(19)
(11) EP 2 752 552 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
04.07.2018 Bulletin 2018/27

(21) Application number: 14163230.7

(22) Date of filing: 25.05.2012
(51) International Patent Classification (IPC): 
F01C 1/22(2006.01)
F01C 21/10(2006.01)

(54)

Rotary machine core assembly and rotary machine

Kerngehäusebaugruppe einer Rotationsmaschine und Rotationsmaschine

Assemblage de corps central de machine rotative et machine rotative


(84) Designated Contracting States:
AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

(43) Date of publication of application:
09.07.2014 Bulletin 2014/28

(62) Application number of the earlier application in accordance with Art. 76 EPC:
12169534.0 / 2666961

(73) Proprietor: UAV Engines Ltd
Lichfield, Staffordshire WS14 0DT (GB)

(72) Inventors:
  • Biddulph, Christopher John
    Lichfield, Staffordshire WS14 0DT (GB)
  • Richmond, Roy
    Lichfield, Staffordshire WS14 0DT (GB)

(74) Representative: Chapman, Helga Claire 
Chapman IP Kings Park House 22 Kings Park Road
Southampton SO15 2AT
Southampton SO15 2AT (GB)


(56) References cited: : 
EP-A2- 1 983 193
DE-A1- 19 812 853
US-A1- 2009 084 099
CH-A5- 666 517
FR-A1- 2 755 485
   
       
    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

    Technical Field



    [0001] The invention relates to a rotary machine core assembly and to a rotary machine comprising the rotary machine core assembly.

    Background



    [0002] Conventionally the endplates of a rotary engine are held in place against the sides of the engine rotor housing using a through bolt or threaded stud located through each endplate and extending through the rotor housing. The rotor housing is made of Aluminium and the through bolts are typically made of steel alloy. The rotor housing defines a trochoid bore within which the engine rotor rotates during operation. When the engine is running there is a thermal distribution around the circumference of the rotor housing trochoid bore, a cooler region existing around the area of engine induction and a hotter region being associated with the ignition and power phase of the engine cycle. Typically, the regions of the trochoid which become hotter have either engine cooling fins or a liquid coolant passageway provided within the rotor housing to assist with cooling. Following running the engine there is a general, measurable distortion of the rotor housing caused by the heat generated during operation. In the area of the rotor housing which is hottest during operation a quite localised and large compressive distortion of the rotor housing is produced which causes a number of problems, as follows. A surface coating, such as nickel silicone is applied to the aluminium surface of the rotor housing defining the trochoid bore, to create a suitable wear surface. The distortion of the aluminium rotor housing leads to adhesion/cracking issues in surface coating, which ultimately leads to a loss in engine performance and/or increased engine maintenance. The distortion of the rotor housing reduces the effectiveness of the gas seal between the rotor housing and the endplate. The distortion of the rotor housing results in a reduction in the clamping load provided
    by the through bolt arrangement, which can result in increased surface fretting between the rotor housing and the endplate.

    [0003] Prior art DE 198 12 853 A1, US 2009/084099 and EP1 983 193 A2 all disclose rotary machine core assemblies.

    Statements of invention



    [0004] According to the present invention there is provided a rotary machine core assembly as defined in the accompanying claims.

    [0005] The arrangement of the fixing holes and the mechanical fixing elements allows the rotor housing to expand when it becomes hotter during operation within a rotary machine, such as a rotary engine or a rotary compressor. The compressive distortion of the rotor housing which occurs in prior art rotary engines may thus be reduced or substantially eliminated. The associated adhesion/cracking issues in the surface coating of the trochoid bore may be reduced or substantially eliminated, which improve machine performance and/or reduce machine maintenance. The effectiveness of the gas seal between the rotor housing and the endplate may be maintained and the clamping load between the rotor housing and the endplates may be maintained, may reduce or substantially eliminate surface fretting between the rotor housing and one or both endplates.

    [0006] In an embodiment, the rotor housing additionally has at least one single fixing hole provided therein, extending from a respective one of the sides of the rotor housing part-way into the rotor housing. At least one correspondingly located through hole is provided in a respective one of the endplates and at least one additional mechanical fixing element is located through the through hole in the respective endplate and is received in the single fixing hole.

    [0007] In an embodiment, a plurality of single fixing holes are provided in the rotor housing, with correspondingly located though holes provided in the or each respective end plate and a plurality of mechanical fixing elements are provided, each located through a respective through hole in the respective endplate and received in the respective single fixing hole.

    [0008] This may provide additional strength of attachment between the rotor housing and the end plates in regions of the rotor housing where it is not possible to provide a pair of fixing holes.

    [0009] In an embodiment, each mechanical fixing element extends part-way into the respective fixing hole. This may increase the amount of thermally induced expansion which the rotor housing is able to accommodate.

    [0010] In an embodiment, a respective connecting bore is provided through the rotor housing between the ends of the oppositely located fixing holes of each pair. This may increase the amount of thermally induced expansion which the rotor housing is able to accommodate.

    [0011] In an embodiment, the connecting bore has a diameter which is less than a diameter of each of the fixing holes of the respective pair. In an embodiment, the connecting bore is a tapping hole. Providing the connecting bore with a smaller diameter than the fixing holes may provide a 'stop' for the respective filing element at the end of each fixing hole.

    [0012] In an embodiment, each mechanical fixing element comprises one of a threaded stud and a threaded bolt. In an embodiment, each fixing hole has a complementary internal thread provided on at least part of its length.

    [0013] Also according to the present invention there is provided a rotary machine as claimed in the claims.

    [0014] Also according to the present invention there is provided a rotary engine as claimed in the claims.

    [0015] Also according to the present invention there is provided a rotary compressor as claimed in the claims.

    Brief description of the drawings



    [0016] 

    Figure 1 is a cross-sectional view of part of a rotary machine core assembly not according to the invention;

    Figure 2 shows the rotor housing of the rotary machine core assembly of Figure 1;

    Figure 3 is a cross-sectional view of part of a rotary machine core assembly according to the invention;

    Figure 4 is a cross-sectional view of part of a rotary machine core assembly not according to the invention; and

    Figure 5 is a cross-sectional view of part of a rotary engine not according to the invention.


    Detailed description



    [0017] Referring to Figures 1 and 2, a first example not according to the invention provides a rotary machine core assembly 10 comprising a rotor housing 12, a first endplate 14, a second endplate 16 and a plurality of mechanical fixing elements 18.

    [0018] The rotor housing 12 defines a trochoid bore 20 for receiving a rotor (not shown) and comprises a plurality of cooling fins 22, arranged extending generally outwardly from the trochoid bore.

    [0019] A plurality of pairs of fixing holes 24 are provided in the rotor housing; in this example 12 pairs of fixing holes are provided. Each pair of fixing holes comprises a first fixing hole 24a and a second fixing hole 24b. Each first fixing hole 24a extends from one side 12a of the rotor housing part-way into the rotor housing and each second fixing hole 24b extends from the opposing side 12b of the rotor housing part-way into the rotor housing. As seen most clearly in Figure 1, the fixing holes 24a, 24b of each pair are generally co-axially aligned such that they extend towards each other. Each fixing hole has a depth which is less than one half of the thickness of the rotor housing 12, such that the ends of the fixing holes of each pair are spaced from each other. Each fixing hole is provided with an internal thread. In this embodiment a region 26 of solid metal is provided between the ends of the fixing holes.

    [0020] Two dowel location holes 28 are also provided in the rotor housing 12, each extending part-way through the rotor housing.

    [0021] The first endplate 14 is located adjacent the one side 12a of the rotor housing 12 and the second endplate 16 is located adjacent the opposing side 12b of the rotor housing. Each endplate 14, 16 has a plurality of through holes 30, 32 provided in it. In this example each endplate has 12 through holes 30, 32 provided in it, matching the number of pairs of fixing holes 24 in the rotor housing. The through holes are correspondingly located with the fixing holes on the respective side of the rotor housing, so that the through holes in each endplate are aligned with the respective fixing holes 24a, 24b in the rotor housing.

    [0022] Each endplate 14, 16 is provided with two dowel pins 34, in the form of straight, tubular dowels, for location in the dowel location holes 28 in the rotor housing 12, to correctly align each endplate 14, 16 against the respective side of the rotor housing. In this example 12 mechanical fixing elements 18a, 18b are provided through each endplate 14, 16. Each mechanical fixing element 18a, 18b is located through a respective through hole 30, 32 in its respective endplate and is received in the respective fixing hole 24a, 24b in the rotor housing. In this embodiment each mechanical fixing element 18a, 18b has a length which is less than the combined depth of the respective through hole 30, 32 and the respective fixing hole 24a, 24b. The ends of oppositely located fixing elements 18a, 18b are therefore spaced from each other.

    [0023] In this example the mechanical fixing elements 18a located through the first endplate 14 each comprise externally threaded bolts. The mechanical fixing elements 18b located through the second endplate 16 each comprise externally threaded studs, with a fixing nut located at the external end of the stud 18b to secure the stud in place.

    [0024] It will be appreciated that each of the mechanical fixing elements 18a, 18b may be either one of a threaded bolt or a threaded stud plus a nut. Other types of mechanical fixing elements may also be used.

    [0025] The spacing of the ends of the fixing holes 24a, 24b and the mechanical fixing elements 18a, 18b allows the rotor housing 12 to expand when it becomes hotter during operation as part of a rotary machine, such as a rotary engine or a rotary compressor.

    [0026] An embodiment of the invention provides a rotary machine core assembly 40 as shown in Figure 3. The rotary machine core assembly 40 of this embodiment is similar to the rotary machine core assembly 10 of Figures 1 and 2, with the following modifications. The same reference numbers are retained for corresponding features.

    [0027] In this embodiment the fixing holes 42a, 42b each comprise open ended holes. Respective connecting bores 44 are provided between the ends of the fixing holes 42a, 42b of each pair. The connecting bores 44 have a smaller diameter than the fixing holes 42a, 42b so that the mechanical fixing elements 18a, 18b cannot extend into the respective connecting bore 44.

    [0028] The provision of the connecting bores 44 may increase the amount of thermally induced expansion which the rotor housing 12 is able to accommodate.

    [0029] An example not according to the invention provides a rotary machine core assembly 50 as shown in Figure 4. The rotary machine core assembly 50 of this example is similar to the rotary machine core assembly 10 of Figures 1 and 2, with the following modifications. The same reference numbers are retained for corresponding features.

    [0030] In this example the fixing holes 58a, 58b have larger diameter openings at the respective sides 12a, 12b of the rotor housing 12. The through holes 54, 56 have correspondingly larger openings at their ends which meet the fixing holes.

    [0031] The fixing holes 58a, 58b are spaced from each other, with a smaller separation, provided by a region 52 of solid metal between their ends.

    [0032] An example not according to the invention provides a rotary machine 60 as shown in Figure 5. The rotary machine 60 of this example takes the form of a rotary engine 60. It will be appreciated by the person skilled in the art that the rotary machine 60 may alternatively take the form of a rotary compressor.

    [0033] The rotary engine 60 comprises a rotary machine core assembly 10 as shown in Figure 1 and a rotor 62. The rotor 62 is located within the trochoid bore 20 of the rotor housing 12 and is arranged to rotate within the trochoid bore during operation of the engine 60. The operation of rotary engines will be well known to the person skilled in the art and will not be described in further detail here.


    Claims

    1. A rotary machine core assembly (10, 40, 50) comprising:

    a rotor housing (12) defining a trochoid bore (20), the rotor housing having a plurality of pairs of fixing holes (24a, 24b, 42a, 42b, 58a, 58b) provided therein, each pair of fixing holes comprising a first fixing hole (24a, 42a, 58a) extending from one side (12a) of the rotor housing part-way into the rotor housing and a second fixing hole (24b, 42b, 58b) extending from an opposing side (12b) of the rotor housing part-way into the rotor housing, the fixing holes being generally co-axially aligned such that they extend towards each other and each fixing hole having a depth such that the ends of the fixing holes are spaced from each other;

    a first endplate (14) located adjacent the one side of the rotor housing and a second endplate (16) located adjacent the opposing side of the rotor housing, each endplate having a plurality of through holes (30, 32, 54, 56) provided in it, the through holes being correspondingly located with the fixing holes on the respective side of the rotor housing;

    a plurality of mechanical fixing elements (18a, 18b), each mechanical fixing element being located through a respective through hole in one of the endplates and being received in the respective fixing hole in the rotor housing such that the ends of oppositely located fixing elements are spaced from each other; and

    wherein each mechanical fixing element (18a, 18b) extends part-way into the respective fixing hole characterized in that a respective connecting bore (44) is provided through the rotor housing between the ends of the oppositely located fixing holes (42a, 42b) of each pair, said connecting bore (42) has a diameter which is less than a diameter of each of the fixing holes (42a, 42b) of the respective pair.


     
    2. A rotary machine core assembly as claimed in claim 1, wherein the rotor housing additionally has at least one single fixing hole provided therein, extending from a respective one of the sides (12a, 12b) of the rotor housing part-way into the rotor housing, and at least one correspondingly located through hole is provided in a respective one of the endplates (14, 16), and at least one additional mechanical fixing element is located through the through hole in the respective endplate and is received in the single fixing hole.
     
    3. A rotary machine core assembly as claimed in any preceding claim wherein each mechanical fixing element comprises one of a threaded stud (18b) and a threaded bolt (18a).
     
    4. A rotary machine (60) comprising a rotary machine core assembly (10, 40, 50) as claimed in any preceding claim.
     
    5. A rotary engine (60) comprising a rotary machine core assembly (10, 40, 50) as claimed in of claims 1 to 3.
     
    6. A rotary compressor comprising a rotary machine core assembly (10, 40, 50) as claimed in of claims 1 to 3.
     


    Ansprüche

    1. Kerngehäusebaugruppe (10, 40, 50) einer Rotationsmaschine, umfassend:

    ein Rotorgehäuse (12), das eine trochoidale Bohrung (20), wobei das Rotorgehäuse eine Vielzahl darin vorgesehener Paare von Befestigungslöchern (24a, 24b, 42a, 42b, 58a, 58b) aufweist, jedes Paar von Befestigungslöchern ein erstes Befestigungsloch (24a, 42a, 58a), das sich ab einer Seite (12a) des Rotorgehäuses teilweise in das Rotorgehäuse erstreckt und ein zweites Befestigungsloch (24b, 42b, 58b) umfasst, das sich von einer entgegengesetzten Seite (12b) des Rotorgehäuses aus teilweise in das Rotorgehäuse erstreckt, wobei die Befestigungslöcher generell koaxial derartig ausgerichtet sind, dass sie sich in Richtung aufeinander erstrecken und jedes Befestigungsloch eine Tiefe derartig aufweist, dass die Enden der Befestigungslöcher voneinander beabstandet sind;

    eine erste Endplatte (14), die sich angrenzend an die eine Seite des Rotogehäuses befindet und eine zweite Endplatte (16), die sich angrenzend an die entgegengesetzte Seite des Rotorgehäuses befindet, wobei jede Endplatte eine Vielzahl darin vorgesehener Durchgangslöchern (30, 32, 54, 56) aufweist, wobei die Durchgangslöcher den Befestigungslöchern entsprechend auf der jeweiligen Seite des Rotorgehäuses positioniert sind;

    eine Vielzahl mechanischer Befestigungselemente (18a, 18b), wobei jedes mechanische Befestigungselement durch ein jeweiliges Durchgangsloch hindurch in einer der Endplatten positioniert wird und im jeweiligen Befestigungsloch im Rotorgehäuse derartig aufgenommen wird, dass die Enden von entgegengesetzt positionierten Befestigungselementen voneinander beabstandet sind; und

    wobei sich jedes mechanische Befestigungselement (18a, 18b) teilweise in das jeweilige Befestigungsloch erstreckt, dadurch gekennzeichnet, dass eine jeweilige Verbindungsbohrung (44) durch das Rotorgehäuse zwischen den Enden der entgegengesetzt positionierten Befestigungslöchern (42a, 42b) jedes Paares bereitgestellt ist, wobei die Verbindungsbohrung (42) einen Durchmesser aufweist, der geringer als ein Durchmesser jedes der Befestigungslöcher (42a, 42b) des jeweiligen Paares ist.


     
    2. Kerngehäusebaugruppe einer Rotationsmaschine wie in Anspruch 1 beansprucht, wobei das Rotorgehäuse zusätzlich mindestens ein einzelnes darin vorgesehenes Befestigungsloch aufweist, das sich von einer jeweiligen der Seiten (12a, 12b) des Rotogehäuses teilweise in das Rotorgehäuse erstreckt, und ein entsprechend positioniertes Durchgangsloch in einer jeweiligen der Endplatten (14, 16) bereitgestellt ist, und mindestens ein zusätzliches mechanisches Befestigungselement durch das Durchgangsloch hindurch in der jeweiligen Endplatte positioniert ist und im einzelnen Befestigungsloch aufgenommen wird.
     
    3. Kerngehäusebaugruppe nach einem vorhergehenden Anspruch, wobei jedes mechanische Befestigungselement einen Gewindezapfen (18b) und einen Gewindebolzen (18a) umfasst.
     
    4. Rotationsmaschine (60), die eine Kerngehäusebaugruppe (10, 40, 50) einer Rotationsmaschine, wie in einem vorhergehenden Anspruch beansprucht, umfasst.
     
    5. Rotationsmaschine (60), die eine Kerngehäusebaugruppe (10, 40, 50) einer Rotationsmaschine, wie in einem der Ansprüchen 1 bis 3 beansprucht, umfasst.
     
    6. Rotationskompressor, der eine Kerngehäusebaugruppe (10, 40, 50) einer Rotationsmaschine, wie in einem der Ansprüchen 1 bis 3 beansprucht, umfasst.
     


    Revendications

    1. Assemblage de corps central de machine rotative (10, 40, 50) comprenant :

    un logement de rotor (12) définissant un alésage trochoïde (20), le logement de rotor possédant une pluralité de paires de trous de fixation (24a, 24b, 42a, 42b, 58a, 58b) prévues dans celui-ci, chaque paire de trous de fixation comprenant un premier trou de fixation (24a, 42a, 58a) lequel s'étend à partir d'un côté (12a) du logement de rotor en partie jusque dans le logement de rotor, et un deuxième trou de fixation (24b, 42b, 58b) lequel s'étend à partir d'un côté opposé (12b) du logement de rotor en partie jusque dans le logement de rotor, les trous de fixation étant alignés co-axialement de manière générale de telle sorte qu'ils s'étendent l'un vers l'autre, et chaque trou de fixation ayant une profondeur de telle sorte que les extrémités des trous de fixation soient espacées l'une de l'autre ;

    une première plaque d'extrémité (14) localisée de manière adjacente audit côté du logement de rotor et une deuxième plaque d'extrémité (16) localisée de manière adjacente au côté opposé du logement de rotor, chaque plaque d'extrémité possédant une pluralité de trous traversants (30, 32, 54, 56) prévus dans celle-ci, les trous traversants étant localisés de manière correspondante avec les trous de fixation sur le côté respectif du logement de rotor ;

    une pluralité d'éléments de fixation mécanique (18a, 18b), chaque élément de fixation mécanique étant localisé à travers un trou traversant respectif ménagé dans l'une des plaques d'extrémité, et étant reçu dans le trou de fixation respectif ménagé dans le logement de rotor de telle sorte que les extrémités d'éléments de fixation localisés de manière opposée soient espacées l'une de l'autre ; et

    cas dans lequel chaque élément de fixation mécanique (18a, 18b) s'étend en partie jusque dans le trou de fixation respectif, caractérisé en ce qu'un alésage de raccordement respectif (44) est pratiqué à travers le logement de rotor entre les extrémités de trous de fixation localisés de manière opposée (42a, 42b) de chaque paire, ledit alésage de raccordement (42) ayant un diamètre qui est inférieur à un diamètre de chacun des trous de fixation (42a, 42b) de la paire respective.


     
    2. Assemblage de corps central de machine rotative tel que revendiqué dans la revendication 1, le logement de rotor possédant additionnellement au moins un trou de fixation individuel prévu dans celui-ci, lequel s'étend à partir d'un côté respectif parmi les côtés (12a, 12b) du logement de rotor en partie jusque dans le logement de rotor, et au moins un trou traversant localisé de manière correspondante étant prévu dans une plaque respective parmi les plaques d'extrémité (14, 16), et au moins un élément de fixation mécanique additionnel étant localisé à travers le trou traversant dans la plaque d'extrémité respective et étant reçu dans le trou de fixation individuel.
     
    3. Assemblage de corps central de machine rotative tel que revendiqué dans une quelconque revendication précédente, chaque élément de fixation mécanique comprenant un poste parmi un goujon fileté (18b) et un boulon fileté (18a).
     
    4. Machine rotative (60) comprenant un assemblage de corps central de machine rotative (10, 40, 50) tel que revendiqué dans une quelconque revendication précédente.
     
    5. Moteur rotatif (60) comprenant un assemblage de corps central de machine rotative (10, 40, 50) tel que revendiqué dans l'une des revendications 1 à 3.
     
    6. Compresseur rotatif comprenant un assemblage de corps central de machine rotative (10, 40, 50) tel que revendiqué dans l'une des revendications 1 à 3.
     




    Drawing




















    Cited references

    REFERENCES CITED IN THE DESCRIPTION



    This list of references cited by the applicant is for the reader's convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.

    Patent documents cited in the description