Scroll compressor having internal fixed scroll with pillar design
11365733 · 2022-06-21
Assignee
Inventors
US classification
- 1/1
Cpc classification
F04C2250/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2250/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/0261
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/0292
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/0269
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/0253
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C18/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fixed scroll for a scroll compressor includes a plurality of pillar portions extending axially from a first face of the fixed scroll to an opposing second face thereof. Each of the plurality of the pillar portions is spaced radially outwardly of a spiral structure at least partially defining a compression chamber of the scroll compressor. The fixed scroll further includes an annular array of spaced flow openings into the compression chamber of the scroll compressor with each of the flow openings formed between adjacent ones of the pillar portions.
Claims
1. A fixed scroll for a scroll compressor comprising: a plurality of pillar portions extending axially from a first face of the fixed scroll to an opposing second face thereof, each of the plurality of the pillar portions spaced radially outwardly of a spiral structure at least partially defining a compression chamber of the scroll compressor; an annular array of spaced flow openings into the compression chamber of the scroll compressor with each of the flow openings formed between adjacent ones of the pillar portions, wherein the fixed scroll further comprises at least one reinforcing wall extending axially from the first face towards the second face of the fixed scroll, wherein each of the at least one reinforcing walls is formed between and connects adjacent ones of the pillar portions, wherein the fixed scroll further comprises an arcuate and convex surface extended radially inwardly at a boundary of one of the flow openings, wherein the arcuate and convex surface is formed in the pillar portions and the at least one reinforcing wall, wherein a rapid rotation, consequent pressure drop and flow restriction during radial rotation from axial direction as refrigerant enters through the flow openings are prevented by the arcuate and convex surface formed in the reinforcing wall, wherein a rapid rotation, consequent pressure drop and flow restriction during radial rotation from circumferential direction as refrigerant enters through the flow openings are prevented by the arcuate and convex surfaces formed in the pillar portions, wherein at least one of the flow openings having a greatest axial extension extends axially through at least one third of a total axial distance between the first face and the second face, and different flow openings have an axial extension different from the greatest axial extension of the at least one of the flow openings.
2. The fixed scroll of claim 1, wherein the fixed scroll is formed in a forging process.
3. The fixed scroll of claim 1, wherein each of the flow openings has a constant or a progressively decreasing circumferential width as each of the flow openings progresses away from the second face and towards the first face.
4. The fixed scroll of claim 1, wherein at least one of the flow openings extends axially through at least half of a total axial distance between the first face and the second face.
5. The fixed scroll of claim 1, wherein a ratio of the flow openings relative to the pillar portions around a circumference of the fixed scroll at the second face thereof is between 1 to 4 and 1 to 1.
6. The fixed scroll of claim 1, wherein the at least one reinforcing wall has an increased thickness in the radial direction of the fixed scroll in comparison to the two adjacent ones of the pillar portions.
7. The fixed scroll of claim 1, wherein at least one of the pillar portions includes an axially extending opening formed therein from the second face towards the first face, wherein the axially extending opening is configured to receive a coupler therein for coupling the fixed scroll to a housing of the scroll compressor.
8. The fixed scroll of claim 1, wherein the plurality of pillar portions includes at least three of the pillar portions.
9. A fixed scroll for a scroll compressor comprising: a circumferential wall extending axially from a first face of the fixed scroll to an opposing second face thereof, the first face defined by an end wall of the fixed scroll, the circumferential wall extending from an outermost periphery of the end wall and surrounding a spiral structure extending axially from the end wall, the spiral structure at least partially defining a compression chamber of the scroll compressor, a plurality of discontinuous portions formed in the circumferential wall at the second face thereof to form a plurality of pillar portions in the circumferential wall with each of the pillar portions formed between adjacent ones of the discontinuous portions, wherein each of the discontinuous portions forms a flow opening into the compression chamber of the scroll compressor, wherein the circumferential wall further includes at least one reinforcing wall axially aligned with one of the discontinuous portions of the at least one reinforcing wall connecting two adjacent ones of the pillar portions to each other with respect to the circumferential direction of the circumferential wall, wherein the fixed scroll further comprises an arcuate and convex surface extended radially inwardly at a boundary of one of the flow openings, wherein the arcuate and convex surface is formed in the pillar portions and the at least one reinforcing wall, wherein a rapid rotation, consequent pressure drop and flow restriction during radial rotation from axial direction as refrigerant enters through the flow openings are prevented by the arcuate and convex surface formed in the reinforcing wall, wherein a rapid rotation, consequent pressure drop and flow restriction during radial rotation from circumferential direction as refrigerant enters through the flow openings are prevented by the arcuate and convex surfaces formed in the pillar portions, wherein at least one of the discontinuous portions having a greatest axial extension extends axially through at least one third of a total axial distance between the first face and the second face, and different discontinuous portions have an axial extension different from the greatest axial extension of the at least one of the discontinuous portions.
10. The fixed scroll of claim 9, wherein the discontinuous portions occupy 180 degrees or less of a total circumference of the circumferential wall at the second face of the fixed scroll.
11. The fixed scroll of claim 9, wherein at least one of the discontinuous portions extends axially from the second face to the end wall of the fixed scroll.
12. The fixed scroll of claim 9, wherein the circumferential wall includes at least three of the pillar portions.
13. A scroll compressor for a motor vehicle air conditioning system comprising: an orbiting scroll having a first spiral structure; and a fixed scroll including: a plurality of pillar portions extending axially from a first face of the fixed scroll to an opposing second face thereof, each of the plurality of the pillar portions spaced radially outwardly of a second spiral structure, the second spiral structure configured to cooperate with the first spiral structure of the orbiting scroll to define at least one compression chamber of the scroll compressor; and an annular array of spaced flow openings into the compression chamber of the scroll compressor with each of the flow openings formed between adjacent ones of the pillar portions, wherein the fixed scroll further includes a plurality of reinforcing walls provided between and connecting two adjacent ones of the pillar portion, wherein the fixed scroll further includes an arcuate and convex surface extended radially inwardly at a boundary of one of the flow openings, wherein the arcuate and convex surface is formed in the pillar portions and the plurality of reinforcing walls, wherein a rapid rotation, consequent pressure drop and flow restriction during radial rotation from axial direction as refrigerant enters through the flow openings are prevented by the arcuate and convex surface formed in the reinforcing wall, wherein a rapid rotation, consequent pressure drop and flow restriction during radial rotation from circumferential direction as refrigerant enters through the flow openings are prevented by the arcuate and convex surfaces formed in the pillar portions, wherein at least one of the flow openings having a greatest axial extension extends axially through at least one third of a total axial distance between the first face and the second face, and different flow openings have an axial extension different from the greatest axial extension of the at least one of the flow openings.
14. The scroll compressor of claim 13, further comprising a housing defining at least one flow chamber for conveying the refrigerant to at least one of the flow openings, each of the at least one flow chambers disposed radially outwardly of one of the pillar portions of the fixed scroll.
15. The scroll compressor of claim 13, wherein the second face of the fixed scroll is coupled to an end of a housing portion of the scroll compressor with each of the flow openings at least partially defined by the end of the housing portion.
16. The scroll compressor of claim 15, wherein at least one of the pillar portions includes a coupler opening and the end of the housing portion includes at least opening aligned with the at least one of the pillar portions, wherein a coupler is disposed at least partially within the at least one coupler opening and the at least one opening of the housing portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further particulars, features and advantages of the embodiments of the invention result from the subsequent description of embodiments with reference to the associated drawings. The drawings show:
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS OF THE INVENTION
(10) The following detailed description and appended drawings describe and illustrate various exemplary embodiments of the invention. The description and drawings serve to enable one skilled in the art to make and use the invention, and are not intended to limit the scope of the invention in any manner.
(11)
(12) The fixed scroll 1 further includes a plurality of reinforcing walls 52 provided between and connecting two adjacent ones of the pillar portions 50. Each of the reinforcing walls 52 extends axially from the end wall 24 of the fixed scroll 1 from the first face 21 of the fixed scroll 1 towards the second face 22 thereof. The reinforcing walls 52 do not extend axially all the way to the second face 22 of the fixed scroll 1 such that each of the pillar portions 50 extends axially beyond each of the reinforcing walls 52 in the axial direction from the first face 21 towards the second face 22 of the fixed scroll 1. A height of each of the reinforcing walls 52 as measured in the axial direction of the fixed scroll 1 may be individually defined and accordingly varied based on structural considerations and manufacturing process requirements of the fixed scroll 1. The reinforcing walls 52 are preferably provided to include a minimized height in the axial direction suitable for providing the desired structural integrity to the fixed scroll 1 while maximizing a flow area formed between each of the adjacent pillar portions 50 as explained in greater detail hereinafter.
(13) As shown in
(14) A radial outermost portion of the spiral structure 36 may be merged with one or more of the reinforcing walls 52 and/or the pillar portions 50 about the periphery of the fixed scroll 1 with the remainder of the spiral structure 36 winding radially inwardly towards a central portion thereof disposed at a central region of the end wall 24. A discharge opening 38 is formed through the end wall 24 adjacent the centermost portion of the spiral structure 36 and extends therethrough to the first face 21 of the fixed scroll 1.
(15) The configuration of the pillar portions 50 relative to the reinforcing walls 52 results in the fixed scroll 1 including a plurality of flow openings 45 disposed about the periphery thereof with each of the flow openings 45 disposed between two adjacent ones of the pillar portions 50. More specifically, each of the flow openings 45 is defined by the outer portions of two of the pillar portions 50 and an axial end portion of one of the reinforcing walls 52 connecting the outer portions of the two of the pillar portions 50. Each of the flow openings 45 accordingly extends axially from the second face 22 of the fixed scroll 1 in a direction towards the first face 21 thereof while stopping short of the first face 21 due to the inclusion of the intervening reinforcing walls 52. Each of the flow openings 45 allows for the refrigerant to flow radially inwardly towards the spiral structure 36 when the refrigerant enters the interior of the fixed scroll 1 as explained in greater detail with reference to
(16) The flow openings 45 may include any desired cross-sectional shape, including a substantially semi-circular shape, a substantially triangular shape, or a shape resembling half of a rounded rectangle, as desired. One skilled in the art should appreciate that any suitable shape allowing for passage of the refrigerant thereby may be utilized without necessarily departing from the scope of the present invention. However, it may be desired for the cross-sectional shape of each of the flow openings 45 to include a constant or progressively decreasing width when progressing away from the second face 22 and towards the first face 21 to facilitate an ease of manufacturing the fixed scroll 1. For example, the fixed scroll 1 may be formed using a suitable forging process wherein the structural shape of the fixed scroll 1 is established via a corresponding die or mold. The fixed scroll 1 may alternatively be formed by a suitable casting or molding process, as desired, without necessarily departing from the scope of the present invention. The height, thickness, and general configuration of each of the pillar portions 50 and each of the connecting reinforcing walls 52 may be selected to account for the structural characteristics of the fixed scroll 1 based on the type of manufacturing process and the material used in forming the fixed scroll 1. The fixed scroll 1 may be formed from any substantially rigid material such as a suitable metallic material. The fixed scroll 1 as disclosed herein may preferably be formed from a suitable aluminum alloy or in some cases a suitable steel alloy, as desired.
(17) As shown throughout
(18) The configuration of the fixed scroll 1 as described thus far may alternatively be described as including a circumferential wall projecting axially from an outermost periphery of the end wall 24 at a position surrounding the spiral structure 36 thereof, wherein the circumferential wall is formed by the cooperation of the merged together pillar portions 50 and reinforcing walls 52 as they alternatingly extend around the periphery of the end wall 24. The flow openings 45 therefore are provided as discontinuous portions of the circumferential wall formed at the second face 22 of the fixed scroll 1, wherein each of the discontinuous portions resembles an axially extending indentation extending from the second face 22 of the fixed scroll 1 in a direction towards the first face 21 thereof. Each of the indentations forming the discontinuous portions is accordingly axially aligned with one of the aforementioned reinforcing walls 52 while each of the aforementioned pillar portions 50 are formed by the portions of the circumferential wall disposed between adjacent ones of the discontinuous portions.
(19) The fixed scroll 1 is preferably formed with at least three of the pillar portions 50 to ensure a stable configuration of the fixed scroll 1 when inserted into a corresponding housing of the scroll compressor 10. In the provided embodiment, the fixed scroll 1 includes six of the pillar portions 50 as separated by six of the flow openings 45. The ratio of the circumference of the fixed scroll 1 occupied by the pillar portions 50 in comparison to the flow openings 45 at the second face 22 of the fixed scroll 1 may be any suitable ratio, but about a 1 to 1 ratio is disclosed in
(20) As shown in
(21) The fixed scroll 1 further includes at least two coupler openings 60 extending axially into the fixed scroll 1 from the second face 22 towards the first face 21. Each of the pair of the coupler openings 60 may be formed within the distal surface 51 of one of the pillar portions 50, wherein those pillar portions 50 having one of the coupler openings 60 may include a greater overall thickness in the radial direction of the fixed scroll 1 to accommodate the reduced thickness of the corresponding pillar portions 50 about a perimeter of each of the coupler openings 60. In the disclosed embodiment, the coupler openings 60 are separated from one another by an intermediate disposed one of the pillar portions 50, but any distribution of the coupler openings 60 among the pillar portions 50 may be utilized without necessarily departing from the scope of the present invention, so long as the coupler openings 60 are suitably placed for preventing undesired rotation or translation of the fixed scroll 1 when installed relative to the remainder of the scroll compressor 10.
(22) In the disclosed embodiment, the coupler openings 60 extend through only a portion of each of the pillar portions 50 with respect to the axial direction of the fixed scroll 1 such that the coupler openings 60 do not penetrate the entirety of the fixed scroll 1 to the first face 21 thereof. The coupler openings 60 may have any desired depth and shape for accommodating a corresponding coupler, as desired. The coupler openings 60 are also shown as being substantially circular in cross-section to cause each of the coupler openings 60 to be substantially cylindrical in shape. However, the coupler openings 60 may have any cross-sectional shape suitable for engaging a corresponding coupler, as desired, as explained in greater detail with reference to
(23) The first face 21 of the fixed scroll 1 further includes a pair of locating openings 62 formed therein and extending in an axial direction of the fixed scroll 1 towards the second face 22 thereof. The locating openings 62 are shown as being formed directly opposite the disclosed coupler openings 60, but the opposing openings 60, 62 do not meet each other within the body 20 of the fixed scroll 1 to form a continuous opening through the fixed scroll 1 with respect to the axial direction thereof (illustrated in
(24) The first face 21 of the fixed scroll 1 is also depicted as including a seal groove 63 penetrating the first face 21 at least partially in the axial direction towards the second face 22 thereof, but not to an extent for penetrating the end wall 24. The seal groove 63 is configured to receive a seal 64 (illustrated in
(25) Referring now to
(26) The orbiting scroll 70 extends axially from a first face 71 to an opposing and spaced apart second face 72. The first face 71 and the second face 72 are each substantially planar in configuration and are arranged parallel to each other. The first face 71 of the orbiting scroll 70 forms an end wall 74 of the orbiting scroll 70 configured to delimit a flow of the refrigerant in the axial direction thereof when flowing between the orbiting scroll 70 and the fixed scroll 1. A spiral structure 76 projects axially away from the end wall 74 with a distally arranged surface of the spiral structure 76 forming the second face 72 of the orbiting scroll 70.
(27) As best shown with reference to
(28) The housing 2 generally includes a first housing portion 3 and a second housing portion 4. In some embodiments, the first housing portion 3 may represent a center housing of the scroll compressor 10 while the second housing portion 4 may represent a rear housing of the scroll compressor 10, as desired. The first housing portion 3 includes a substantially planar first end 5 configured to engage the second face 22 of the fixed scroll 1 as formed by the distal surfaces 51 of the pillar portions 50 while also disposed immediately adjacent the first face 71 of the orbiting scroll 70. The first end 5 of the first housing portion 3 accordingly defines a portion of the periphery of each of the flow openings 45 on the plane defined by the second face 22 of the fixed scroll 1. The first end 5 of the first housing portion 3 is further configured to engage a first end 6 of the second housing portion 4 about a periphery of the scroll compressor 1 along substantially the same plane occupied by the second face 22 of the fixed scroll 1 and the first face 71 of the orbiting scroll 70.
(29) As shown in each of
(30) The refrigerant communication passages 7 may be provided as voids formed in the first housing portion 3 as illustrated throughout
(31) The first housing portion 3 further includes at least two openings 8 formed therein at positions corresponding to and axially aligned with the at least two of the coupler openings 60 penetrating the second face 22 of the fixed scroll 1. Each of the openings 8 may have any suitable cross-sectional shape corresponding to that of the coupler openings 60 to allow for a coupler 68 to extend at least partially through each aligned set of the openings 8 and the coupler openings 60. In the provided embodiment, each of the couplers 68 is a cylindrical pin with a circular cross-sectional shape that is inserted at least partially into one of the openings 8 and at least partially into one of the coupler openings 60 with respect to the axial direction of the fixed scroll 1, as shown with reference to
(32) The second housing portion 4 generally includes an inner portion 12 and an outer portion 13. The inner portion 12 includes an engaging surface 14 arranged parallel to and placed in contact with the first face 21 of the fixed scroll 1. The outer portion 13 extends axially from a periphery of the inner portion 12 and is positioned radially outward of the outer surface of the circumferential wall 30 about a circumference thereof. The outer portion 13 is radially spaced apart from the outer circumferential surface of the fixed scroll 1 at a plurality of circumferentially spaced positions to form a plurality of refrigerant flow chambers 15 about the periphery of the fixed scroll 1. Each of the refrigerant flow chambers 15 is placed in direct fluid communication with at least one of the refrigerant communication passages 7 as well as at least one of the flow openings 45 into the fixed scroll 1.
(33) The second housing portion 4 may be coupled to the first housing portion 3 via a plurality of circumferentially spaced threaded fasteners 18 extending axially through the outer portion 13 of the second housing portion 4 and the periphery of the first housing portion 3. The threaded fasteners 18 may be tightened to compress the fixed scroll 1 in the axial direction between the first end 6 of the first housing portion 3 and the engaging surface 14 formed by the inner portion 12 of the second housing portion 4. This axial compression of the fixed scroll 1 between the first housing portion 3 and the second housing portion 4 affixes an axial position of the fixed scroll 1 within the scroll compressor 10 while also compressing the seal 64 present between the first face 21 of the fixed scroll 1 and the engaging surface 14 of the second housing portion 4. The fixed scroll 1 is accordingly restrained from undesired movement relative to the housing 2 of the scroll compressor 10 while also positioned for allowing the refrigerant to flow towards the flow openings 45 formed in the circumferential wall 30 of the fixed scroll 1.
(34) The fixed scroll 1 may be provided to include the same number of the pillar portions 50 as there are axially extending threaded fasteners 18 used to maintain the axial position of the fixed scroll 1 between the first housing portion 3 and the second housing portion 4. For example, the embodiment illustrated in
(35) The scroll compressor 10 operates as follows. The refrigerant enters the scroll compressor 10 and eventually flow axially through the refrigerant communication passages 7 towards the flow chambers 15 disposed radially outwardly of the fixed scroll 1. As best shown in
(36) The use of the fixed scroll 1 having the axially extending flow openings 45 provides numerous advantages over the fixed scrolls of the prior art. The elimination of the formation of sharp radially extending bores through a circumferential wall of a fixed scroll prevents an undesirable sharp change in direction of the refrigerant during entry into the compression chambers of the corresponding fixed scroll. The use of flow openings 45 beginning at an axial end face 22 of the fixed scroll 1 also greatly enlarges the total flow area into the interior of the fixed scroll 1 for preventing an undesired flow restriction in the refrigerant while also providing for an enlarged axial distance for the refrigerant to more gradually turn from the axial direction to the radial direction of the fixed scroll 1. These advantages lead to an improved performance of the scroll compressor 10 due to the refrigerant having an increased flow rate as well as an increased pressure when entering the compression chambers 35 formed between the scrolls 1, 70.
(37) It should be apparent to one skilled in the art that various features of the fixed scroll 1 as well as the remainder of the corresponding scroll compressor 10 may be slightly modified from the embodiment disclosed throughout
(38) The axially extending couplers 68 may also be replaced with radially extending couplers penetrating the outer portion 13 of the second housing portion 4 as well as a portion of the outer circumferential surface of the fixed scroll 1 as formed by the pillar portions 50 and the reinforcing walls 52. Lastly, the fixed scroll 1 may be installed and maintained in position between the first housing portion 3 and the second housing portion 4 without the use of the couplers, such as by forming cooperating grooves and projections between the outer circumferential surface of the fixed scroll 1 and the inner surface of the outer portion 13 of the second housing portion 4. For example, a plurality of interlocking splines may be formed on the aforementioned surfaces in a manner locating the position of the fixed scroll 1 in the scroll compressor 10 while preventing undesired translation or rotation thereof relative to the second housing portion 4. One skilled in the art will appreciate that alternative methods and structures for affixing the position of the fixed scroll 1 within the scroll compressor 10 may also be utilized while appreciating the above described advantages of the enlarged and smoothly formed flow openings 45 into the interior of the fixed scroll 1.
(39) Referring now to
(40) The fixed scroll 101 may be utilized in circumstances wherein the flow rate through the corresponding scroll compressor is desired to be maximized while the axial loads applied to the fixed scroll 101 are not great enough to cause a buckling or other deformation of the lengthened pillar portions 150 of the fixed scroll 101. The fixed scroll 101 may be installed into the corresponding scroll compressor utilizing any of the methods and structures disclosed herein. The fixed scroll 101 also operates in identical fashion to the fixed scroll 1 with the exception of the reduced flow restriction through the fixed scroll 101 in comparison to the fixed scroll 1.
(41) From the foregoing description, one ordinarily skilled in the art can easily ascertain the essential characteristics of this invention and, without departing from the spirit and scope thereof, can make various changes and modifications to the invention to adapt it to various usages and conditions.