US20170211390A1 - Scroll type fluid machine - Google Patents
Scroll type fluid machine Download PDFInfo
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- US20170211390A1 US20170211390A1 US15/328,333 US201515328333A US2017211390A1 US 20170211390 A1 US20170211390 A1 US 20170211390A1 US 201515328333 A US201515328333 A US 201515328333A US 2017211390 A1 US2017211390 A1 US 2017211390A1
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- Prior art keywords
- shell
- scroll
- bolt
- screw hole
- side end
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- Abandoned
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C18/00—Rotary-piston pumps specially adapted for elastic fluids
- F04C18/02—Rotary-piston pumps specially adapted for elastic fluids of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents
- F04C18/0207—Rotary-piston pumps specially adapted for elastic fluids of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents both members having co-operating elements in spiral form
- F04C18/0246—Details concerning the involute wraps or their base, e.g. geometry
- F04C18/0253—Details concerning the base
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01C—ROTARY-PISTON OR OSCILLATING-PISTON MACHINES OR ENGINES
- F01C21/00—Component parts, details or accessories not provided for in groups F01C1/00 - F01C20/00
- F01C21/007—General arrangements of parts; Frames and supporting elements
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01C—ROTARY-PISTON OR OSCILLATING-PISTON MACHINES OR ENGINES
- F01C1/00—Rotary-piston machines or engines
- F01C1/02—Rotary-piston machines or engines of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents
- F01C1/0207—Rotary-piston machines or engines of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents both members having co-operating elements in spiral form
- F01C1/0215—Rotary-piston machines or engines of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents both members having co-operating elements in spiral form where only one member is moving
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01C—ROTARY-PISTON OR OSCILLATING-PISTON MACHINES OR ENGINES
- F01C21/00—Component parts, details or accessories not provided for in groups F01C1/00 - F01C20/00
- F01C21/10—Outer members for co-operation with rotary pistons; Casings
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C18/00—Rotary-piston pumps specially adapted for elastic fluids
- F04C18/02—Rotary-piston pumps specially adapted for elastic fluids of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents
- F04C18/0207—Rotary-piston pumps specially adapted for elastic fluids of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents both members having co-operating elements in spiral form
- F04C18/0215—Rotary-piston pumps specially adapted for elastic fluids of arcuate-engagement type, i.e. with circular translatory movement of co-operating members, each member having the same number of teeth or tooth-equivalents both members having co-operating elements in spiral form where only one member is moving
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C2230/00—Manufacture
- F04C2230/60—Assembly methods
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C2240/00—Components
- F04C2240/30—Casings or housings
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C2240/00—Components
- F04C2240/80—Other components
- F04C2240/805—Fastening means, e.g. bolts
Definitions
- the present invention relates to a scroll type fluid machine equipped with an orbiting scroll and a fixed scroll, and more particularly to the fixing structure used for processing a shell-integrated fixed scroll having a shell integrated with the fixed scroll.
- a scroll type compressor as disclosed in Patent Document 1 has been known as the scroll type fluid machine.
- Such scroll type compressor includes a fixed scroll and an orbiting scroll, which are arranged opposite each other in the axial direction so as to engage together their own volute scroll wraps that are erected on respective end plates.
- the compressor revolves the orbiting scroll around the center axis of the fixed scroll to thereby compress a fluid introduced into a gap between the fixed and orbiting scrolls and discharge the compressed fluid.
- the fixed scroll has a cylindrical shell integrated with the end plate to constitute a shell-integrated fixed scroll. In this case, the shell extends from the outer periphery of the end plate in the center axis direction.
- the shell-integrated fixed scroll of this type is roughly produced by, for example, molding, forging, etc. and then partially subjected to intermediate or finish processing such as cutting or grinding (hereinafter referred to as “finish processing, etc.”) with a view to enhancing its dimensional precision.
- Patent Document 1 JP 2002-13486 A
- the shell may possibly deform because there is no supporting structure for maintaining the space between the shell and the scroll wrap. On this account, there is a fear that the shell-integrated fixed scroll cannot maintain appropriate dimensional precision and the productivity of the scroll type fluid machine is lowered.
- end surfaces of the shell and scroll wraps, etc. have to undergo the finish processing, etc. in order to satisfy requirements for dimensional precision.
- the present invention has been accomplished in view of some of the above problems and it is accordingly an object of the present invention to provide a scroll type fluid machine that improves the fixing structure for a shell-integrated fixed scroll upon finish processing, etc. to hereby enhance its productivity.
- the present invention provides a scroll type fluid machine comprising an orbiting scroll and a fixed scroll
- the fixed scroll comprises: a volute scroll wrap that is erected on an end plate; a cylindrical shell that is integrated with the end plate and has a proximal end entirely connected with an outer periphery of the end plate and a leading end extending in the direction in which the scroll wrap is erected; and a thick portion formed by partially increasing the thickness of a wall of the shell from a proximal-end-side end surface of the shell to a leading-end-side end surface of the shell so that in the thick wall of the shell, a screw hole for a first bolt for fastening a first housing to the proximal-end-side end surface extends from the proximal-end-side end surface toward the leading-end-side end surface, and a screw hole for a second bolt for fastening a second housing to the leading-end-side end surface extends from the leading-end-side end surface toward
- the shell-integrated fixed scroll can be fixed while being applied with a load in the axial direction. This contributes to improvements in fixing structure for the shell-integrated fixed scroll upon finish processing, etc. so as to easily maintain appropriate dimensional precision of the shell-integrated fixed scroll and enhance its productivity.
- FIG. 1 is a cross-sectional view of the overall configuration of a scroll type compressor.
- FIG. 2 is a perspective view of the shell-integrated fixed scroll on its opening side.
- FIG. 3 is a perspective view of the shell-integrated fixed scroll on its bottom plate side.
- FIG. 4 is a partial cross-sectional view of another example of a notch in a thick portion.
- FIG. 5 is an explanatory view illustrating how to fix the shell-integrated fixed scroll.
- FIG. 6 is a partial cross-sectional view of another example of a screw hole.
- a scroll type fluid machine of the present invention can be used as a compressor or expander.
- the compressor is described by way of example.
- FIGS. 1 to 3 show an example of the scroll type compressor according to an embodiment of the present invention.
- a scroll type compressor 10 includes a fixed scroll 12 and an orbiting scroll 14 , which are arranged opposite each other in the center axis direction.
- the fixed scroll 12 includes a volute scroll wrap 12 b integrally erected on an end plate 12 a .
- the orbiting scroll 14 includes a volute scroll wrap 14 b integrally erected on an end plate 14 a.
- the fixed scroll 12 and the orbiting scroll 14 are arranged as follows: the scroll wraps 12 b and 14 b are engaged together in the axial direction so that protruding ends of the scroll wraps 12 b and 14 b could come into contact with the end plates 14 a and 12 a , respectively.
- a chipseal (not shown) is embedded at the protruding end of the scroll wrap 12 b , 14 b.
- the fixed scroll 12 and the orbiting scroll 14 are disposed so that side walls of the scroll wraps 12 b and 14 b partially contact with each other.
- a crescentic fluid pocket 16 is formed as sealed space between the two scroll wraps 12 b and 14 b as viewed in the axial direction.
- the orbiting scroll 14 revolves around the center axis of the fixed scroll 12 by means of a driving mechanism 18 and also an anti-rotation mechanism 20 inhibits its rotation as below.
- a fluid e.g., refrigerant gas taken into the fluid pocket 16 from the outer edge side of the scroll wrap 12 b , 14 b is compressed.
- the fluid pocket 16 conversely moves from the center portion of the scroll wrap 12 b , 14 b to the outer edge.
- the volume of the fluid pocket 16 gradually increases and a fluid taken into the fluid pocket 16 from the center portion of the scroll wrap 12 b , 14 b is expanded.
- a housing for the scroll type compressor 10 is composed of a center housing 22 that integrally includes the fixed scroll 12 , a rear housing (first housing) 24 disposed on the back of the end plate 12 a at which the scroll wrap 12 b of the fixed scroll 12 does not protrude, and a front housing (second housing) 26 disposed on the front of the end plate 12 a at which the scroll wrap 12 b of the fixed scroll 12 protrudes.
- the center housing 22 is a cylindrical casing (shell), the proximal end of which is entirely connected with the outer periphery of the end plate 12 a of the fixed scroll 12 and the leading end of which extends in the direction in which the scroll wrap 12 b is erected.
- the center housing is integrated with the fixed scroll 12 to constitute a shell-integrated fixed scroll 28 .
- the shell-integrated fixed scroll 28 has such structure that an opening on the rear housing 24 side, out of two openings of the cylindrical center housing 22 , is closed by the end plate 12 a of the fixed scroll 12 , and the other opening on the front housing 26 side is opened.
- the shell-integrated fixed scroll 28 has a bottomed cylindrical shape with the end plate 12 a serving as the bottom plate thereof.
- the rear housing 24 is fastened by use of plural bolts 30 (first bolts) to a proximal-end-side end surface 22 a of the center housing 22 .
- a discharge chamber 32 is defined between the rear housing and the end plate 12 a .
- the end plate 12 a has an outlet 34 at its center so as to introduce the fluid in the fluid pocket 16 , compressed by revolutions of the orbiting scroll 14 , toward the discharge chamber 32 .
- a one-way valve 36 is provided to avoid backflow.
- the outer wall of the rear housing 24 has a discharge port (not shown) through which the fluid flows from the discharge chamber 32 to the outside.
- the front housing 26 is fastened by use of plural bolts 40 (second bolts) to a leading-end-side end surface 22 b of the center housing 22 .
- the front housing 26 includes an accommodating space 42 that accommodates the driving mechanism 18 for the orbiting scroll 14 .
- a bearing 46 for axially supporting a drive shaft 44 of the driving mechanism 18
- a shaft seal 48 is provided at one end of the accommodating space 42 .
- a thrust receiving unit 52 for supporting the orbiting scroll 14 in the thrust direction by means of an annular thrust plate 50 .
- a fluid intake chamber 54 is formed in the front housing 26 , being spaced away from the accommodating space 42 by the orbiting scroll 14 and the thrust plate 50 . The fluid is taken into the fluid intake chamber 54 from the outside through an intake port (not shown) at the outer wall of the front housing 26 .
- a bulging portion 58 is formed in the front housing 26 and the center housing 22 partially in the circumferential direction.
- a fluid passage space 60 is formed inside the bulging portion 58 . The space extends in parallel with the center axis of the compressor and guides the fluid from the intake chamber 54 on the front housing 26 side to around the outer edge of the scroll wrap 12 b , 14 b on the center housing 22 side.
- the fluid is introduced into the intake chamber 54 inside the front housing 26 form the intake port of the front housing 26 and then passes through the fluid passage space 60 inside the bulging portion 58 of the front housing 26 and center housing 22 . After that, the fluid is taken into the above fluid pocket 16 from the outer edge side of the scroll wrap 12 b , 14 b and then compressed. The compressed fluid is discharged to the discharge chamber 32 inside the rear housing 24 from the outlet 34 formed at the center of the end plate 12 a of the fixed scroll 12 . Then, the fluid is sent out to the outside from the discharge chamber 32 through the discharge port.
- the driving mechanism 18 installed in the accommodating space 42 of the front housing 26 is configured such that a crank mechanism is provided on the drive shaft 44 rotated with externally applied rotational driving force, and the driving mechanism is connected to the orbiting scroll 14 by means of the crank mechanism.
- the drive shaft 44 is axially supported in a rotatable manner by the bearing 46 at one end of the accommodating space 42 .
- One end of the drive shaft 44 protrudes outward from the front housing 26 , and a pulley 64 is attached there through an electromagnetic clutch 62 .
- the crank mechanism disposed on the other side of the drive shaft 44 is composed of a crank 68 axially supported to the inner peripheral wall of the accommodating space 42 by means of the bearing 66 , and an eccentric bushing 70 attached to the crank 68 eccentrically to the center axis of the drive shaft 44 .
- the eccentric bushing 70 is fitted into a cylindrical boss 72 that protrudes from the back of the end plate 14 a of the orbiting scroll 14 by means of a bearing 74 .
- components including from the drive shaft 44 to the eccentric bushing 70 are collectively referred to as the driving mechanism 18 for ease of illustration.
- the anti-rotation mechanism 20 of the orbiting scroll 14 includes: a circular hole 76 formed on the back of the end plate 14 a of the orbiting scroll 14 (opposite to the thrust receiving unit 52 of the front housing 26 ); a pin 78 that protrudes on the thrust receiving unit 52 side of the front housing 26 and penetrates through the thrust plate 50 ; and a disk plate 82 having an eccentric hole 80 and accommodated in the circular hole 76 with some space.
- the pin 78 is fitted into the eccentric hole 80 of the disk plate 82 with some space. Fitting the pin 78 into the eccentric hole 80 inhibits the orbiting scroll 14 from rotating.
- the orbiting scroll 14 revolves along with the rotation of the drive shaft 44 by means of the crank mechanism, the anti-rotation mechanism 20 inhibits the orbiting scroll 14 from rotating, and the orbiting scroll 14 revolves around the center axis of the fixed scroll 12 .
- FIGS. 2 and 3 show the shell-integrated fixed scroll 28 .
- the shell-integrated fixed scroll 28 includes a thick portion 84 corresponding to a part of the wall of the center housing 22 , which is formed with large thickness from the proximal-end-side end surface 22 a to the leading-end-side end surface 22 b .
- screw holes 22 c for the bolts 30 that fasten the rear housing 24 to the proximal-end-side end surface 22 a of the center housing 22 extend from the proximal-end-side end surface 22 a toward the leading-end-side end surface 22 b .
- screw holes 22 d for the bolts 40 that fasten the front housing 26 to the leading-end-side end surface 22 b of the center housing 22 extend from the leading-end-side end surface 22 b toward the proximal-end-side end surface 22 a .
- each screw hole 22 c for the bolt 30 and each screw hole 22 d for the bolt 40 are paired in the axial direction at substantially the same positions in the circumferential direction.
- the thickness t of the wall of the center housing 22 except the thick portion 84 is reduced to the minimum value that allows a certain strength when the shell-integrated fixed scroll 28 is produced by, for example, forging, not molding, in order to achieve the lightweight shell-integrated fixed scroll 28 with requisite strength.
- the thickness t allows little space for forming the screw holes 22 c and 22 d of the bolts 40 and 30 , respectively.
- the center housing 22 has the thick portion 84 so as to form the screw holes 22 c and 22 d of the bolts 40 and 30 , respectively.
- a portion between the proximal-end-side end surface 22 a and the leading-end-side end surface 22 b is partially cut away by a turning process, etc. in the circumferential direction of the center housing 22 .
- the thus-formed notch divides the thick portion 84 into two: a first thick portion 84 a where the screw holes 22 c for the bolts 30 are formed and a second thick portion 84 b where the screw holes 22 d for the bolts 40 are formed.
- Opposing surfaces 86 are formed opposite each other in the substantially axial direction, between the first thick portion 84 a and the second thick portion 84 b .
- first opposing surface 86 a and a second opposing surface 86 b surfaces on the first thick portion 84 a side and the second thick portion 84 b side are referred to as a first opposing surface 86 a and a second opposing surface 86 b , respectively.
- the screw hole 22 d for the bolt 40 is visible at the opposing surface 86 formed by cutting away, whereas the screw hole 22 c for the bolt 30 is invisible. As shown in FIG. 4 , however, both the screw holes 22 c and 22 d may be visible. The following structure is also applicable. That is, the screw hole 22 c for the bolt 30 is visible at the opposing surface 86 formed by cutting away, whereas the screw hole 22 d for the bolt 40 is invisible. Alternatively, both the screw holes 22 c and 22 d may be invisible.
- the preferable notch depth in the thick portion 84 in the direction toward the inside of the center housing 22 is up to the outer periphery of the center housing 22 without figuring in the thick portion 84 . This is to reduce the risk of lowering the strength of the shell-integrated fixed scroll 28 in the case of reducing the initial wall thickness of the center housing 22 .
- an independent thick portion 88 is formed aside from the thick portion 84 so that it extends from the proximal-end-side end surface 22 a toward the leading-end-side end surface 22 b , in order to form the screw holes 22 c for the bolts 30 in excess of the bolts 40 , in the wall of the center housing 22 .
- the independent thick portion 88 may be cut away in the circumferential direction of the center housing 22 by a turning process, etc. like the notch in the above thick portion 84 so as to form a step 88 a in the axial direction.
- proximal-end-side end surface 22 a of the center housing 22 may have at least two concave portions 22 e , which are far enough away from each other and able to fit with convex portions of a work table 92 upon the finish processing, etc. for the shell-integrated fixed scroll 28 as described below.
- the finish processing, etc. of the shell-integrated fixed scroll 28 is carried out as below. That is, after the shell-integrated fixed scroll 28 has been roughly formed through molding or forging with two movable and fixed metal molds, the finish processing, etc. are executed through cutting and grinding so as to enhance the dimensional precision of the scroll wrap 12 b , etc. Upon the finish processing, etc. of the shell-integrated fixed scroll 28 , the shell-integrated fixed scroll 28 is stably fixed to ensure a certain level of processing precision.
- the shell-integrated fixed scroll 28 is fixed by firmly holding the center housing 22 in the horizontal direction.
- the center housing 22 may possibly deform.
- a locking member 90 is locked to the first opposing surface 86 a to apply a load in the axial direction to the shell-integrated fixed scroll 28 through it.
- the first opposing surface 86 a is used as a so-called operating point, whereby the shell-integrated fixed scroll 28 can be fixed in the axial direction.
- the shell-integrated fixed scroll 28 is placed on the work table 92 with the proximal-end-side end surface 22 a of the center housing 22 facing toward a mounting surface 92 a of the work table 92 .
- the shell-integrated fixed scroll 28 can be placed on the work table 92 by, for example, fitting convex portions (not shown) preformed on the work table 92 to the concave portions 22 e formed at the proximal-end-side end surface 22 a of the center housing 22 or other positioning methods so as not to displace the shell-integrated fixed scroll 28 on the work table 92 in the direction parallel with the mounting surface 92 a.
- the locking member 90 is a rigid member having, for example, an L shape or other such shape capable of locking one end 90 a to the first opposing surface 86 a .
- the one end 90 a of the locking member 90 may be shaped with a smaller contact area to increase the vertical gradient upon contact with the first opposing surface 86 a and may be formed of a material having relatively high coefficient of friction, which is used for a portion that comes into contact with the first opposing surface 86 a .
- the one end 90 a can be prepared in various known shapes or with various known materials insofar as the frictional force with the first opposing surface 86 a can be increased.
- An adjustment bolt 94 is screwed to the other end 90 b of the locking member 90 .
- the adjustment bolt is inserted into a through hole 92 c of the work table 92 from an opposing surface 92 b to the mounting surface 92 a .
- a head portion 94 a of the adjustment bolt 94 has larger diameter than the through hole 92 c of the work table 92 .
- the locking member 90 can have any other structure insofar as a load toward the work table 92 can be applied to the first opposing surface 86 a of the shell-integrated fixed scroll 28 placed on the work table 92 .
- the shell-integrated fixed scroll 28 is fixed with the locking member 90 to the work table 92 by locking the one end 90 a to the first opposing surface 86 a and adjusting the degree of tightening the adjustment bolt 94 screwed to the other end 90 b .
- the head portion 94 a of the adjustment bolt 94 presses the opposing surface 92 b of the work table 92
- the one end 90 a of the locking member 90 presses the first opposing surface 86 a to apply a load to the shell-integrated fixed scroll 28 in the axial direction.
- the shell-integrated fixed scroll 28 is pressed against the work table 92 and thus fixed thereto.
- the independent thick portion 88 has the step 88 a in the axial direction as above, the locking member 90 may be locked to the step 88 a to apply a load to the shell-integrated fixed scroll 28 in the axial direction.
- the shell-integrated fixed scroll 28 is placed with the unfinished leading-end-side end surface 22 b of the center housing 22 facing toward the mounting surface 92 a of the work table 92 , after which the shell-integrated fixed scroll 28 can be fixed in the same way as the case of performing finish processing, etc. from the opening side of the center housing 22 out of the shell-integrated fixed scroll 28 .
- the shell-integrated fixed scroll 28 can be also fixed to the work table 92 with the locking member 90 by locking the one end 90 a of the locking member 90 to the second opposing surface 86 b and adjusting the degree of tightening the adjustment bolt 94 screwed to the other end 90 b.
- the thick portion 84 has the screw holes for the bolts 30 and 40 , which are paired in the axial direction at substantially the same positions in the circumferential direction; the thick portion 84 extends from the proximal-end-side end surface 22 a to the leading-end-side end surface 22 b .
- a portion between the proximal-end-side end surface 22 a and the leading-end-side end surface 22 b is partially cut away in the circumferential direction of the center housing 22 to form the opposing surfaces 86 facing each other in the axial direction.
- the locking member 90 is locked to each opposing surface 86 and a load is applied to the shell-integrated fixed scroll 28 by means of the locking member 90 in the axial direction so as to fix the shell-integrated fixed scroll 28 in the axial direction.
- This improves the fixing structure for the shell-integrated fixed scroll 28 upon the finish processing, etc., whereby the shell-integrated fixed scroll 28 can maintain appropriate dimensional precision and enhance its productivity.
- the thick portion 84 for forming the screw holes for the bolts 40 and 30 is cut away in the circumferential direction to thereby form the opposing surfaces 86 facing each other in the axial direction.
- the shell-integrated fixed scroll 28 can be fixed in the axial direction without the fear of lowering the strength of the shell-integrated fixed scroll 28 when cutting away the wall of the center housing 22 .
- the screw hole 22 c of the first thick portion 84 a and the screw hole 22 b of the second thick portion 84 d can overlap with each other in the axial direction.
- the screw holes for the bolts 30 and 40 are the same in terms of the screwing direction, diameter, pitch, etc., a single type of bolts (bolts 40 ) can fasten the front housing 26 , the center housing 22 , and the rear housing 24 together, whereby the number of components can be reduced.
- the scroll type compressor 10 of the above embodiment is only an application of the present invention.
- the present invention is applicable to any other scroll type compressors.
- the present invention is applicable to all scroll type fluid machines inclusive of a scroll type expander as well as the scroll type compressor as set forth above.
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- General Engineering & Computer Science (AREA)
- Rotary Pumps (AREA)
- Applications Or Details Of Rotary Compressors (AREA)
Abstract
A shell-integrated fixed scroll includes a cylindrical shell that is integrated with an end plate on which a scroll wrap is erected, and has a proximal end entirely connected with an outer periphery of the end plate and a leading end extending in the axial direction. The wall of the shell partially forms a thick portion having a large thickness from a proximal-end-side end (first) surface to a leading-end-side end (second) surface. In the thick portion, a screw hole for a bolt for fastening a rear housing to the first surface extends from the first surface toward the second surface. A screw hole for a bolt for fastening a front housing to the second surface extends from the second surface toward the first surface. The thick portion is partially cut away in the circumferential direction between the two surfaces to form opposing surfaces facing each other in the axial direction.
Description
- The present invention relates to a scroll type fluid machine equipped with an orbiting scroll and a fixed scroll, and more particularly to the fixing structure used for processing a shell-integrated fixed scroll having a shell integrated with the fixed scroll.
- A scroll type compressor as disclosed in Patent Document 1 has been known as the scroll type fluid machine. Such scroll type compressor includes a fixed scroll and an orbiting scroll, which are arranged opposite each other in the axial direction so as to engage together their own volute scroll wraps that are erected on respective end plates. The compressor revolves the orbiting scroll around the center axis of the fixed scroll to thereby compress a fluid introduced into a gap between the fixed and orbiting scrolls and discharge the compressed fluid. Of these, the fixed scroll has a cylindrical shell integrated with the end plate to constitute a shell-integrated fixed scroll. In this case, the shell extends from the outer periphery of the end plate in the center axis direction. The shell-integrated fixed scroll of this type is roughly produced by, for example, molding, forging, etc. and then partially subjected to intermediate or finish processing such as cutting or grinding (hereinafter referred to as “finish processing, etc.”) with a view to enhancing its dimensional precision.
- If the cylindrical shell is firmly held in the horizontal direction in order to fix the shell-integrated fixed scroll upon the finish processing, etc., the shell may possibly deform because there is no supporting structure for maintaining the space between the shell and the scroll wrap. On this account, there is a fear that the shell-integrated fixed scroll cannot maintain appropriate dimensional precision and the productivity of the scroll type fluid machine is lowered.
- Moreover, end surfaces of the shell and scroll wraps, etc. have to undergo the finish processing, etc. in order to satisfy requirements for dimensional precision. Thus, it is not desirable to firmly hold and fix the shell-integrated fixed scroll in the axial direction at these end surfaces, etc.
- The present invention has been accomplished in view of some of the above problems and it is accordingly an object of the present invention to provide a scroll type fluid machine that improves the fixing structure for a shell-integrated fixed scroll upon finish processing, etc. to hereby enhance its productivity.
- In order to achieve the above object, the present invention provides a scroll type fluid machine comprising an orbiting scroll and a fixed scroll, in which the fixed scroll comprises: a volute scroll wrap that is erected on an end plate; a cylindrical shell that is integrated with the end plate and has a proximal end entirely connected with an outer periphery of the end plate and a leading end extending in the direction in which the scroll wrap is erected; and a thick portion formed by partially increasing the thickness of a wall of the shell from a proximal-end-side end surface of the shell to a leading-end-side end surface of the shell so that in the thick wall of the shell, a screw hole for a first bolt for fastening a first housing to the proximal-end-side end surface extends from the proximal-end-side end surface toward the leading-end-side end surface, and a screw hole for a second bolt for fastening a second housing to the leading-end-side end surface extends from the leading-end-side end surface toward the proximal-end-side end surface, wherein the thick portion is partially cut away in a circumferential direction of the shell between the proximal-end-side end surface and the leading-end-side end surface to form opposing surfaces facing each other in the axial direction.
- According to the scroll type fluid machine of the present invention, the shell-integrated fixed scroll can be fixed while being applied with a load in the axial direction. This contributes to improvements in fixing structure for the shell-integrated fixed scroll upon finish processing, etc. so as to easily maintain appropriate dimensional precision of the shell-integrated fixed scroll and enhance its productivity.
-
FIG. 1 is a cross-sectional view of the overall configuration of a scroll type compressor. -
FIG. 2 is a perspective view of the shell-integrated fixed scroll on its opening side. -
FIG. 3 is a perspective view of the shell-integrated fixed scroll on its bottom plate side. -
FIG. 4 is a partial cross-sectional view of another example of a notch in a thick portion. -
FIG. 5 is an explanatory view illustrating how to fix the shell-integrated fixed scroll. -
FIG. 6 is a partial cross-sectional view of another example of a screw hole. - Hereinafter, embodiments of the present invention for carrying out the invention will be described in detail with reference to the accompanying drawings. Note that a scroll type fluid machine of the present invention can be used as a compressor or expander. In the following, the compressor is described by way of example.
-
FIGS. 1 to 3 show an example of the scroll type compressor according to an embodiment of the present invention. Ascroll type compressor 10 includes afixed scroll 12 and anorbiting scroll 14, which are arranged opposite each other in the center axis direction. Thefixed scroll 12 includes avolute scroll wrap 12 b integrally erected on anend plate 12 a. Likewise, theorbiting scroll 14 includes avolute scroll wrap 14 b integrally erected on anend plate 14 a. - The
fixed scroll 12 and the orbitingscroll 14 are arranged as follows: thescroll wraps scroll wraps end plates scroll wrap - Furthermore, the
fixed scroll 12 and theorbiting scroll 14 are disposed so that side walls of thescroll wraps crescentic fluid pocket 16 is formed as sealed space between the twoscroll wraps - The orbiting
scroll 14 revolves around the center axis of thefixed scroll 12 by means of adriving mechanism 18 and also ananti-rotation mechanism 20 inhibits its rotation as below. As thefluid pocket 16 defined between the twoscroll wraps scroll wrap fluid pocket 16 gradually reduces. Accordingly, a fluid (e.g., refrigerant gas) taken into thefluid pocket 16 from the outer edge side of thescroll wrap - As for an expander, the
fluid pocket 16 conversely moves from the center portion of thescroll wrap fluid pocket 16 gradually increases and a fluid taken into thefluid pocket 16 from the center portion of thescroll wrap - A housing for the
scroll type compressor 10 is composed of acenter housing 22 that integrally includes thefixed scroll 12, a rear housing (first housing) 24 disposed on the back of theend plate 12 a at which thescroll wrap 12 b of thefixed scroll 12 does not protrude, and a front housing (second housing) 26 disposed on the front of theend plate 12 a at which thescroll wrap 12 b of thefixed scroll 12 protrudes. - The
center housing 22 is a cylindrical casing (shell), the proximal end of which is entirely connected with the outer periphery of theend plate 12 a of thefixed scroll 12 and the leading end of which extends in the direction in which thescroll wrap 12 b is erected. The center housing is integrated with thefixed scroll 12 to constitute a shell-integratedfixed scroll 28. In other words, the shell-integratedfixed scroll 28 has such structure that an opening on therear housing 24 side, out of two openings of thecylindrical center housing 22, is closed by theend plate 12 a of thefixed scroll 12, and the other opening on thefront housing 26 side is opened. In this way, the shell-integratedfixed scroll 28 has a bottomed cylindrical shape with theend plate 12 a serving as the bottom plate thereof. - The
rear housing 24 is fastened by use of plural bolts 30 (first bolts) to a proximal-end-side end surface 22 a of thecenter housing 22. Adischarge chamber 32 is defined between the rear housing and theend plate 12 a. Theend plate 12 a has anoutlet 34 at its center so as to introduce the fluid in thefluid pocket 16, compressed by revolutions of theorbiting scroll 14, toward thedischarge chamber 32. At the exit of theoutlet 34, a one-way valve 36 is provided to avoid backflow. In addition, the outer wall of therear housing 24 has a discharge port (not shown) through which the fluid flows from thedischarge chamber 32 to the outside. - The
front housing 26 is fastened by use of plural bolts 40 (second bolts) to a leading-end-side end surface 22 b of thecenter housing 22. Thefront housing 26 includes anaccommodating space 42 that accommodates thedriving mechanism 18 for theorbiting scroll 14. Provided at one end of theaccommodating space 42 are abearing 46 for axially supporting adrive shaft 44 of thedriving mechanism 18, and ashaft seal 48. Provided at the other end of theaccommodating space 42 is athrust receiving unit 52 for supporting the orbitingscroll 14 in the thrust direction by means of anannular thrust plate 50. Furthermore, afluid intake chamber 54 is formed in thefront housing 26, being spaced away from theaccommodating space 42 by theorbiting scroll 14 and thethrust plate 50. The fluid is taken into thefluid intake chamber 54 from the outside through an intake port (not shown) at the outer wall of thefront housing 26. - A bulging
portion 58 is formed in thefront housing 26 and thecenter housing 22 partially in the circumferential direction. Afluid passage space 60 is formed inside the bulgingportion 58. The space extends in parallel with the center axis of the compressor and guides the fluid from theintake chamber 54 on thefront housing 26 side to around the outer edge of thescroll wrap center housing 22 side. - The fluid is introduced into the
intake chamber 54 inside thefront housing 26 form the intake port of thefront housing 26 and then passes through thefluid passage space 60 inside the bulgingportion 58 of thefront housing 26 andcenter housing 22. After that, the fluid is taken into theabove fluid pocket 16 from the outer edge side of thescroll wrap discharge chamber 32 inside therear housing 24 from theoutlet 34 formed at the center of theend plate 12 a of the fixedscroll 12. Then, the fluid is sent out to the outside from thedischarge chamber 32 through the discharge port. - As disclosed in, for example, JP 2012-237288 A, the
driving mechanism 18 installed in theaccommodating space 42 of thefront housing 26 is configured such that a crank mechanism is provided on thedrive shaft 44 rotated with externally applied rotational driving force, and the driving mechanism is connected to theorbiting scroll 14 by means of the crank mechanism. - In the
driving mechanism 18, thedrive shaft 44 is axially supported in a rotatable manner by the bearing 46 at one end of theaccommodating space 42. One end of thedrive shaft 44 protrudes outward from thefront housing 26, and apulley 64 is attached there through anelectromagnetic clutch 62. With this arrangement, thedrive shaft 44 is rotated with the rotational driving force transmitted from thepulley 64 through theelectromagnetic clutch 62. The crank mechanism disposed on the other side of thedrive shaft 44 is composed of acrank 68 axially supported to the inner peripheral wall of theaccommodating space 42 by means of thebearing 66, and aneccentric bushing 70 attached to the crank 68 eccentrically to the center axis of thedrive shaft 44. Theeccentric bushing 70 is fitted into acylindrical boss 72 that protrudes from the back of theend plate 14 a of the orbitingscroll 14 by means of abearing 74. InFIG. 1 , components including from thedrive shaft 44 to theeccentric bushing 70 are collectively referred to as thedriving mechanism 18 for ease of illustration. - The
anti-rotation mechanism 20 of the orbitingscroll 14 includes: acircular hole 76 formed on the back of theend plate 14 a of the orbiting scroll 14 (opposite to thethrust receiving unit 52 of the front housing 26); apin 78 that protrudes on thethrust receiving unit 52 side of thefront housing 26 and penetrates through thethrust plate 50; and adisk plate 82 having aneccentric hole 80 and accommodated in thecircular hole 76 with some space. Thepin 78 is fitted into theeccentric hole 80 of thedisk plate 82 with some space. Fitting thepin 78 into theeccentric hole 80 inhibits the orbitingscroll 14 from rotating. - Thus, the orbiting
scroll 14 revolves along with the rotation of thedrive shaft 44 by means of the crank mechanism, theanti-rotation mechanism 20 inhibits the orbitingscroll 14 from rotating, and the orbitingscroll 14 revolves around the center axis of the fixedscroll 12. - Referring to
FIGS. 2 and 3 as well asFIG. 1 , the configuration of the shell-integratedfixed scroll 28 is detailed below.FIGS. 2 and 3 show the shell-integratedfixed scroll 28. - The shell-integrated
fixed scroll 28 includes athick portion 84 corresponding to a part of the wall of thecenter housing 22, which is formed with large thickness from the proximal-end-side end surface 22 a to the leading-end-side end surface 22 b. Inside the wall of thethick portion 84, screw holes 22 c for thebolts 30 that fasten therear housing 24 to the proximal-end-side end surface 22 a of thecenter housing 22 extend from the proximal-end-side end surface 22 a toward the leading-end-side end surface 22 b. Moreover, screw holes 22 d for thebolts 40 that fasten thefront housing 26 to the leading-end-side end surface 22 b of thecenter housing 22 extend from the leading-end-side end surface 22 b toward the proximal-end-side end surface 22 a. In other words, in thethick portion 84, eachscrew hole 22 c for thebolt 30 and eachscrew hole 22 d for thebolt 40 are paired in the axial direction at substantially the same positions in the circumferential direction. - The thickness t of the wall of the
center housing 22 except thethick portion 84 is reduced to the minimum value that allows a certain strength when the shell-integratedfixed scroll 28 is produced by, for example, forging, not molding, in order to achieve the lightweight shell-integratedfixed scroll 28 with requisite strength. Thus, the thickness t allows little space for forming the screw holes 22 c and 22 d of thebolts center housing 22 has thethick portion 84 so as to form the screw holes 22 c and 22 d of thebolts - Out of the
thick portion 84, a portion between the proximal-end-side end surface 22 a and the leading-end-side end surface 22 b is partially cut away by a turning process, etc. in the circumferential direction of thecenter housing 22. The thus-formed notch divides thethick portion 84 into two: a firstthick portion 84 a where the screw holes 22 c for thebolts 30 are formed and a secondthick portion 84 b where the screw holes 22 d for thebolts 40 are formed. Opposingsurfaces 86 are formed opposite each other in the substantially axial direction, between the firstthick portion 84 a and the secondthick portion 84 b. In the following description, out of the opposingsurfaces 86, surfaces on the firstthick portion 84 a side and the secondthick portion 84 b side are referred to as a first opposingsurface 86 a and a second opposingsurface 86 b, respectively. - In
FIG. 1 , thescrew hole 22 d for thebolt 40 is visible at the opposingsurface 86 formed by cutting away, whereas thescrew hole 22 c for thebolt 30 is invisible. As shown inFIG. 4 , however, both the screw holes 22 c and 22 d may be visible. The following structure is also applicable. That is, thescrew hole 22 c for thebolt 30 is visible at the opposingsurface 86 formed by cutting away, whereas thescrew hole 22 d for thebolt 40 is invisible. Alternatively, both the screw holes 22 c and 22 d may be invisible. - The preferable notch depth in the
thick portion 84 in the direction toward the inside of thecenter housing 22 is up to the outer periphery of thecenter housing 22 without figuring in thethick portion 84. This is to reduce the risk of lowering the strength of the shell-integratedfixed scroll 28 in the case of reducing the initial wall thickness of thecenter housing 22. - In this embodiment, since the number of
bolts 40 for fastening thefront housing 26 is larger than that ofbolts 30 for fastening therear housing 24, an independentthick portion 88 is formed aside from thethick portion 84 so that it extends from the proximal-end-side end surface 22 a toward the leading-end-side end surface 22 b, in order to form the screw holes 22 c for thebolts 30 in excess of thebolts 40, in the wall of thecenter housing 22. The independentthick portion 88 may be cut away in the circumferential direction of thecenter housing 22 by a turning process, etc. like the notch in the abovethick portion 84 so as to form astep 88 a in the axial direction. - Note that the proximal-end-side end surface 22 a of the
center housing 22 may have at least twoconcave portions 22 e, which are far enough away from each other and able to fit with convex portions of a work table 92 upon the finish processing, etc. for the shell-integratedfixed scroll 28 as described below. - Referring to
FIG. 5 , a fixing method for the shell-integratedfixed scroll 28 upon the finish processing, etc. is described next. The finish processing, etc. of the shell-integratedfixed scroll 28 is carried out as below. That is, after the shell-integratedfixed scroll 28 has been roughly formed through molding or forging with two movable and fixed metal molds, the finish processing, etc. are executed through cutting and grinding so as to enhance the dimensional precision of thescroll wrap 12 b, etc. Upon the finish processing, etc. of the shell-integratedfixed scroll 28, the shell-integratedfixed scroll 28 is stably fixed to ensure a certain level of processing precision. - According to the conventional finish processing, etc., the shell-integrated
fixed scroll 28 is fixed by firmly holding thecenter housing 22 in the horizontal direction. However, since there is no supporting structure for maintaining the space between thecenter housing 22 and thescroll wrap 12 b, thecenter housing 22 may possibly deform. On this account, there is a fear that the shell-integratedfixed scroll 28 cannot maintain appropriate dimensional precision, and the productivity of thescroll type compressor 10 is lowered. To deal with the above problem, in this embodiment, a lockingmember 90 is locked to the first opposingsurface 86 a to apply a load in the axial direction to the shell-integratedfixed scroll 28 through it. In this case, the first opposingsurface 86 a is used as a so-called operating point, whereby the shell-integratedfixed scroll 28 can be fixed in the axial direction. - More specifically, in the case of executing finish processing, etc. from the opening side of the
center housing 22 out of the shell-integrated fixed scroll 28 (for example, on thescroll wrap 12 b, etc.), the shell-integratedfixed scroll 28 is placed on the work table 92 with the proximal-end-side end surface 22 a of thecenter housing 22 facing toward a mountingsurface 92 a of the work table 92. The shell-integratedfixed scroll 28 can be placed on the work table 92 by, for example, fitting convex portions (not shown) preformed on the work table 92 to theconcave portions 22 e formed at the proximal-end-side end surface 22 a of thecenter housing 22 or other positioning methods so as not to displace the shell-integratedfixed scroll 28 on the work table 92 in the direction parallel with the mountingsurface 92 a. - The locking
member 90 is a rigid member having, for example, an L shape or other such shape capable of locking oneend 90 a to the first opposingsurface 86 a. From the viewpoint of stable locking, the oneend 90 a of the lockingmember 90 may be shaped with a smaller contact area to increase the vertical gradient upon contact with the first opposingsurface 86 a and may be formed of a material having relatively high coefficient of friction, which is used for a portion that comes into contact with the first opposingsurface 86 a. As above, the oneend 90 a can be prepared in various known shapes or with various known materials insofar as the frictional force with the first opposingsurface 86 a can be increased. Anadjustment bolt 94 is screwed to theother end 90 b of the lockingmember 90. The adjustment bolt is inserted into a throughhole 92 c of the work table 92 from an opposingsurface 92 b to the mountingsurface 92 a. Ahead portion 94 a of theadjustment bolt 94 has larger diameter than the throughhole 92 c of the work table 92. Besides the above structure, the lockingmember 90 can have any other structure insofar as a load toward the work table 92 can be applied to the first opposingsurface 86 a of the shell-integratedfixed scroll 28 placed on the work table 92. - The shell-integrated
fixed scroll 28 is fixed with the lockingmember 90 to the work table 92 by locking the oneend 90 a to the first opposingsurface 86 a and adjusting the degree of tightening theadjustment bolt 94 screwed to theother end 90 b. As a result, thehead portion 94 a of theadjustment bolt 94 presses the opposingsurface 92 b of the work table 92, while the oneend 90 a of the lockingmember 90 presses the first opposingsurface 86 a to apply a load to the shell-integratedfixed scroll 28 in the axial direction. Thus, the shell-integratedfixed scroll 28 is pressed against the work table 92 and thus fixed thereto. If the independentthick portion 88 has thestep 88 a in the axial direction as above, the lockingmember 90 may be locked to thestep 88 a to apply a load to the shell-integratedfixed scroll 28 in the axial direction. - In the case of executing finish processing, etc. on the proximal-end-side end surface 22 a of the
center housing 22 to which therear housing 24 is fastened, the shell-integratedfixed scroll 28 is placed with the unfinished leading-end-side end surface 22 b of thecenter housing 22 facing toward the mountingsurface 92 a of the work table 92, after which the shell-integratedfixed scroll 28 can be fixed in the same way as the case of performing finish processing, etc. from the opening side of thecenter housing 22 out of the shell-integratedfixed scroll 28. More specifically, the shell-integratedfixed scroll 28 can be also fixed to the work table 92 with the lockingmember 90 by locking the oneend 90 a of the lockingmember 90 to the second opposingsurface 86 b and adjusting the degree of tightening theadjustment bolt 94 screwed to theother end 90 b. - According to the
scroll type compressor 10 thus configured, in the shell-integratedfixed scroll 28, thethick portion 84 has the screw holes for thebolts thick portion 84 extends from the proximal-end-side end surface 22 a to the leading-end-side end surface 22 b. Out of thethick portion 84, a portion between the proximal-end-side end surface 22 a and the leading-end-side end surface 22 b is partially cut away in the circumferential direction of thecenter housing 22 to form the opposingsurfaces 86 facing each other in the axial direction. - Accordingly, the locking
member 90 is locked to each opposingsurface 86 and a load is applied to the shell-integratedfixed scroll 28 by means of the lockingmember 90 in the axial direction so as to fix the shell-integratedfixed scroll 28 in the axial direction. This improves the fixing structure for the shell-integratedfixed scroll 28 upon the finish processing, etc., whereby the shell-integratedfixed scroll 28 can maintain appropriate dimensional precision and enhance its productivity. - Moreover, it is conceivable to cut away the outer periphery of the
center housing 22 in the circumferential direction to form a groove for locking the lockingmember 90. However, such groove is not preferable because, in the case of producing the shell-integratedfixed scroll 28 with a smaller wall thickness by forging, not molding, so as to reduce the weight, the strength of the shell-integratedfixed scroll 28 becomes lower than the one produced by molding. However, according to thescroll type compressor 10 of this embodiment, thethick portion 84 for forming the screw holes for thebolts surfaces 86 facing each other in the axial direction. Thus, the shell-integratedfixed scroll 28 can be fixed in the axial direction without the fear of lowering the strength of the shell-integratedfixed scroll 28 when cutting away the wall of thecenter housing 22. - Note that in the above embodiment, as shown in
FIG. 6 , thescrew hole 22 c of the firstthick portion 84 a and thescrew hole 22 b of the second thick portion 84 d can overlap with each other in the axial direction. In addition, if the screw holes for thebolts front housing 26, thecenter housing 22, and therear housing 24 together, whereby the number of components can be reduced. - Moreover, the
scroll type compressor 10 of the above embodiment is only an application of the present invention. Insofar as the shell-integratedfixed scroll 28 is provided, the present invention is applicable to any other scroll type compressors. Furthermore, the present invention is applicable to all scroll type fluid machines inclusive of a scroll type expander as well as the scroll type compressor as set forth above. -
- 10 scroll type compressor
- 12 fixed scroll
- 12 a end plate
- 12 b scroll wrap
- 14 orbiting scroll
- 22 center housing
- 22 a proximal-end-side end surface
- 22 b leading-end-side end surface
- 22 c screw hole (for first bolt)
- 22 d screw hole (for second bolt)
- 24 rear housing
- 26 front housing
- 28 shell-integrated fixed scroll
- 30 (first) bolt
- 40 (second) bolt
- 84 thick portion
- 84 a first thick portion
- 84 b second thick portion
- 86 opposing surface
- 86 a first opposing surface
- 86 b second opposing surface
- 90 locking member
- 90 a one end
- 90 b other end
- t wall thickness of center housing
Claims (9)
1. A scroll type fluid machine comprising an orbiting scroll and a fixed scroll, in which the fixed scroll comprises:
a volute scroll wrap that is erected on an end plate;
a cylindrical shell that is integrated with the end plate and has a proximal end entirely connected with an outer periphery of the end plate and a leading end extending in the direction in which the scroll wrap is erected; and
a thick portion formed by partially increasing the thickness of a wall of the shell from a proximal-end-side end surface of the shell to a leading-end-side end surface of the shell so that in the thick wall of the shell, a screw hole for a first bolt for fastening a first housing to the proximal-end-side end surface extends from the proximal-end-side end surface toward the leading-end-side end surface, and a screw hole for a second bolt for fastening a second housing to the leading-end-side end surface extends from the leading-end-side end surface toward the proximal-end-side end surface,
wherein the thick portion is partially cut away in a circumferential direction of the shell between the proximal-end-side end surface and the leading-end-side end surface to form opposing surfaces that face each other in the axial direction.
2. The scroll type fluid machine according to claim 1 , wherein the opposing surfaces are respectively locked with a locking member, and function as an operating point at which a load is applied to the fixed scroll in the axial direction by way of the locking member.
3. The scroll type fluid machine according to claim 1 or 2 , wherein the wall of the shell except the thick portion is formed with a thickness not enough to cut away in the circumferential direction so as to maintain strength of the shell.
4. The scroll type fluid machine according to claim 3 , wherein the thickness of the wall of the shell except the thick portion is not enough to form a screw hole for the first bolt and a screw hole for the second bolt.
5. The scroll type fluid machine according to claim 1 , wherein the screw hole for the first bolt and the screw hole for the second bolt overlap each other in the axial direction.
6. The scroll type fluid machine according to claim 2 , wherein the wall of the shell except the thick portion is formed with a thickness not enough to cut away in the circumferential direction so as to maintain strength of the shell.
7. The scroll type fluid machine according to any one of claim 2 , wherein the screw hole for the first bolt and the screw hole for the second bolt overlap each other in the axial direction.
8. The scroll type fluid machine according to any one of claim 3 , wherein the screw hole for the first bolt and the screw hole for the second bolt overlap each other in the axial direction.
9. The scroll type fluid machine according to any one of claim 4 , wherein the screw hole for the first bolt and the screw hole for the second bolt overlap each other in the axial direction.
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2014-149626 | 2014-07-23 | ||
JP2014149626A JP2016023612A (en) | 2014-07-23 | 2014-07-23 | Scroll type fluid machine |
PCT/JP2015/057795 WO2016013251A1 (en) | 2014-07-23 | 2015-03-17 | Scroll type fluid machine |
Publications (1)
Publication Number | Publication Date |
---|---|
US20170211390A1 true US20170211390A1 (en) | 2017-07-27 |
Family
ID=55162790
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US15/328,333 Abandoned US20170211390A1 (en) | 2014-07-23 | 2015-03-17 | Scroll type fluid machine |
Country Status (4)
Country | Link |
---|---|
US (1) | US20170211390A1 (en) |
JP (1) | JP2016023612A (en) |
CN (1) | CN106536932A (en) |
WO (1) | WO2016013251A1 (en) |
Cited By (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP3647599A3 (en) * | 2019-10-07 | 2020-07-22 | Pfeiffer Vacuum Gmbh | Vacuum pump, scroll pump and method of manufacturing same |
US20230228267A1 (en) * | 2022-01-14 | 2023-07-20 | Lg Electronics Inc. | Scroll compressor |
US11773849B2 (en) | 2019-10-07 | 2023-10-03 | Pfeiffer Vacuum Gmbh | Vacuum pump, scroll pump, and manufacturing method for such |
Citations (2)
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US5540571A (en) * | 1993-11-10 | 1996-07-30 | Kabushiki Kaisha Toyoda Jidoshokki Seisakusho | Scroll-type compressor having bolted housings |
US6039549A (en) * | 1998-04-02 | 2000-03-21 | Rechi Precision Co., Ltd. | Volute compressor |
Family Cites Families (6)
Publication number | Priority date | Publication date | Assignee | Title |
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JPS6314882U (en) * | 1986-07-15 | 1988-01-30 | ||
JP2005002949A (en) * | 2003-06-13 | 2005-01-06 | Matsushita Electric Ind Co Ltd | Compressor |
CN101245781A (en) * | 2007-12-12 | 2008-08-20 | 东莞市瑞柯电机有限公司 | Micro-whirlpool type tire inflation compressor |
JP2010007553A (en) * | 2008-06-26 | 2010-01-14 | Sanden Corp | Compressor |
JP5421725B2 (en) * | 2009-10-15 | 2014-02-19 | サンデン株式会社 | Scroll type fluid device |
JP2011169251A (en) * | 2010-02-19 | 2011-09-01 | Panasonic Corp | Scroll compressor |
-
2014
- 2014-07-23 JP JP2014149626A patent/JP2016023612A/en active Pending
-
2015
- 2015-03-17 WO PCT/JP2015/057795 patent/WO2016013251A1/en active Application Filing
- 2015-03-17 CN CN201580040003.0A patent/CN106536932A/en active Pending
- 2015-03-17 US US15/328,333 patent/US20170211390A1/en not_active Abandoned
Patent Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5540571A (en) * | 1993-11-10 | 1996-07-30 | Kabushiki Kaisha Toyoda Jidoshokki Seisakusho | Scroll-type compressor having bolted housings |
US6039549A (en) * | 1998-04-02 | 2000-03-21 | Rechi Precision Co., Ltd. | Volute compressor |
Cited By (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP3647599A3 (en) * | 2019-10-07 | 2020-07-22 | Pfeiffer Vacuum Gmbh | Vacuum pump, scroll pump and method of manufacturing same |
EP3754200A3 (en) * | 2019-10-07 | 2021-02-17 | Pfeiffer Vacuum Gmbh | Vacuum pump, scroll pump and method of manufacturing same |
EP3647599B1 (en) | 2019-10-07 | 2021-12-22 | Pfeiffer Vacuum Gmbh | Vacuum pump, scroll pump and method of manufacturing same |
US11773849B2 (en) | 2019-10-07 | 2023-10-03 | Pfeiffer Vacuum Gmbh | Vacuum pump, scroll pump, and manufacturing method for such |
US20230228267A1 (en) * | 2022-01-14 | 2023-07-20 | Lg Electronics Inc. | Scroll compressor |
US12000394B2 (en) * | 2022-01-14 | 2024-06-04 | Lg Electronics Inc. | Scroll compressor |
Also Published As
Publication number | Publication date |
---|---|
JP2016023612A (en) | 2016-02-08 |
CN106536932A (en) | 2017-03-22 |
WO2016013251A1 (en) | 2016-01-28 |
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