(19)
(11) EP 0 945 616 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
03.12.2003 Bulletin 2003/49

(21) Application number: 99105502.1

(22) Date of filing: 17.03.1999
(51) International Patent Classification (IPC)7: F04B 27/10

(54)

Swash plate type compressor having an improved torque transmission mechanism between a shaft and a swash plate

Taumelscheibenkompressor mit verbesserter Drehmomentübertragung zwischen Welle und Taumelscheibe

Compresseur à plateau en biais avec une transmission de couple améliorée entre l'arbre et le plateau en biais


(84) Designated Contracting States:
DE FR

(30) Priority: 27.03.1998 JP 8121598

(43) Date of publication of application:
29.09.1999 Bulletin 1999/39

(73) Proprietor: Sanden Corporation
Isesaki-shi, Gunma 372-8502 (JP)

(72) Inventor:
  • Fukai, Isamu, c/o Sanden Corporation
    Isesaki-shi, Gunma 372 (JP)

(74) Representative: Prüfer, Lutz H., Dipl.-Phys. et al
PRÜFER & PARTNER GbR, Patentanwälte, Harthauser Strasse 25d
81545 München
81545 München (DE)


(56) References cited: : 
EP-A- 0 568 944
US-A- 4 425 837
EP-A- 0 773 366
US-A- 4 674 957
   
       
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description

    Background of the Invention:



    [0001] The present invention relates in general to a volume variable swash plate type compressor.

    [0002] With reference to Figs. 4 through 6, description will be made as regards an earlier technology of such a compressor. The volume variable swash plate type compressor 1 has, in general, a housing 3, a shaft 4 rotatably disposed in the housing 3, a swash plate 5 mounted to the shaft 4, and a hinge mechanism 6 which is mounted to the shaft 4 and serves to support the swash plate 5 in a valuable angular relation with respect to an axial direction of the shaft 4 so that the inclination angle of the swash plate can be varied and a driving torque transmitted to the shaft 4 is transmitted to the swash plate 5. The hinge mechanism 6 has a fixed hinge 7 fixed to the shaft 4 and having a fixed arm 72, and a movable hinge 8 mounted to the shaft 4 and having a movable arm 82 rotatably connected with the fixed arm 72. The fixed arm 72 has a fixed coupling surface 72a. The movable arm 8 has a movable coupling surface 82a which is slidably contacted with the fixed coupling surface 72a and receives a driving torque from the fixed coupling surface 72a.

    [0003] The housing 3 is provided at its one end with a cylinder block 34 in a unitary structure. The cylinder block 34 is provided with a plurality of cylinder bores 34b. A piston 12 is slidably inserted into each of the cylinder bores 34b. The piston 12 is coupled with the swash plate 5 with a pair of shoes 18 disposed therebetween,

    [0004] An end of the fixed arm 72 serves as a fixed coupling portion, at which a fixed coupling surface 72a is formed. Similarly, an end of the movable arm 82 serves as a movable coupling portion, at which a movable coupling surface 82a is formed.

    [0005] The fixed hinge 7 is coupled with the movable hinge at the positions only of the fixed coupling portion and the movable coupling portion.

    [0006] During an operation of the volume variable swash plate type compressor 1, a force is generated as illustrated in Figs. 5A, 5B and 5C. Namely, when the shaft 4 is rotated by an external driving source (not shown), a driving torque T is effected on the shaft 4, a compressive reaction being given to the piston 12. At this moment, a moment M1 and a moment M2 are simultaneously effected to the fixed arm 72 and the movable arm 82, respectively. The moment M1 is a four-turn shaft moment which is generated when the fixed hinge 7 receives a driving torque T from the shaft 4, then the driving torque T being transmitted from the fixed hinge 7 to the movable hinge 8. The moment M2 is generated when the swash plate 5 receives a compressive reaction force P and is a moment, which serves to rotate the swash plate 5 in a rotational direction perpendicular to an axis of the shaft 4.

    [0007] In the volume variable swash plate type compressor 1, various moments are added to or effected on the fixed arm and the movable arm during operation. Therefore, it is required and important that the fixed arm and the movable arm have a sufficient rigidity.

    [0008] In order to secure the desired rigidity to the arm portions, arm portions is formed to have a greater thickness. This results in heavy weight of the arm portions. Therefore, the balanced rotation of the hinge mechanism is not expected. Consequently, since adjustment of an inclination angle of the swash plate is not achieved in a smooth manner, responsive characteristics of volume control for the compressor is not fulfilled.

    [0009] From US Patent 4,674,957 a swash plate type compressor according to the preamble of claim 1 can be taken. The swash plate comprises a swash plate assembly. The swash plate assembly 30 includes a support member fixed to the drive shaft and extending radially in the crank-case from the drive shaft, a non-rotary wobble plate and a rotary swash plate supported on the support member. The support member has a mount by which the support member is fixedly mounted on the drive shaft.

    SUMMARY OF THE INVENTION:



    [0010] It is therefore an object of the present invention to provide a new and improved volume variable, swash plate type compressor which has arm portions of light weight in the hinge mechanism and reliable responsive characteristics of the volume control for the compressor.

    [0011] Such an object is solved by a swash plate type compressor according to the independent claim 1.

    [0012] Preferred developments of the invention can be taken from the dependent claims.

    Brief Description of the Drawing:



    [0013] 

    Fig. 1 is a vertical sectional view of a volume variable swash plate type compressor according to an embodiment of the invention;

    Figs. 2A, 2B, and 2C are a front view, a side view, and a plan view, respectively, of the volume variable swash plate type compressor shown in Fig. 1, showing a related portion of the compressor in a case of a maximum volume;

    Figs. 3A, 3B, and 3C are a front view, a side view, and a plan view, respectively, of the volume variable swash plate type compressor shown in Fig. 1, showing a related portion of the compressor in a case of a minimum volume;

    Fig. 4 is a vertical sectional view of a volume variable swash plate type compressor in an earlier technology;

    Figs. 5A, 5B, and 5C are a front view, a side view, and a plan view, respectively, of the volume variable swash plate type compressor shown in Fig. 4, showing a related portion of the compressor in a case of a maximum volume; and

    Figs. 6A, 6B, and 6C are a front view, a side view, and a plan view, respectively, of the volume variable swash plate type compressor shown in Fig. 4, showing a related portion of the compressor in a case of a minimum volume.


    Description of the Preferred Embodiment:



    [0014] Referring to Figs. 1 to 3, description will be made as regards a volume valuable swash plate type compressor according to an embodiment of the present invention.

    [0015] The swash plate type compressor is designated by a reference numeral 1 and comprises a housing 3, a drive shaft 4, a swash plate 5 and a hinge mechanism. The housing 3 has a housing body 31, a front end plate 32 and a cylinder head 33. The housing body 31 is substantially cylindrical and has an opening at one end and a cylinder block 34 integrally formed at the other end. The cylinder block 34 has a central hole 34a at its center portion. The central hole 34a has therein a radial needle bearing 10 and a control valve 11. On the outer circumferential surface of the cylinder block 34 is provided a plurality of cylinder bores 34b at a constant interval around the central hole 34a. A piston 12 is slidably inserted into each of the cylinder bores 34b.

    [0016] The front end plate 32 is substantially cone shaped and fitted to an end of the housing body 31 to close the end. The front end plate 32 has at its central portion a radial needle bearing 13 and a shaft sealing member 14.

    [0017] The cylinder head 33 is substantially bowl shaped and has a suction chamber 33a and exhaust (discharge) chamber 33b and is connected with the cylinder block 34 through a valve device 15 by means of a bolt 16.

    [0018] The shaft 4 is rotatably supported at its tip end portion to the front end plate 32 through the needle bearing 13 and rotatably supported at its rear end to the cylinder block 34 through the needle bearing 10. Thus, the shaft 4 is rotatably disposed in the housing 3, the tip end being extended out of the housing 3 through the front end plate 32. The extended portion of the shaft 4 from the housing 3 is coupled with an electromagnetic clutch 17 fitted to the front end plate 32.

    [0019] The swash plate 5 is ring shaped and mounted on the shaft 4 such that the shaft 4 is extended through the central hole 5a. The swash plate 5 is supported to the hinge mechanism 6. The swash plate 5 and the piston 12 are connected with each other by a pair of shoes 18.

    [0020] The hinge mechanism 6 is mounted on the shaft 4 and serves to support the swash plate 5 so that an inclination angle is variable relative to an axis of the shaft 4, and the torque transmitted to the shaft 4 is transmitted to the swash plate 5. The hinge mechanism 6 comprises a fixed hinge 7 and the movable hinge 8.

    [0021] The fixed hinge 7 comprises a rotor member or a fixed hinge body 71 and a fixed arm 72. The fixed hinge body 71 is ring shaped and fixed to the shaft 4 such that the shaft 4 is inserted into the central hole 71a. The fixed arm 72 is of a plate shape and integrally formed as a first arm portion on the fixed hinge body 71. The fixed arm 72 is extended along a surface which is contacted, in parallel, with the axis of the shaft 4 in the state that the fixed hinge 7 is fixed to the shaft 4. The tip end of the fixed arm 72 serves as a fixed main coupling portion. The fixed coupling portion has a fixed coupling portion 72a which is parallel to a plane contacted, in parallel, with an axis of the shaft 4. Further, a pin 61 is fixed to the fixed coupling portion and is extended perpendicularly to the fixed coupling surface 72a.

    [0022] The movable hinge 8 comprises a flange portion 81, a movable arm 82, and a boss portion 83. The flange portion 81 is of a ring shape. The movable arm 82 is provided as a second arm portion on a surface of the flange portion 81 and its tip end serves as a movable main coupling portion, which has a movable coupling surface 82a parallel to a surface which is parallel to an axis of the shaft 4. Further, the movable coupling portion is provided with an elongated or oblong hole 82b into which a pin 61 disposed to the fixed arm 72 is inserted. A snap ring 62 is fit is fitted to the end of the pin 61 to prevent the pin 61 from being dropped out of the oblong hole 82b. Thus, the movable arm 82 is rotatably coupled with the fixed arm 72. The movable coupling surface 82a is slidably contacted with the fixed coupling surface 72a of the fixed arm 72 with a washer 19 interposed therebetween so that a driving torque is received from the fixed coupling surface 72a. A boss portion 83 is provided on the other surface of the flange portion 81 and has a male screw 83a on its outer circumferential surface. The swash plate 5 is mounted on the boss portion 83 and a press ring 84 having a female screw 84a engageable with the male screw 83a is engaged with the boss portion 83, so that the swash plate 5 is fixed to the other surface of the flange portion 81. A slant hole 85 is provided at a center portion of the boss portion 83 and the flange portion 81. The central, slant hole 85 is a portion which serves to receive therethrough the shaft 4. The inner surface of the slant hole 85 is slidably contacted with an outer circumferential surface of the shaft 4. Consequently, a smooth rotation of the movable hinge 8 is established.

    [0023] The fixed hinge 7 has an auxiliary fixed coupling portion which, in this embodiment, is projected in an opposed relation from the side surfaces of the fixed hinge body 71 to form a pair of receiving portions or projections 73 having a pair of plain surfaces 73a.

    [0024] The plain surfaces 73a are in a confronting relation with each other. Each of the plain surfaces 73a is a surface which is parallel to one surface contacting in parallel with the axis of the shaft 4 and passing through the coupling portion between the fixed arm 72 and the movable arm 82. The projections 73 having the surfaces 73a are provided nearer or proximal to the shaft 4 relative to the fixed main coupling portion of the fixed arm 72. Thus, the projections 73 having the surfaces 73a are formed in a paired configuration and, in addition, located adjacent to the shaft 4. Therefore, a rotational balance of the fixed hinge 7 is maintained by the provision of the projections having the plain surfaces 73a.

    [0025] Similarly, the movable hinge 8 has an auxiliary movable coupling portion which, in this embodiment, comprises a pair of auxiliary arms 86 provided on one surface of the flange portion 81. Each of the auxiliary arms 86 has a surface which is parallel to one surface contacting in parallel with the axis of the shaft 4 and passing through the coupling portion between the fixed arm 72 and the movable arm 82. Further, the auxiliary arms 86 are slidably contacted with a pair of the plain surface 73a in such a manner that a pair of the projections 73 of the fixed hinge 7 are grasped. The paired auxiliary arms 86 are located more proximal or nearer to the shaft 4 than the movable main coupling portion of the movable arm 82. Thus, the auxiliary arm 86 are formed in a paired relation and proximal to the shaft 4 as described above. Therefore, a rotational balance of the movable hinge 8 can be maintained by provision of the auxiliary arms 86.

    [0026] By the plain surfaces 73a of the fixed hinge 7 and the auxiliary arms 86 of the movable hinge 8, both of which are in a paired structure, a part of the driving torque transmitted from the shaft 4 to the fixed hinge 7 is successfully transmitted to the movable hinge 8.

    [0027] With the swash plate type compressor, the hinge mechanism has an auxiliary fixed coupling portion and an auxiliary movable coupling portion. Therefore, a rigidity of the fixed arm of the fixed hinge and the movable arm of the movable hinge can be reduced relative to the conventional compressors. In addition, the weight of the fixed arm and movable arm can be reduced. Thus, the rotational balance of the hinge mechanism can be improved relative to the compressors in an earlier technology. Further, adjustment and control of the inclination angle of the swash plate can be made readily. Accordingly, responsiveness of the volume control of the compressor can be improved substantially.

    [0028] While the present invention has thus far been described in connection with a few embodiments thereof, it will readily be possible for those skilled in the art to put this invention into practice in various other manners. For example, it should be appreciated that the auxiliary fixed coupling portion and the auxiliary movable coupling portion are not limited to those of the embodiment described above. Alterations and modifications can be made if a part of the driving torque transmitted to the fixed hinge can be transmitted desirably to the movable hinge without providing any inconveniences to rotation of the movable hinge.


    Claims

    1. A swash plate type compressor comprising:

    a rotatable shaft (4) extending in an axial direction;

    a swash plate (5) ;

    a hinge mechanism (6) supporting said swash plate (5) on said shaft (4) in such a manner that said swash plate (5) has an inclination angle variable relative to said axial direction;

    said hinge mechanism (6) serving to transmit a driving torque of said shaft (4) to said swash plate (5) and comprises a fixed hinge (7) fixedly connected to said shaft (4) and a movable hinge (8) fixedly connected to said swash plate (5);

    said fixed hinge (7) having a fixed arm (72);

    said movable hinge (8) having a movable arm (82) which is coupled to said fixed arm (72) to be pivotal around an axis extending perpendicular to said axial direction;

    said fixed and said movable arms (7, 8) transmitting a part of said driving torque to said swash plate (5) in cooperation with each other;

    said fixed hinge (7) having an auxiliary fixed coupling portion (73);

    said movable hinge (8) having an auxiliary movable coupling portion (86) engaged with said auxiliary fixed coupling portion (73) so that another part of said driving torque is transmitted from said shaft (4) to said swash plate (5) in cooperation of said auxiliary fixed and said auxiliary movable coupling portions (86, 73);

       characterized in that
       said movable hinge (8) has a slant hole (85) which serves to receive therethrough said shaft (4) and that the inner surface of said slant hole is slidably contacted with an outer circumferential surface of the shaft.
     
    2. A swash plate type compressor as claimed in claim 1, wherein said auxiliary fixed and said auxiliary movable coupling portions (86, 73) are located proximal to said shaft (4) relative to said fixed and said movable arms (72, 82).
     
    3. A swash plate type compressor as claimed in claim 1 or 2, wherein said auxiliary fixed coupling portion (73) is contacted, in parallel, with an axial line of said shaft (4) and has a pair of surfaces (73a) extending in parallel with a surface passing through the coupling portion between said fixed and said movable arms, said auxiliary movable coupling portion (86) having a pair of auxiliary arms (86) slidably contacted with each of said pair of the surfaces (73a).
     
    4. A swash plate type compressor as claimed in any one of claims 1-3, further comprising a housing (3) including a cylinder block (34) with a plurality of cylinder bores (34b), a plurality of pistons (12) slidably disposed within said cylinder bores (34b), respectively, and coupling means (18) coupled to said swash plate (5) and said pistons (12) for making said pistons (12) be driven in reciprocating motion within said cylinder bores (34b) upon nutation of said swash plate (5).
     
    5. A swash plate type compressor as claimed in one of claims 1 to 4, comprising a housing (3) said drive shaft (4) being rotatably supported by said housing, said swash plate (5) having an angle of tilt and tiltably connected to said drive shaft (4), a rotor member (71) being fixed to said drive shaft (4) to be rotatable with said drive shaft (4), said hinge mechanism (6) joining said rotor member (71) to said swash plate (5) for varying the inclination of said swash plate with respect to said drive shaft (4).
     
    6. A swash plate type compressor as claimed in claims 5, wherein said auxiliary fixed coupling portion comprises a pair of receiving portions (73) formed on radial opposite sides of said rotor member (71), and said auxiliary movable coupling portion comprises a pair of arms (86) extending from an axial end surface of said swash plate (5) and coupled to the pair of said receiving portions (73) of said rotor member (71).
     
    7. A swash plate type compressor as claimed in claim 6, wherein said receiving portions (73) of said rotor member (71) includes surfaces (73a) formed thereon for slidably contacting with the pair of said arms (86) of said swash plate (5).
     
    8. A swash plate type compressor as claimed in claim 7, wherein said surfaces (73a) of the receiving portions (73) extend in parallel to each other with a space left therebetween, the pair of said arms (86) of said swash plate (5) being inserted in said space to be in slidable contact with said surfaces of the receiving portions (73), respectively.
     
    9. A swash plate type compressor as claimed in one of claims 5 to 8, wherein said hinge mechanism (6) comprises a first arm portion (72) extending from said rotor member (71) and a second arm portion (82) extending from said swash plate (5) and having an elongated slot (82b) through which passes a pin member (61) fixedly connected to said first arm portion (72).
     
    10. A swash plate type compressor as claimed in one of claims 5 to 9, wherein said coupling means is a plurality of shoes (18) disposed between said pistons (12) and said swash plate (5).
     


    Ansprüche

    1. Taumelscheibenkompressor, aufweisend:

    eine drehbare Welle (4), die sich in einer Axialrichtung erstreckt;

    eine Taumelscheibe (5);

    einen Gelenkmechanismus (6), der die Taumelscheibe (5) auf der Welle (4) in einer solchen Art und Weise lagert, daß die Taumelscheibe (5) einen Neigungswinkel besitzt, der im Verhältnis zu der Axialrichtung veränderbar ist;

       wobei der Gelenkmechanismus (6) dazu dient, ein Antriebsdrehmoment der Welle (4) auf die Taumelscheibe (5) zu übertragen und ein feststehendes Gelenk (7) aufweist, das fest mit der Welle (4) verbunden ist, und ein bewegliches Gelenk (8), das fest mit der Taumelscheibe (5) verbunden ist;
       wobei das feststehende Gelenk (7) einen feststehenden Arm (72) besitzt;
       wobei das bewegliche Gelenk (8) einen beweglichen Arm (82) besitzt, der mit dem feststehenden Arm (72) gekoppelt ist, um um eine Achse herum schwenkbar zu sein, die sich senkrecht zu der Axialrichtung erstreckt;
       wobei der feststehende und der bewegliche Arm (7, 8) die einen Teil des Antriebsdrehmomentes auf die Taumelscheibe (5) übertragen, zusammenwirken;
       wobei das feststehende Gelenk (7) einen feststehenden Hilfskopplungsabschnitt (73) besitzt;
       wobei das bewegliche Gelenk (8) einen beweglichen Hilfskopplungsabschnitt (86) besitzt, der mit dem feststehenden Hilfskopplungsabschnitt (73) in Eingriff steht, so daß ein anderer Teil des Antriebsdrehmomentes von der Welle (4) im Zusammenwirken mit dem feststehenden Hilfskopplungsabschnitt und dem beweglichen Hilfskopplungsabschnitt (86, 73) auf die Taumelscheibe (5) übertragen wird;
       dadurch gekennzeichnet, daß
       das bewegliche Gelenk (8) ein schräges Loch (85) besitzt, daß dazu dient, die Welle (4) aufzunehmen, und daß die innere Oberfläche des abgeschrägten Loches im verschieblichen Kontakt mit einer äußeren Umfangsoberfläche der Welle steht.
     
    2. Taumelscheibenkompressor gemäß Anspruch 1, wobei der feststehende Hilfskopplungsabschnitt und der bewegliche Hilfskopplungsabschnitt (86, 73) im Verhältnis zu dem feststehenden und dem beweglichen Arm (72, 82) nahe an der Welle (4) angeordnet sind.
     
    3. Taumelscheibenkompressor gemäß Anspruch 1 oder 2, wobei der feststehende Hilfskopplungsabschnitt (73) parallel mit einer axialen Linie der Welle (4) in Kontakt steht und ein Paar Oberflächen (73a) besitzt, die sich parallel zu einer Oberfläche erstrecken, die durch den Kopplungsabschnitt zwischen dem feststehenden und dem beweglichen Arm gehen, wobei der bewegliche Hilfskopplungsabschnitt (86) ein Paar Hilfsarme (86) besitzt, die verschieblich mit jedem des Paars der Oberflächen (73a) in Kontakt stehen.
     
    4. Taumelscheibenkompressor gemäß einem der Ansprüche 1 bis 3, des weiteren aufweisend ein Gehäuse (3), das einen Zylinderblock (34) mit einer Mehrzahl von Zylinderbohrungen (34b) enthält, eine Mehrzahl von Kolben (12), die jeweils verschieblich in den Zylinderbohrungen (34b) angeordnet sind, und eine Kopplungsvorrichtung (18), die mit der Taumelscheibe (5) und den Kolben (12) gekoppelt ist, um es zu bewerkstelligen, daß die Kolben (12) in einer hin- und hergehenden Bewegung in den Zylinderbohrungen (34b) infolge des Schrägstellens der Taumelscheibe (5) angetrieben werden.
     
    5. Taumelscheibenkompressor gemäß einem der Ansprüche 1 bis 4, aufweisend ein Gehäuse (3), wobei die Antriebswelle (4) durch das Gehäuse drehbar gelagert ist, wobei die Taumelscheibe (5) einen Neigungswinkel besitzt und neigbar mit der Antriebswelle (4) verbunden ist, wobei ein Rotorbauteil (71) an der Antriebswelle (4) befestigt ist, um mit der Antriebswelle (4) drehbar zu sein, wobei der Gelenkmechanismus (6) das Rotorbauteil (71) mit der Taumelscheibe (5) verbindet, um die Neigung der Taumelscheibe in bezug zu der Antriebswelle (4) zu verändern.
     
    6. Taumelscheibenkompressor gemäß Anspruch 5, wobei der feststehende Hilfskopplungsabschnitt ein Paar Aufnahmeabschnitte 73 aufweist, die auf radial gegenüberliegenden Seiten des Rotorbauteils (71) ausgebildet sind, und wobei der bewegliche Hilfskopplungsabschnitt ein Paar Arme (86) aufweist, die sich von einer axialen Endoberfläche der Taumelscheibe (5) aus erstrecken und mit dem Paar Aufnahmeabschnitte (73) des Rotorbauteils (71) gekoppelt sind.
     
    7. Taumelscheibenkompressor gemäß Anspruch 6, wobei die Aufnahmeabschnitte (73) des Rotorbauteils (71) Oberflächen (73a) enthalten, die darauf ausgebildet sind, um mit dem Paar Arme (86) der Taumelscheibe (5) in Kontakt zu stehen.
     
    8. Taumelscheibenkompressor gemäß Anspruch 7, wobei sich die Oberflächen (73a) der Aufnahmeabschnitte (73) parallel zu einander mit einem dazwischen liegendem Zwischenraum erstrecken, wobei das Paar Arme (86) der Taumelscheibe (5) in den Raum eingesetzt ist, um jeweils mit den Oberflächen der Aufnahmeabschnitte (73) in verschieblichem Kontakt zu sein.
     
    9. Taumelscheibenkompressor gemäß einem der Ansprüche 5 bis 8, wobei der Gelenkmechanismus (6) einen ersten Armabschnitt (72) aufweist, der sich von dem Rotorbauteil (71) aus erstreckt, und einen zweiten Armabschnitt (82), der sich von der Taumelscheibe (5) erstreckt und ein Langloch (82b) enthält, durch das ein Zapfenbauteil (61) geht, das fest mit dem ersten Armabschnitt (72) verbunden ist.
     
    10. Taumelscheibenkompressor gemäß einem der Ansprüche 1 bis 9, wobei die Kupplungsvorrichtung eine Mehrzahl von Schuhen (18) ist, die zwischen den Kolben (12) und der Taumelscheibe (5) gelagert sind.
     


    Revendications

    1. Compresseur à plateau en biais comprenant :

    un arbre rotatif (4) s'étendant dans une direction axiale ;

    un plateau en biais (5) ;

    un mécanisme à charnière (6) supportant ledit plateau en biais (5) sur ledit arbre (4) de telle sorte que ledit plateau en biais (5) a un angle d'inclinaison variable par rapport à ladite direction axiale ;

    ledit mécanisme à charnière (6) servant à transmettre un couple d'entraînement dudit arbre (4) audit plateau en biais (5) et comprend une charnière fixe (7) reliée de manière immobile audit arbre (4) et une charnière mobile (8) reliée de manière immobile audit plateau en biais (5) ;

    ladite charnière fixe (7) ayant un bras fixe (72) ;

    ladite charnière mobile (8) ayant un bras mobile (82) qui est couplé audit bras fixe (72) pour pivoter autour d'un axe perpendiculaire à ladite direction axiale ;

    lesdits bras fixe et mobile (7, 8) transmettant une partie dudit couple d'entraînement audit plateau en biais (5) en coopération l'un avec l'autre ;

    ladite charnière fixe (7) ayant une partie de couplage auxiliaire fixe (73) ;

    ladite charnière mobile (8) ayant une partie de couplage auxiliaire mobile (86) emboîtée avec ladite partie de couplage auxiliaire fixe (73) de telle sorte qu'une autre partie dudit couple d'entraînement soit transmise dudit arbre (4) audit plateau en biais (5), en coopération avec ladite partie de couplage auxiliaire fixe et ladite partie de couplage auxiliaire mobile (86,73) ;

       caractérisé en ce que
       ladite charnière mobile (8) a un trou oblique (85) qui sert à loger ledit arbre (4) et en ce que la surface intérieure dudit trou oblique est en contact de manière coulissante avec une surface circonférentielle extérieure de l'arbre.
     
    2. Compresseur à plateau en biais selon la revendication 1, dans lequel lesdites partie de couplage auxiliaire fixe et partie de couplage auxiliaire mobile (86,73) sont situées du côté proximal dudit arbre (4) par rapport audit bras fixe et audit bras mobile (72,82).
     
    3. Compresseur à plateau en biais selon la revendication 1 ou 2, dans lequel ladite partie de couplage auxiliaire fixe (73) est en contact, en parallèle, avec une ligne axiale dudit arbre (4) et comporte une paire de surfaces (73a) s'étendant parallèlement à une surface passant à travers la partie de couplage entre lesdites bras fixe et mobile, ladite partie de couplage auxiliaire mobile (86) ayant une paire de bras auxiliaires (86) en contact coulissant avec chacune de ladite paire de surfaces (73a).
     
    4. Compresseur à plateau en biais selon l'une des revendications 1 à 3, comprenant en outre un boîtier (3) comportant un bloc cylindre (34) avec une pluralité d'alésages de cylindres (34b), une pluralité de pistons (12) disposés de manière coulissante à l'intérieur desdits alésages de cylindres (34b), respectivement, et des moyens de couplage (18) couplés audit plateau en biais (5) et lesdits pistons (12) pour faire en sorte que lesdits pistons (12) soient entraînés pour effectuer un mouvement réciproque à l'intérieur desdits alésages de cylindres (34b) lors de la nutation dudit plateau en biais (5).
     
    5. Compresseur à plateau en biais selon l'une des revendications 1 à 4, comprenant un boîtier (3), ledit arbre d'entraînement (4) étant supporté de manière rotative par ledit boîtier, ledit plateau en biais (5) ayant un angle d'inclinaison et relié de manière inclinable audit arbre d'entraînement (4), un élément de rotor (71) étant fixé audit arbre d'entraînement (4) de façon à tourner avec ledit arbre d'entraînement (4), ledit mécanisme à charnière (6) reliant ledit élément de rotor (71 )audit plateau en biais (5) pour modifier l'inclinaison dudit plateau en biais par rapport audit arbre d'entraînement (4).
     
    6. Compresseur à plateau en biais selon la revendication 5, dans lequel ladite partie de couplage auxiliaire fixe comprend une paire de parties de logement (73) aménagées sur les côtés opposés radialement dudit élément de rotor (71) et ladite partie de couplage auxiliaire mobile comprend une paire de bras (86) s'étendant d'une surface d'extrémité axiale dudit plateau en biais (5) et couplée à la paire desdites parties de logement (73) dudit élément de rotor (71).
     
    7. Compresseur à plateau en biais selon la revendication 6, dans lequel lesdites parties de logement (73) dudit élément de rotor (71) comprend des surfaces (73a) aménagées dessus pour un contact coulissant avec la paire desdits bras (86) dudit plateau en biais (5).
     
    8. Compresseur à plateau en biais selon la revendication 7, dans lequel lesdites surfaces (73a) des parties de logement (73) s'étendent parallèlement entre elles avec un intervalle entre les deux, la paire desdits bras (86) dudit plateau en biais (5) étant insérée dans ledit intervalle pour être en contact coulissant avec lesdites surfaces des parties de logement (73) respectivement.
     
    9. Compresseur à plateau en biais selon l'une des revendications 5 à 8, dans lequel ledit mécanisme à charnière (6) comprend une première partie de bras (72) s'étendant dudit élément de rotor (71) et une deuxième partie de bras (82) s'étendant dudit plateau en biais (5) et ayant une fente allongée (82b) à travers laquelle passe un élément de broche (61) relié de manière fixe à ladite première partie de bras (72).
     
    10. Compresseur à plateau en biais selon l'une des revendications 5 à 9, dans lequel ledit moyen de couplage est constitué d'une pluralité de sabots (18) disposés entre lesdits pistons (12) et ledit plateau en biais (5).
     




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