The present invention relates to an electric compressor.
In general electric compressors, a stator of an electric motor is shrink-fitted to an electric motor. However, apparatuses for shrink fitting are large in size and expensive, and the cycle time for the shrink fitting is prolonged by the necessity of time for heating and cooling. Furthermore, high dimensional accuracy is required for the inner diameter of a housing and the outer diameter of a stator. Japanese Patent Application Publication 2014-20231 discloses an electric compressor in which a guide member made of a sheet material is provided on the outer periphery of the stator and the stator is press-fitted on the inner peripheral surface of the housing by way of the guide member.
In the electric compressor of the above Publication, the guide member is movable in the peripheral direction of the rotary shaft relative to the stator core and therefore, displacement or slippage of the guide member in the peripheral direction may occur in press-fitting operation, with the result that the stator core may be damaged due to the contact of the stator core and the housing.
The present invention which has been made in light of the above problems is directed to providing an electric compressor in which the displacement or slippage of the guide member in the peripheral direction of the rotary shaft relative to the stator core is restricted.
In accordance with one aspect of the present invention, there is provided an electric compressor including a cylindrical housing, a rotary shaft accommodated and rotatably supported in the housing, a compression portion compressing refrigerant gas by rotation of the rotary shaft, a stator accommodated in the housing and fixed to an inner peripheral surface of the housing; a rotor accommodated in the housing and fixed on the rotary shaft, and a plurality of guide members disposed between the inner peripheral surface of the housing and an outer peripheral surface of a stator core of the stator. A plurality of recesses is recessed in a radial direction of the rotary shaft on the outer peripheral surface of the stator core of the stator and spaced apart from each other in a peripheral direction of the rotary shaft. The guide members are fitted in the respective recesses with a part of the guide members projecting radially outward beyond the outer peripheral surface of the stator core.
Other aspects and advantages of the invention will become apparent from the following description, taken in conjunction with the accompanying drawings, illustrating by way of example the principles of the invention.
The invention together with objects and advantages thereof, may best be understood by reference to the following description of the presently preferred embodiments together with the accompanying drawings in which;
The following will describe an embodiment according to the present invention with reference to the accompanying drawings. An electric compressor according to the present embodiment is designated by 10 and used for a vehicle air conditioner. Referring to
The motor housing 13 has therein a rotary shaft 16, a compression portion 17 having a compression chamber therein and driven by the rotary shaft 16 for compressing refrigerant gas, and an electric motor 18 rotating the rotary shaft 16. As the compression portion 17, a scroll type compressor, a piston type compressor, or a vane type compressor may be applied. The compression portion 17 and the electric motor 18 are disposed side by side in the direction of the rotational axis L of the rotary shaft 16. As shown in
The rotary shaft 16 is rotatably supported by the bottom wall 13a of the motor housing 13 through a bearing 19. As shown in
Referring to
Thus, the electric compressor 10 includes the cylindrical motor housing 13, the rotary shaft 16 accommodated and rotatably supported in the motor housing 13, and the compression portion 17 compressing refrigerant gas with the rotation of the rotary shaft 16. The electric compressor 10 further includes the stator 21 accommodated in the motor housing 13 and fixed to the inner peripheral surface 38 of the motor housing 13, or, the inner peripheral surface of the side wall 13b, and the rotor 20 accommodated in the motor housing 13 and fixed on the rotary shaft 16.
As shown in
As shown in
The stator core 21a of the stator 21 is made of a plurality of laminated electromagnetic steel plates. If such stator 21 is press-fitted in the motor housing 13 without using guide members such as 30, stress due to press-fitting is applied directly to the stator core 21a. The provision of the guide members 30 between the inner peripheral surface 38 of the motor housing 13 and the outer peripheral surface 39 of the stator core 21a prevents stress in press-fitting from being applied directly to the stator core 21a.
As shown in
In the present embodiment, the recess 40 is opened at the opposite ends of the stator core 21a in the axial direction of the rotary shaft 16. It is noted that, according to the present invention, the recess 40 may not be opened at the opposite ends of the stator core 21a in the axial direction of the rotary shaft 16.
As shown in
As shown in
As shown in
The strip portions 31, 32 are spaced away from each other in their width direction and integrated by the paired connecting portions 33, 34. The connecting portions 33, 34 are spaced away from each other in the longitudinal direction of the strip portions 31, 32. A rectangular hole 37 is defined by the strip portions 31, 32 and the connecting portions 33, 34.
It is noted that according to the present invention, the guide member 30 may have a structure in which a single strip portion or three strip portions or more are disposed and connected by connecting portions. Furthermore, the bent portions 35, 36 may be dispensed with.
The guide members 30 are fitted in the respective recesses 40 formed in the outer peripheral surface 39 of the stator core 21a. Specifically, each guide member 30 is disposed in the recess 40 of the stator core 21a in such an orientation that the length of the strip portions 31, 32 extends in the axial direction of the rotary shaft 16.
As shown in
As shown in
As shown in
The following will describe the function of the electric compressor 10 of the present embodiment. As shown in
By disposing the guide members 30 between the inner peripheral surface 38 of the motor housing 13 and the outer peripheral surface 39 of the stator core 21a, pressure is not directly applied to the stator core 21a in press-fitting of the stator core 21a, thereby to protect the stator core 21a.
The structure in which the guide member 30 is fitted in the recess 40 formed in the outer peripheral surface 39 of the stator core 21a prevents the guide member 30 from being moved in the peripheral direction of the stator core 21a. That is, the guide member 30 is prevented from the slipping or displacement in the peripheral direction of the rotary shaft 16 relative to the stator core 21a. As a result, the guide member 30 may be disposed at any position in the peripheral direction of the rotary shaft 16 between the inner peripheral surface 38 of the motor housing 13 and the outer peripheral surface 39 of the stator core 21a without a contact of the stator core 21a with the inner peripheral surface 38 of the motor housing 13.
In the electric compressor of the above-cited Japanese Patent Application Publication 2014-20231, the guide members may be moved in the peripheral direction of the rotary shaft in press-fitting the guide-member, with the result that the stator core may be damaged by the contact of the stator core and the housing.
According to the present embodiment, the guide members 30 are prevented from being moved relative to the stator core 21a in the peripheral direction of the rotary shaft 16. Therefore, the contact of the stator core 21a and the inner peripheral surface 38 of the motor housing 13 is prevented.
According to the above-described embodiment, the following advantageous effects are obtained.
(1) The guide members 30 which are fitted in the recesses 40 formed in the stator core 21a are prevented from being moved relative to the stator core 21a in the peripheral direction of the rotary shaft 16 and, therefore, the contact of the stator core 21a and the inner peripheral surface 38 of the motor housing 13 is prevented.
(2) The guide members 30 are fitted in the recesses 40 and a part of the guide members 30 projects radially outward beyond the outer peripheral surface 39 of the stator core 21a. Such a structure prevents the contact of the stator core 21a and the inner peripheral surface 38 of the motor housing 13.
(3) In the structure in which the guide members 30 are fitted in the recesses 40 of the stator core 21a with the bent portions 35, 36 facing the opposite axial ends of the stator core 21a, the movement of the guide members 30 relative to the stator core 21a in the axial direction of the rotary shaft 16 is restricted.
(4) The projections 50 which are provided on the inner peripheral surface 38 of the motor housing 13 serve as stops to regulate the movement of the stator core 21a in the axial direction of the rotary shaft 16, so that the stator core 21a does not move closer to the bottom wall 13a.
The present invention is not limited to the above-described embodiment; but may be modified into various alternative embodiments, as exemplified below.
The guide member 30 may be replaced with a guide member 60 and the motor housing 13 may be formed in the inner peripheral surface thereof with engagement holes 62, which will described later.
As shown in
The guide member 60 further includes an engagement portion 61 that is disposed between the paired strip portions 64, 65 and between the connecting portions 66, 67 and projects from the connecting portion 67 radially outward of the stator core 21a, and an accommodation hole 63 that is formed through the guide member 60 by bending the engagement portion 61. The engagement portion 61 is elastically deformed by receiving load from the direction opposite to the direction in which the engagement portion 61 projects, so that the accommodation hole 63 receives the engagement portion 61. The guide member 60 differs from the guide member 30 in that the engagement portion 61 is provided in a position corresponding to the hole 37 of the guide member 30. The engagement portion 61 of the guide member 60 is curved in an arc-like shape from the connecting portion 67 toward the distal end thereof.
The motor housing 13 has in the inner peripheral surface thereof a plurality of engagement holes 62 (one hole being shown in
In the press-fitting of the stator core 21a, the engagement portion 61 is brought into contact with the inner peripheral surface 38 of the motor housing 13, and, being pressed, elastically deformed into a flat state by receiving load from the direction opposite to the direction in which the engagement portion 61 projects. Thus, the engagement portion 61 is brought into and received by the accommodation hole 63. When the engagement portion 61 comes to the position of the engagement hole 62 and is placed in the engagement hole 62, as shown in
Therefore, the provision of the engagement portion 61 and the engagement hole 62 permits to regulate movement of the guide member 60 in the peripheral direction of the rotary shaft 16 relative to the stator core 21a.
It is noted that according to the present invention, the number of the engagement portions 61 is not limited and also that the accommodation hole 63 may be provided in the form of a recess. The engagement portion 61 of the guide member 60 of a rectangular shape and bent in an arc-like shape from the connecting portion 67 may be formed otherwise. The guide member 60 may dispense with the accommodation hole 63. That is, the guide member may be formed having only a plate and an engagement portion projecting from the plate radially outward of the rotary shaft, or in the thickness direction of the plate. For example, it is conceivable to provide a guide member having only a plate and an engagement portion having a hemispherical shape and projecting from the plate.
Although the motor housing 13 has therein the engagement holes 62 and the guide member 60 has therein the engagement portion 61, as shown in
As shown in
The bent portions 72, 73 are bent so as to project in the opposite direction to the projecting direction of the flanges 74, 75. As shown in
Such structure regulates the movement of the guide member 70 relative to the stator 21 in the peripheral direction of the rotary shaft 16. The engagement projection 77 projecting from the inner peripheral surface 38 of the motor housing 13 is not limited to the size shown in
In the structure shown in
As shown in
The guide members 30, 60 or 70 may be fixed to the stator core 21a with adhesive. Specifically, the guide members 30, 60 or 70 may be fixed to the stator core 21a with adhesive applied previously to the bottom of the recesses 40, 76. In this case, the guide members 30, 60 or 70 may dispense with the bent portions 35, 36, 72, and 73.
The shape of the guide member 30, 60 or 70 is not limited to a rectangular shape, but may be changed as long as part of the guide member 30, 60 or 70 extends radially outward beyond the rotary shaft 16 from the outer peripheral surface 39 of the stator core 21a.
The electric compressor 10 may be used for any other applications than vehicles.
Number | Date | Country | Kind |
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2016-072532 | Mar 2016 | JP | national |