Electric axle device for vehicles
By mounting the inverter on the electric motor housing with a dynamic damper and supporting it stably, the inverter is protected from vibrations, enhancing durability and reliability in electric axle devices.
Patent Information
- Application Number
- JP2023045299
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-22
- Publication Date
- 2025-10-14
- Estimated Expiration
- 2043-03-22
AI Technical Summary
Inverters in electric axle devices for vehicles are vulnerable to vibrations, which can lead to damage and reduced reliability due to cable deformation and connector stress.
The inverter is mounted on the electric motor housing with a dynamic damper attached to its upper surface, comprising an elastic member and mass body, and is supported at multiple points to stabilize it, while a dynamic damper is used to suppress vibrations.
The solution effectively protects the inverter from vibrations, improving durability and reliability by preventing cable deformation and connector damage, and suppressing resonance.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an electric axle device for a vehicle. [Background technology]
[0002] In rigid axle suspension systems used in trucks and other vehicles, an axle housing containing a differential is connected to the vehicle body via springs such as leaf springs. In recent years, there have been examples of vehicles incorporating a reduction gear and an electric motor as a single unit, creating an electric axle device for a vehicle. Using this electric axle device for a vehicle makes it relatively easy to electrify existing vehicles. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-150658 [Patent Document 2] Patent Publication No. 2021-24327 Summary of the Invention [Problem to be solved by the invention]
[0004] Incidentally, an inverter is electrically connected to the electric motor to control its rotation, and since the inverter is an electrical component, it needs to be protected from vibrations.
[0005] The present disclosure has been made in view of the above circumstances, and has an object to provide an electric axle device for a vehicle that can protect an inverter from vibration. [Means for solving the problem]
[0006] According to one aspect of the present disclosure, an axle housing for accommodating a differential device; a reducer attached to the axle housing; an electric motor attached to the reducer; an inverter attached to at least one of the reducer and the electric motor; a dynamic damper attached to the inverter; An electric axle device for a vehicle is provided, comprising:
[0007] Preferably, the inverter is mounted on a housing of at least one of the reducer and the electric motor, The dynamic damper is attached to the upper surface of the inverter.
[0008] Preferably, the inverter has a lower portion and an upper portion provided on the lower portion and smaller than the lower portion in a plan view, The dynamic damper is attached to the upper surface of the lower portion where the upper portion is not provided.
[0009] Preferably, the dynamic damper includes an elastic member and a mass body embedded in the elastic member.
[0010] Preferably, the length of the elastic member and the mass is greater than the width.
[0011] Preferably, the dynamic damper includes a bracket attached to the inverter and having a folded cross-sectional shape, The elastic member is fixed to the inner surface of the bracket, with the side surfaces at both widthwise ends of the elastic member fixed to the bracket, and the end surfaces at both lengthwise ends not fixed to the bracket.
[0012] Preferably, in the mounted state of the dynamic damper, the length direction of the elastic member is parallel to the left-right direction or the front-rear direction of the vehicle. [Effects of the Invention]
[0013] According to the present disclosure, the inverter can be protected from vibrations. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 is a schematic perspective view showing an electric axle device according to a basic embodiment of the present disclosure. [Figure 2] FIG. 2 is a skeleton diagram showing a power transmission system of the electric axle device. [Figure 3] FIG. 2 is an exploded perspective view showing the configuration of a mounting portion for an inverter. [Figure 4] FIG. 2 is a plan view showing the electric axle device before an inverter is attached. [Figure 5] FIG. 2 is a plan view showing the electric axle device after the inverter has been installed. [Figure 6] FIG. 2 is a perspective view showing a dynamic damper. [Figure 7] FIG. 7 is a cross-sectional view taken along line VII-VII in FIG. 6. [Figure 8] FIG. 10 is an exploded perspective view showing a method for attaching the dynamic damper. [Figure 9] FIG. 10 is a schematic perspective view showing an electric axle device according to a first modified example. [Figure 10] FIG. 10 is a perspective view showing a mounting state of a dynamic damper in a first modified example. [Figure 11] FIG. 10 is a schematic perspective view showing an electric axle device according to a second modified example. [Figure 12] FIG. 10 is a plan view showing an electric axle device according to a second modified example. [Figure 13] FIG. 10 is a perspective view showing a dynamic damper of a third modified example. [Figure 14] 14 is a cross-sectional view taken along the line XIV-XIV in FIG. 13. [Figure 15] FIG. 11 is a vertical cross-sectional view showing the configuration of a mounting portion for an inverter in a fourth modified example. [Figure 16] FIG. 13 is a vertical cross-sectional view showing the configuration of a mounting portion for an inverter in a modified example of the fourth modified example. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, embodiments of the present disclosure will be described with reference to the accompanying drawings. Note that the present disclosure is not limited to the following embodiments.
[0016] [Basic embodiment] FIG. 1 is a schematic perspective view showing an electric axle device according to a basic embodiment of the present disclosure. The electric axle device 100 is applied to a vehicle, and in this embodiment, is configured to be applied to a truck. However, the type of vehicle is arbitrary. The electric axle device 100 is configured to drive the left and right rear wheels (not shown) and forms part of a rigid axle (or axle-mounted) suspension system for the rear wheels.
[0017] For convenience, the front, rear, left, right, top and bottom directions are defined as shown in the figure, and these directions correspond to the directions of the vehicle.
[0018] The electric axle device 100 includes an axle housing 1 for accommodating a differential device, a reduction gear 2 attached to the axle housing 1, an electric motor 3 attached to the reduction gear 2, an inverter 4 attached to at least one of the reduction gear 2 and the electric motor 3, and a dynamic damper (dynamic vibration absorber) 50 attached to the inverter 4. The electric axle device 100 of this embodiment does not include a differential device, but may include one.
[0019] 2 is a skeleton diagram showing the power transmission system of the electric axle device 100 including the differential device 5. The reducer 2 includes a gear mechanism 6 and a housing that houses the gear mechanism 6, i.e., a reducer housing 7. The electric motor 3 includes electrical components (not shown), such as a stator and a rotor, and a housing that houses these electrical components, i.e., an electric motor housing 8. The reducer housing 7 is detachably attached to the axle housing 1 with bolts or the like. The electric motor housing 8 is detachably attached to the reducer housing 7 with bolts or the like.
[0020] The gear mechanism 6 includes a drive shaft 10 coaxially connected to the output shaft 9 of the electric motor 3, a reduction shaft 11 provided parallel to the drive shaft 10, a drive gear 12 and a reduction gear 13 attached to the drive shaft 10 and the reduction shaft 11, respectively, and meshing with each other, a drive gear 14 attached to the reduction shaft 11, and a plurality of bearings 15 fixed to the reducer housing 7 and rotatably supporting the drive shaft 10 and the reduction shaft 11. The number of teeth of the reduction gear 13 is greater than the number of teeth of the drive gear 12. The reduction shaft 11 is positioned rearward of the drive shaft 10.
[0021] As is well known, the differential device 5 includes a differential case 16, a plurality of bearings 17 fixed to the axle housing 1 and rotatably supporting the differential case 16, and a driven gear 18 fixed to the differential case 16 and meshed with the drive gear 14. The differential device 5 also includes a plurality of differential pinion gears 19 rotatably supported within the differential case 16, and left and right side gears 20 rotatably supported within the differential case 16 and meshed with the plurality of differential pinion gears 19. Left and right axle shafts 21 are connected to the left and right side gears 20, respectively. The left and right side gears 20 and the left and right axle shafts 21 are arranged coaxially.
[0022] The drive gear 14 and the driven gear 18 are parallel-axis gears (spur gears, helical gears, etc.). This makes them easier to manufacture and improves vibration and noise performance compared to intersecting-axis gears (bevel gears, etc.). The drive gear 12 and the reduction gear 13 are also parallel-axis gears.
[0023] Alternatively, the drive gear 12 and the reduction gear 13, and the drive gear 14 and the driven gear 18 may be intersecting-axis gears.
[0024] The center of the output shaft 9 of the electric motor 3 is called the electric motor center C1. The center of the drive shaft 10 of the reducer 2 is called the reducer center C2. The center of the axle shaft 21 is called the axle shaft center C3. The electric motor center C1 and the reducer center C2 are parallel, particularly coaxial, and the electric motor center C1 and the axle shaft center C3 are parallel.
[0025] As shown in Figure 1, the axle housing 1 of this embodiment is a banjo type and integrally includes a differential case housing 22 that houses the differential case 16 and left and right axle shaft housings 23 that respectively house the left and right axle shafts 21. A flange 24 is integrally formed at the tip of each axle shaft housing 23 for connecting an axle hub (not shown) or the like. In addition, a spring seat 25 for seating a spring such as a leaf spring is integrally formed at the upper tip of each axle shaft housing 23.
[0026] The reducer 2 or reducer housing 7 is attached to the front portion of the differential case storage portion 22. The electric motor 3 or electric motor housing 8 is attached to the left side surface of the reducer 2 or reducer housing 7. Flanges 26, 27 are provided on the mounting portions of the reducer housing 7 and the electric motor housing 8, respectively. These flanges 26, 27 are detachably attached to each other with bolts or the like (not shown).
[0027] The reducer housing 7 is formed in a generally rectangular box shape, while the motor housing 8 is formed in a generally cylindrical shape. The left-to-right width dimension of the reducer housing 7 is smaller than the top-to-bottom height dimension and the front-to-back depth dimension, but the height dimension and depth dimension are approximately equal. The motor housing 8 is formed in a cylindrical shape coaxial with the motor center C1, and its right end (one end) toward the motor center is integrally joined to the flange 27, while its left end (the other end) is closed.
[0028] As is well known, the inverter 4 is an electric component for controlling the rotation of the electric motor 3. In this embodiment, the inverter 4 is attached to the electric motor 3.
[0029] The inverter 4 is generally shaped like a two-tiered rectangular box, with a width W, a height H, and a depth L. The height H is smaller than the width W and the depth L, and the width W is slightly larger than the depth L. The inverter 4 also has a lower portion 4A and an upper portion 4B that is located on top of the lower portion 4A and is smaller than the lower portion 4A in a planar view. In this embodiment, the inverter 4 has a shape similar to a larger rectangular parallelepiped lower portion 4A combined with a smaller rectangular parallelepiped upper portion 4B in a planar view. The lower portion 4A has the aforementioned width W and depth L. The upper portion 4B has a width WB approximately equal to the width W of the lower portion 4A and a depth LB smaller than the depth L of the lower portion 4A, and is disposed along the rear edge of the upper portion 4B. The sum of the height H of the lower portion 4A and the upper portion 4B is a heat sink 28. Two heat sinks 28 protrude from the right end of the front surface of the upper portion 4B.
[0030] In this embodiment, the inverter 4 is mounted on the motor housing 8. The motor housing 8 is provided with a boss 29 that stands upward, and the inverter 4 is mounted on the boss 29. In particular, a flange 30 that protrudes laterally is provided on a bottom surface portion 33 of the inverter 4, and the flange 30 is mounted on the boss 29.
[0031] 3 and 4, the boss 29 is a cylindrical boss that stands upward from the motor housing 8, and has a boss hole 32, which is a female threaded hole into which a bolt 31 is screwed, formed on its upper end surface. The boss 29 is formed on the motor housing 8 by welding or integral molding, or by other methods. The inverter 4 is generally attached to the four corners of a rectangle in plan view, and therefore a total of four bosses 29 are provided corresponding to this. The position and length of the bosses 29 are set so that when the inverter 4 is attached on the bosses 29, the inverter 4 is spaced upward from the motor housing 8 and does not interfere with the motor housing 8, so that it is floating above the motor housing 8.
[0032] A bottom surface portion 33 is formed at the lower portion 4A of the inverter 4. This bottom surface portion 33 is formed as a rectangle whose width is longer than its depth in a plan view. Front and rear side surfaces 34 (only the front side is shown in FIG. 3 ) and left and right side surfaces 35 (only the left side is shown in FIG. 3 ) extend vertically from the bottom surface portion 33. The depth between the front and rear side surfaces 34 is slightly smaller than the depth of the bottom surface 33, and the width between the left and right side surfaces 35 is also slightly smaller than the width of the bottom surface 33. Therefore, the bottom surface 33 protrudes horizontally outward from the front and rear side surfaces 34 and the left and right side surfaces 35. Here, "outward" refers to the direction away from the geometric center of the bottom surface 33 in a plan view. The bottom surface 33 has front, rear, left, and right bottom surface end surfaces 36 located at its outermost positions, and a bottom surface top surface 37 extending between the end surfaces 36 and the side surfaces 34 and 35.
[0033] As shown in Figure 5, the flanges 30 are generally provided at the four corners of the bottom surface portion 33 in a plan view. More specifically, the flanges 30 are integrally provided at the left and right ends of the front and rear edge portions of the bottom surface portion 33 by methods such as welding or casting. The flanges 30 may also be provided by other methods such as screw fastening. A total of four flanges 30, one for the front, one for the left, and one for the right, are arranged symmetrically front to back and left to right. Therefore, only the front left flange 30 shown in Figure 3 will be described in detail here.
[0034] The flange 30 has a U-shape with a rounded tip in a plan view and includes a flange hole 38 as a through-hole through which the bolt 31 is inserted. The thickness t1 of the flange 30 in the height direction is greater than the thickness t2 of the bottom surface 33. The base end of the flange 30 also has a stepped shape to match the stepped shape formed by the front side surface 34 of the inverter 4, the bottom upper surface 37, and the bottom end surface 36. That is, the base end of the flange 30 has an upper end surface 39, a middle stepped surface 40, and a lower end surface 41 that form the stepped shape. The upper end surface 39 is fixed to or integrally attached to the side surface 34, the middle stepped surface 40 is fixed to or integrally attached to the bottom upper surface 37, and the lower end surface 41 is fixed to or integrally attached to the bottom end surface 36. This configuration allows the flange 30 to be firmly fixed to or integrally attached to the bottom surface 33.
[0035] The bottom surface of the flange 30 is flush with the bottom surface of the bottom portion 33 of the inverter 4. The radius of curvature of the tip of the flange 30 in plan view is equal to or slightly smaller than the radius of the boss 29.
[0036] As shown in Figures 1 and 3, when attaching the inverter 4 to the electric motor 3 or the electric motor housing 8, the flanges 30 at the four corners of the inverter 4 are placed and seated on the four bosses 29, respectively, and aligned so that the flange holes 38 are coaxial with the boss holes 32. Then, for each pair of flanges 30 and bosses 29, bolts 31 are inserted from above into the flange holes 38 and tightened into the boss holes 32. This completes the attachment of the inverter 4, and the inverter 4 is attached to the electric motor housing 8 while being spaced slightly above (floating) from the electric motor housing 8. This prevents the inverter 4 from being directly subjected to vibrations from the electric motor 3 or the electric motor housing 8, improving the durability of the inverter 4.
[0037] FIG. 4 shows the electric axle device 100 (axle housing 1, reduction gear 2, and electric motor 3) before the inverter 4 is attached. In contrast, FIG. 5 shows the electric axle device 100 after the inverter 4 has been attached. As shown in FIG. 5, the inverter 4 is attached slightly to the left of the flange 27 of the electric motor housing 8. This prevents interference between the inverter 4 and the flange 27 and prevents the inverter 4 from being subjected to direct vibrations from the flange 27, improving the durability of the inverter 4.
[0038] Generally, the inverter is attached to the vehicle body and connected to the electric motor by a cable. However, if the distance from the electric motor to the inverter is long, a relatively long cable must be routed along a predetermined route, which makes assembly difficult.
[0039] Furthermore, when the vehicle is running, the axle housing rises and falls, and the electric motor rises and falls accordingly. Meanwhile, the inverter is fixed to the vehicle body. Therefore, the cable must repeatedly deform as the electric motor rises and falls relative to the inverter, which can damage or break the cable. Furthermore, unnecessary loads are placed on the connectors connecting the cable to the inverter and electric motor, which can damage the connector connections. All of these factors lead to reduced reliability.
[0040] However, in this embodiment, the inverter 4 is attached to the electric motor 3. The inverter 4 and the electric motor 3 are electrically connected by a cable (not shown) located outside of them. Because the distance between the inverter 4 and the electric motor 3 is short, the routing and connection of the cable is very easy. This significantly improves the ease of assembly.
[0041] Furthermore, when the axle housing 1 and electric motor 3 move up and down while the vehicle is running, the inverter 4 also moves up and down together with the electric motor 3. This prevents relative movement between the inverter 4 and electric motor 3, preventing deformation of the cables when they move up and down. This prevents damage or breakage of the cables due to relative movement between the two. Furthermore, unnecessary loads are not placed on the connectors connecting the cables to the inverter 4 and electric motor 3, preventing damage to the connector connections. This significantly improves reliability.
[0042] Incidentally, when the vehicle is running, the axle housing 1 may twist (wind up) around the axle shaft center C3, and this twisting may cause the electric motor 3 to vibrate around the axle shaft center C3. Even in this case, since the inverter 4 is attached to the electric motor 3, there is no relative movement between the two, preventing damage to the cables and connector connections.
[0043] In this embodiment, the inverter 4 is supported from below on the motor housing 8 at multiple points (four points), so that the inverter 4 can be supported stably.
[0044] Next, a description will be given of the dynamic damper 50. The dynamic damper 50 is used to suppress vibrations of the inverter 4 that occur when the vehicle is running, and to protect the inverter 4 from vibrations.
[0045] As shown in FIGS. 6 to 8, the dynamic damper 50 includes a bracket 51 attached to the inverter 4 and having a folded cross-sectional shape, an elastic member 52 fixed to the inner surface of the bracket 51, and a mass body 53 embedded in the elastic member 52. The dynamic damper 50 has a length Ld, a width Wd, and a height Hd, with the length Ld being greater than the width Wd. Here, the directions along the length Ld, width Wd, and height Hd of the dynamic damper 50 are referred to as the length direction, width direction, and height direction. Furthermore, the dimensions of each element of the dynamic damper 50 in the length direction, width direction, and height direction are referred to as the length, width, and height, respectively.
[0046] Bracket 51 is formed by bending a metal (e.g., iron) plate. Bracket 51 is bent along imaginary bending lines along the length direction, and has a generally U-shaped cross section with an open lower portion in the height direction or an angular U-shaped cross section. Both ends of bracket 51 in the length direction are open. Flanges 54 that protrude outward in the width direction are formed at the lower ends of both ends of bracket 51 in the width direction, and these flanges 54 are attached to inverter 4 with bolts 55. Each of flanges 54 on both ends in the width direction has a plurality (two) of through-holes 56 formed therein, and bolts 55 are inserted from above into each flange hole 56 and fastened to female-threaded mounting holes 57 of inverter 4.
[0047] The elastic member 52 is made of an elastic material such as rubber and is integrally fixed to the bracket 51 by adhesive, casting, or other methods. The elastic member 52 is formed in a flat rectangular parallelepiped shape and is fitted and integrally fixed to the inner surface of the bracket 51. The elastic member 52 is fixed to the inner surface or back side of the top surface 51A and the side surfaces 51B at both widthwise ends of the bracket 51. The height of the elastic member 52 is smaller than the height of the inner surface of the bracket 51. Therefore, when the dynamic damper 50 is attached, the bottom surface of the elastic member 52 does not contact the inverter 4 and is separated from the inverter 4. This allows the elastic member 52 to vibrate freely in the height direction, allowing the elastic member 52 to fully function. The length of the elastic member 52 is slightly shorter than the length of the bracket 51 so that the elastic member 52 does not protrude from the bracket 51 in the lengthwise direction.
[0048] The mass body 53 is made of a metal (for example, iron) plate or block and is formed in the shape of a flat rectangular parallelepiped that is slightly smaller than the elastic member 52, and is completely embedded inside and at the center of the elastic member 52. Note that a portion of the mass body 53 may be exposed rather than embedded in the elastic member 52. The mass body 53 has a length, width, and height smaller than those of the elastic member 52.
[0049] As can be seen from the figure, the length of the elastic member 52 and the mass body 53 is greater than the width. Furthermore, the side surfaces of the elastic member 52 at both widthwise ends are fixed to both side surfaces 51B of the bracket 51, but the end surfaces at both lengthwise ends are not fixed to the bracket 51. In other words, the elastic member 52 is constrained in the widthwise direction by the bracket 51, but is not substantially constrained in the lengthwise direction. Therefore, the unit of the elastic member 52 and the mass body 53 (referred to as a mass body unit) has the characteristic that it does not vibrate easily in the widthwise direction but vibrates easily in the lengthwise direction. Therefore, the dynamic damper 50 has directionality in which its vibration damping performance is superior in the lengthwise direction to that in the widthwise direction.
[0050] The dynamic damper 50 is attached to the upper surface of the inverter 4. More specifically, the dynamic damper 50 is attached to the upper surface 4Au of the lower portion 4A of the inverter 4, which is not provided with the upper portion 4B. Therefore, a total of four mounting holes 57 are provided on the upper surface 4Au of the lower portion 4A.
[0051] In this embodiment, the depth dimension LB of the upper portion 4B is smaller than the depth dimension L of the lower portion 4A, and the upper portion 4B is disposed along the rear edge of the lower portion 4A. As a result, there is empty space in front of the upper portion 4B and above the lower portion 4A, and this empty space is effectively utilized to install the dynamic damper 50. As a result, even when the dynamic damper 50 is installed in the inverter 4, the overall size does not needlessly increase, and compactness can be achieved.
[0052] In this embodiment, the dynamic damper 50 is attached laterally to the inverter 4. Here, the orientation of the inverter 4 refers to the orientation of the length Ld direction of the inverter 4, and the horizontal orientation refers to the orientation in which the length Ld direction of the dynamic damper 50 is parallel to the left-right direction of the vehicle. Therefore, when the dynamic damper 50 is attached, the length directions of the elastic member 52 and the mass body 53 are parallel to the left-right direction of the vehicle.
[0053] The dynamic damper 50 can be installed in any orientation, but due to the aforementioned directionality, there is an orientation that provides the best vibration-damping effect. In this embodiment, this orientation was determined through testing and other means, and based on the results, the dynamic damper is installed horizontally. However, since the orientation that provides the best vibration-damping effect is likely to differ depending on the type of vehicle, usage conditions, and installation method of the inverter 4, it is preferable to optimally set the installation orientation to accommodate these variations in orientation.
[0054] When installing the dynamic damper 50, the flange 54 is seated on the upper surface 4Au of the lower part 4A, and the positions of the flange holes 56 are aligned with the positions of the mounting holes 57. Then, bolts 55 are inserted into each flange hole 56 from above and tightened into the mounting holes 57 of the inverter 4. This completes the installation of the dynamic damper 50.
[0055] To prevent the dynamic damper 50 from protruding from the upper surface 4Au of the lower part 4A, the width Wd of the dynamic damper 50 is set equal to or shorter than the length (L direction) dimension of the upper surface 4Au of the lower part 4A located in front of the upper part 4B. The length Ld of the dynamic damper 50 is also set significantly shorter than the width (W direction) dimension of the upper surface 4Au. The dynamic damper 50 is installed in the center of the width direction (W direction) of the empty space to the left of the heat dissipation member 28. Because the height Hd of the dynamic damper 50 is smaller than the height (H direction) dimension of the upper part 4B, the dynamic damper 50 is prevented from protruding above the upper part 4B.
[0056] Now, when the inverter 4 is attached to the electric motor 3 as in this embodiment, vibrations of the electric motor 3 that occur when the vehicle is running are transmitted to the inverter 4, and there is a risk that the inverter 4 may be damaged.
[0057] However, in this embodiment, the dynamic damper 50 is attached to the inverter 4, so that the vibration of the inverter 4 can be suppressed by the dynamic damper 50, and the inverter 4 can be protected from the vibration. As a result, the durability of the inverter 4 can be improved.
[0058] In particular, vibrations mainly of relatively high frequency are input from the electric motor 3 to the inverter 4, and if the frequency of these vibrations is close to the natural frequency of the inverter 4, there is a high possibility that the inverter 4 will resonate and be damaged. However, the dynamic damper 50 is tuned to suppress this resonance, and as a result, damage to the inverter 4 due to resonance can be suppressed, and the durability of the inverter 4 can be improved.
[0059] Since the resonance of the inverter 4 is considered to have a directionality, the maximum vibration damping effect can be obtained by setting the direction of the dynamic damper 50 so that the direction of the directivity of the dynamic damper 50 matches the direction of this directionality. In this embodiment, since the direction of the resonance of the inverter 4 is mainly in the left-right direction of the vehicle, the directivity of the dynamic damper 50 is also adjusted to match the left-right direction of the vehicle.
[0060] Furthermore, in this embodiment, the dynamic damper 50 is attached to the upper surface of the inverter 4, which makes it easy to attach the dynamic damper 50 and allows the dynamic damper 50 to be stably supported from below.
[0061] Next, a modified example of the present disclosure will be described. Note that the same reference numerals are used in the drawings to designate the same parts as those in the basic embodiment, and the description thereof will be omitted. The following mainly describes the differences from the basic embodiment.
[0062] [First Modification] 9 and 10 show a first modified example. As shown in the figures, in this modified example, the dynamic damper 50 is attached to the inverter 4 in a vertical orientation. Here, "vertical orientation" refers to an orientation in which the length Ld direction of the dynamic damper 50 is parallel to the fore-and-aft direction of the vehicle. Therefore, with the dynamic damper 50 attached, the length directions of the elastic member 52 and the mass body 53 are parallel to the fore-and-aft direction of the vehicle.
[0063] As the orientation of the dynamic damper 50 is changed, the position of the mounting hole 57 of the inverter 4 is also changed. To prevent the dynamic damper 50 from protruding from the upper surface 4Au of the lower part 4A, the length Ld of the dynamic damper 50 is set equal to or shorter than the length (L direction) dimension of the upper surface 4Au of the lower part 4A located in front of the upper part 4B. The width Wd of the dynamic damper 50 is set significantly smaller than the width (W direction) dimension of the upper surface 4Au. The dynamic damper 50 is installed in the center of the width direction (W direction) of the empty space to the left of the heat dissipation member 28. Because the height Hd of the dynamic damper 50 is smaller than the height (H direction) dimension of the upper part 4B, the dynamic damper 50 is prevented from protruding above the upper part 4B.
[0064] In this embodiment, since the direction of resonance of the inverter 4 is mainly in the longitudinal direction of the vehicle, the direction of the directivity of the dynamic damper 50 is also adjusted to coincide with the longitudinal direction of the vehicle.
[0065] [Second Modification] 11 and 12 show a second modified example. As shown in the figures, in this modified example, the inverter 4 is attached to the reducer 2. Meanwhile, the dynamic damper 50 is attached laterally to the inverter 4, as in the basic embodiment.
[0066] More specifically, the inverter 4 is mounted on the reducer housing 7. The reducer housing 7 is provided with a boss 29 that stands upright, and the inverter 4 is mounted on the boss 29. In particular, a flange 30 provided on a bottom surface 33 of the inverter 4 is mounted on the boss 29.
[0067] The flanges 30 are provided in three locations: one at the front edge of the bottom surface 33 and two at the rear edge. Correspondingly, three bosses 29 are also provided on the reducer housing 7. The three bosses 29 are provided upright on the top surface of the reducer housing 7, which is a substantially horizontal, flat surface. As can be seen from FIG. 7 , the three flanges 30 are arranged offset to the left side of the bottom surface 33. This is because the left-to-right width of the top surface of the reducer housing 7 is shorter than the left-to-right width of the motor housing 8. As described above, the inverter 4 is mounted spaced apart (floating) above the reducer housing 7. The inverter 4 is also mounted slightly spaced to the right from the flange 26 of the reducer housing 7. This prevents the inverter 4 from being directly subjected to vibration from the flange 26, thereby improving the durability of the inverter 4.
[0068] The advantages of this modification are the same as those of the basic embodiment. That is, even when the inverter 4 is attached to the reducer housing 7, the distance from the electric motor 3 is much shorter than when it is attached to the vehicle body. Therefore, the routing and connection of cables is very easy, and assembly can be significantly improved.
[0069] Furthermore, when the vehicle is running, the axle housing 1, reduction gear 2, electric motor 3, and inverter 4 move up and down as a unit. This prevents relative movement between the inverter 4 and electric motor 3, preventing deformation of the cables when the vehicle is moving up and down. This prevents damage or breakage of the cables due to relative movement between the two. Furthermore, unnecessary load is not placed on the connectors connecting the cables to the inverter 4 and electric motor 3, preventing damage to the connector connections. This significantly improves reliability.
[0070] When the axle housing 1 twists while the vehicle is running, the reducer 2, electric motor 3, and inverter 4 vibrate together around the axle shaft center C3. This prevents relative movement between the inverter 4 and electric motor 3, preventing damage to the cables and connector connections.
[0071] In this modified example, the dynamic damper 50 is also attached to the inverter 4, so that the inverter 4 can be protected from vibration and the durability of the inverter 4 can be improved. In particular, vibrations that are mainly of relatively high frequency are input from the reducer 2 to the inverter 4, and if the frequency of these vibrations is close to the natural frequency of the inverter 4, there is a high possibility that the inverter 4 will resonate and be damaged. However, the dynamic damper 50 is tuned to suppress this resonance, and as a result, damage to the inverter 4 due to resonance can be suppressed, and the durability of the inverter 4 can be improved.
[0072] In this modification, as in the first modification, the dynamic damper 50 can be attached to the inverter 4 in a vertical orientation, or in any other orientation.
[0073] [Third Modification] A third modified example is shown in Figures 13 and 14. As shown in the figures, in this modified example, the configuration of the dynamic damper 50 is changed.
[0074] As described above, the dynamic damper 50 includes a bracket 51 having a folded cross-sectional shape, an elastic member 52 fixed to the inner surface of the bracket 51, and a mass body 53 embedded in the elastic member 52. The dynamic damper 50 has a length Ld, a width Wd, and a height Hd, with the length Ld being greater than the width Wd.
[0075] Bracket 51 is formed by bending a metal (e.g., iron) plate. Bracket 51 is bent into an arc-shaped cross section about an imaginary bending centerline along the length direction, and has a generally U-shaped cross section that is open downward in the height direction. Both ends of bracket 51 in the length direction are open. Flanges 54 that protrude outward in the width direction are formed at the lower ends of both ends of bracket 51 in the width direction, and these flanges 54 are attached to inverter 4 with bolts 55. Each of flanges 54 on both ends in the width direction has a plurality (two) of through-holes, i.e., flange holes 56 (see FIG. 8), and bolts 55 are inserted from above into each flange hole 56 and fastened to female-threaded mounting holes 57 (see FIG. 8) of inverter 4.
[0076] The elastic member 52 is made of an elastic material such as rubber and is integrally fixed to the bracket 51 by adhesive, casting, or other methods. The elastic member 52 is formed in a cylindrical shape extending in the longitudinal direction and is fitted and integrally fixed to the inner surface of the bracket 51. The elastic member 52 is fixed to the inner surface or back side of the upper surface 51A of the semi-cylindrical bracket 51. The height of the elastic member 52 is smaller than the height of the inner surface of the bracket 51. Therefore, when the dynamic damper 50 is attached, the lower surface of the elastic member 52 does not contact the inverter 4 and is separated from the inverter 4. This allows the elastic member 52 to vibrate freely in the height direction, allowing it to fully function. The length of the elastic member 52 is slightly shorter than the length of the bracket 51 so that the elastic member 52 does not protrude from the bracket 51 in the longitudinal direction.
[0077] The mass body 53 is made of a metal (e.g., iron) rod and is formed into a cylindrical shape that is slightly smaller than the elastic member 52, and is completely embedded coaxially within and at the center of the elastic member 52. Note that a portion of the mass body 53 may be exposed rather than embedded in the elastic member 52. The mass body 53 has a length, width, height, and outer diameter that are smaller than those of the elastic member 52.
[0078] The length of the elastic member 52 and the mass body 53 is greater than the width. Furthermore, the side surfaces of the elastic member 52 on both widthwise ends are fixed to the bracket 51, but the end surfaces on both lengthwise ends are not fixed to the bracket 51. In other words, the elastic member 52 is constrained in the widthwise direction by the bracket 51, but is not substantially constrained in the lengthwise direction. Therefore, the unit of the elastic member 52 and the mass body 53 (mass body unit) has the characteristic that it does not vibrate easily in the widthwise direction but vibrates easily in the lengthwise direction. Therefore, the dynamic damper 50 has directionality in which its vibration damping performance is superior in the lengthwise direction to that in the widthwise direction.
[0079] The dynamic damper 50 of this modified example can also achieve the same effects as those described above.
[0080] [Fourth Modification] A fourth modified example is shown in Fig. 15. In this fourth modified example, the inverter 4 is supported in a vibration-isolating manner, and the flange 30 and the boss 29 are attached via an elastic body 42. This fourth modified example is applicable to the basic embodiment and the first to third modified examples, but here we will describe an example in which it is applied to the basic embodiment.
[0081] The elastic body 42 is formed of a solid or hollow elastic material such as rubber, and more specifically, is formed by a rubber bushing. The elastic body 42 has a basic cylindrical shape with a constant outer diameter extending in the height direction, and has a groove 43 with a reduced diameter on the outer periphery of the middle part in the height direction that fits into the flange hole 38 of the flange 30. The upper and lower surfaces of the groove 43 sandwich and support the upper and lower surfaces of the flange 30. The groove 43 has the form of a typical parallel groove.
[0082] A metal (for example, iron) or resin bushing 45 is fitted into the central hole 44 of the elastic body 42. The bushing 45 integrally comprises a circular tubular portion 46 that is fitted into the central hole 44 from above, and a circular flange 47 provided at the upper end of the circular tubular portion 46. During installation, the bolt 31 is inserted into the circular tubular portion 46 from above, and after being tightened into the boss hole 32, is brought into tight contact with the circular flange 47. This support method is applied to all mounting portions of the flange 30 and boss 29.
[0083] According to this modification, the flange 30 is not attached directly to the boss 29, but is attached via the elastic body 42. Therefore, vibrations of the electric motor 3 can be largely absorbed by the elastic body 42 before being transmitted to the inverter 4, and the vibrations transmitted to the inverter 4 can be greatly suppressed. This can greatly improve reliability.
[0084] When the bolt 31 is tightened to the boss 29 with the bushing 45 sandwiched therebetween, the bushing 45 limits the tightening amount of the bolt 31, preventing excessive compression and crushing of the elastic body 42. This allows the elastic body 42 to fully exert its function without impairing it.
[0085] Other advantages are the same as those of the basic embodiment. The advantages of applying this modification to the first to third modifications are also clear.
[0086] 16 shows a modification of the fourth modification. In this modification, the shape of the elastic body 42, i.e., the rubber bushing, is different, and relief grooves 48 are provided at the upper and lower corners of the bottom surface of the groove portion 43. This structure is similar to that described in Patent Document 2. These relief grooves 48 prevent the upper and lower corners of the inner circumferential surface of the flange hole 38 from contacting the elastic body 42, thereby preventing damage to the elastic body 42.
[0087] The outer shape of the elastic body 42 is also different, with the portions above (one axial end side) and below (the other axial end side) the groove portion 43 tapering in diameter as they go upward and downward.
[0088] Although the embodiments of the present disclosure have been described in detail above, various other embodiments and modifications of the present disclosure are possible.
[0089] For example, the inverter may be attached to both the reducer and the electric motor. That is, the inverter may be attached across both the reducer and the electric motor. In this case, as in the basic embodiment and the second modified example, the inverter can be attached to the housings of both the reducer and the electric motor. Then, bosses that rise upward can be provided on both the reducer and the electric motor, and the inverter can be attached to these bosses. Then, flanges corresponding to the bosses can be provided on the bottom surface of the inverter, and each flange can be attached to each boss.
[0090] The number, positions, and configuration of the inverter mounting portions and mounting locations are optional. The inverter can be mounted in one location, but from the perspective of support rigidity, it is preferable to mount it in multiple locations as in the above embodiment. It is also preferable to mount the inverter in mounting locations that are as evenly distributed as possible, as this reduces the support load per location.
[0091] Similarly, the number, positions, and configuration of the dynamic damper mounting portions and mounting locations are also optional. The dynamic damper can be mounted in one location, but from the perspective of support rigidity, it is preferable to mount it in multiple locations as in the above embodiment. It is also preferable to mount the dynamic damper in mounting locations that are as evenly distributed as possible, as this reduces the load burden per location.
[0092] In the basic embodiment and the first to fourth modified examples, the inverter is mounted horizontally, but the inverter can also be mounted vertically or obliquely.
[0093] The inverter may have any shape, size, structure, etc. The number, position, shape, structure, etc. of the flanges and bosses may also be any. For example, the basic shape of the boss may be a square pillar, etc. The dynamic damper may also have any shape, size, structure, etc.
[0094] The flange and boss may be omitted, and the inverter may be directly attached to the housing of at least one of the reducer and the motor, preferably via an elastic member.
[0095] The configurations of the above-described embodiments and variations can be combined in part or in whole unless there is a particular contradiction. The embodiments of the present disclosure are not limited to the above-described embodiments, and all variations, applications, and equivalents encompassed within the spirit of the present disclosure as defined by the claims are included in the present disclosure. Therefore, the present disclosure should not be interpreted as being limited, and can be applied to any other technology that falls within the spirit of the present disclosure. [Explanation of symbols]
[0096] 1 axle housing 2 Reducer 3 Electric motor 4 inverters 4A Lower 4Au top part 4B upper 5 Differential device 7 Reducer housing 8 Motor housing 50 Dynamic Damper 51 Bracket 52 Elastic member 53 mass body 100 Electric axle device
Claims
1. an axle housing for accommodating a differential device; a reducer attached to the axle housing; an electric motor attached to the reducer; an inverter attached to at least one of the reducer and the electric motor; a dynamic damper attached to the inverter; Equipped with the inverter has a lower portion and an upper portion provided on the lower portion and smaller than the lower portion in a plan view, The dynamic damper is attached to the upper surface of the lower part where the upper part is not provided. An electric axle device for a vehicle.
2. An axle housing for accommodating a differential device; a reducer attached to the axle housing; an electric motor attached to the reducer; an inverter attached to at least one of the reducer and the electric motor; a dynamic damper attached to the inverter; Equipped with the dynamic damper includes an elastic member, a mass body embedded in the elastic member, and a bracket attached to the inverter and having a folded cross-sectional shape, The elastic member is fixed to the inner surface of the bracket, and side surfaces on both ends in the width direction of the elastic member are fixed to the bracket, and end surfaces on both ends in the length direction of the elastic member are not fixed to the bracket. An electric axle device for a vehicle.
3. The length of the elastic member and the mass is greater than the width. The electric axle device for a vehicle according to claim 2.
4. When the dynamic damper is installed, the length direction of the elastic member is parallel to the left-right direction or the front-rear direction of the vehicle. The electric axle device for a vehicle according to claim 3 .
Citation Information
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