the help of the inside lubricating oil of compressor fully under the prerequisite of other components, the pressure differential improves, it falls to minimumly to reveal harmfully, effectively improve the efficiency ratio of cylinder 3. The communicated grooves are arranged on the auxiliary bearing 5 (the main bearing 4) to serve as a control switch, the cavity of the eccentric part of the integrated rotating shaft 11 serves as a transitional gas storage structure, the clearance volume in the cavity of the compressor is reintroduced into the suction cavity in an enthalpy-increasing and gas-supplementing mode, and low-temperature and low-pressure gaseous refrigerant cannot be reversely pushed out to reduce the volumetric efficiency.
The technical features of the above embodiments can be arbitrarily combined, and for the sake of brevity, all possible combinations of the technical features in the above embodiments are not described, but should be considered as the scope of the present specification as long as there is no contradiction between the combinations of the technical features.
The above embodiments only express the specific embodiments of the utility model, and the description thereof is more specific and detailed, but not so as to limit the scope of the patent of the utility model. It should be noted that, for those skilled in the art, without departing from the spirit of the present invention, several variations and modifications can be made, which are within the scope of the present invention. Therefore, the protection scope of the present invention should be subject to the appended claims.
Claims (12)
1. The utility model provides a gleitbretter for compressor, its characterized in that includes the gleitbretter body, the side of gleitbretter body is provided with the roller groove, the terminal surface of gleitbretter body is provided with the gleitbretter oil groove, the one end of gleitbretter oil groove to a side of gleitbretter body extends, and runs through this side.
2. The sliding vane of claim 1, wherein the sliding vane oil groove comprises an upper sliding vane oil groove located on an upper end surface of the sliding vane body, and one end of the upper sliding vane oil groove extends toward and through one side surface of the sliding vane body.
3. The sliding vane of claim 2, wherein the upper vane oil groove comprises a first upper vane oil groove and a second upper vane oil groove, and one end of the first upper vane oil groove extends toward and through one side surface of the sliding vane body; the first upper slide oil groove and the second upper slide oil groove are communicated, and one end of the second upper slide oil groove penetrates through the side wall of the roller groove and is communicated with the roller groove.
4. The slider of claim 1, further comprising a lower slider oil groove located on a lower end surface of said slider body, said lower slider oil groove comprising a first lower slider oil groove and a second lower slider oil groove, one end of said first lower slider oil groove extending toward and through one side surface of said slider body; the first lower sliding sheet oil groove is communicated with the second lower sliding sheet oil groove, and two ends of the second lower sliding sheet oil groove are not penetrated through.
5. The sliding vane for compressor as claimed in claim 1, wherein the sliding vane body is further provided with a vertical sliding vane oil groove, an upper sliding vane oil groove and a lower sliding vane oil groove, the vertical sliding vane oil groove is opened at a side surface of the sliding vane, the upper sliding vane oil groove and the lower sliding vane oil groove are respectively opened at an upper end surface and a lower end surface of the sliding vane, and the vertical sliding vane oil groove is communicated with the upper sliding vane oil groove and the lower sliding vane oil groove.
6. The sliding vane as claimed in claim 1, wherein the transverse section of the roller groove is arc-shaped, and the two ends of the roller groove are respectively formed with a first roller groove end surface and a second roller groove end surface, the first roller groove end surface is close to the low pressure side of the cylinder, and the second roller groove end surface is close to the high pressure side of the roller groove; the second roller groove end face protrudes beyond the first roller groove end face.
7. A compressor comprising a rotary shaft assembly, a slide vane, a cylinder, a main bearing, a secondary bearing and a housing, wherein the rotary shaft assembly, the slide vane, the cylinder, the main bearing and the secondary bearing are positioned in the housing, the slide vane is as claimed in any one of claims 1 to 6, the rotary shaft assembly penetrates through the cylinder, the main bearing and the secondary bearing, the main bearing is positioned at an upper part of the cylinder, and the secondary bearing is positioned at a lower part of the cylinder; the rotating shaft assembly comprises a rotating shaft and a piston, the rotating shaft is fixedly connected with the piston, a cavity is formed in the rotating shaft, an opening is formed in the lower end of the cavity, an oil pool is formed in the shell, the opening is located in the oil pool, a first oil outlet hole is formed in the rotating shaft, the upper end face of the piston and the lower end face of the piston are formed in two ends of the piston body, and the first oil outlet hole is arranged close to the upper end face of the piston; and when the helical blade rotates along with the rotating shaft, the lubricating oil in the oil pool is brought into the cavity and thrown out of the first oil outlet, and the lubricating oil coming out of the first oil outlet falls on the upper end face of the piston.
8. The compressor of claim 7, wherein the cylinder includes a cylinder body, the cylinder body defines a compression chamber, the cylinder body further defines a vane groove and a cylinder upper end oil groove, the vane groove is communicated with the compression chamber, the cylinder upper end oil groove is located on the cylinder upper end surface, and the cylinder upper end oil groove penetrates through a sidewall of the vane groove and is communicated with the vane groove.
9. The compressor of claim 8, wherein a cylinder lower end surface oil groove is formed in the lower end surface of the cylinder, a cylinder longitudinal oil groove is formed in the side wall of the slide groove, and both ends of the cylinder longitudinal oil groove are respectively communicated with the cylinder upper end surface oil groove and the cylinder lower end surface oil groove.
10. The compressor according to claim 7, wherein the main bearing comprises a main bearing body, an oil guide groove is formed in the main bearing body, a projection of the oil guide groove in the axial direction coincides with a part of the piston and also coincides with a part of the cylinder and/or a part of the sliding vane, a first oil groove is formed in the upper end face of the piston, and lubricating oil from the first oil groove is thrown onto the cylinder and/or the sliding vane through the oil guide groove under the action of centrifugal force.
11. The compressor of claim 10, wherein the oil guide groove comprises a low pressure side oil guide groove, the low pressure side oil guide groove is located on a low pressure side of the sliding vane, and a projection of an axial direction of the low pressure side oil guide groove coincides with an oil groove on an upper end surface of the cylinder; and/or the presence of a gas in the gas,
lead the oil groove and include high pressure side oil groove, high pressure side oil groove is located the high pressure side of gleitbretter, the cylinder up end oil groove has been seted up on the cylinder, cylinder up end oil groove includes first cylinder up end oil groove, high pressure side oil groove in its axial direction's projection with first cylinder up end oil groove has the coincidence, first cylinder up end oil groove does not extend to the low pressure side of cylinder.
12. A temperature regulation system, further comprising an evaporator, a condenser and a compressor as claimed in any one of claims 7 to 11, wherein a refrigerant circulates between the compressor, the evaporator and the condenser.
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CN202221928806.3U CN218235484U (en) | 2022-07-22 | 2022-07-22 | Sliding vane for compressor, compressor and temperature adjusting system |
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CN202221928806.3U CN218235484U (en) | 2022-07-22 | 2022-07-22 | Sliding vane for compressor, compressor and temperature adjusting system |
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