Bearing structure for internal combustion engines

The shared bearing structure between the balance shaft and rotating shaft simplifies the internal combustion engine by reducing parts and assembly complexity, addressing the complexity issue in conventional engines.

JP7772605B2Active Publication Date: 2025-11-18DAIHATSU MOTOR CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
JP2022012204
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-28
Publication Date
2025-11-18
Estimated Expiration
2042-01-28

AI Technical Summary

Technical Problem

Conventional internal combustion engines have a complex structure due to separate bearings for the balance shaft and oil pump, which are connected via a power transmission mechanism, leading to a large number of parts.

Method used

A bearing structure that shares a bearing between the balance shaft and a rotating shaft, with a gap between the second cover and the rotating shaft, allowing for relaxed positional accuracy requirements and reduced complexity.

Benefits of technology

This configuration simplifies the internal combustion engine assembly by reducing the number of parts and easing assembly requirements, while maintaining functionality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007772605000001
    Figure 0007772605000001
  • Figure 0007772605000002
    Figure 0007772605000002
Patent Text Reader

Abstract

To inhibit an internal combustion engine from becoming complicated.SOLUTION: A bearing structure for an internal combustion engine includes: a base 11; a first cover 12 fixed to the base 11; a first bearing 16 provided in the base 11; a second bearing 17 provided in the first cover 12; a balance shaft 13; a rotating shaft 15 that is a component separate from the balance shaft 13, is coupled to the balance shaft 13 and rotates integrally with the balance shaft 13; and an oil pump driven by the rotating shaft 15. The first bearing 16 rotatably supports a coupled part 21 of the balance shaft 13 and the rotating shaft 15, and the second bearing 17 rotatably supports the rotating shaft 15.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a bearing structure for an internal combustion engine. [Background technology]

[0002] 2. Description of the Related Art Conventionally, an internal combustion engine is known in which an oil pump is driven by rotation of a balance shaft. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2014-88807 Summary of the Invention [Problem to be solved by the invention]

[0004] However, in the conventional technology, the rotation of the balance shaft is transmitted to the oil pump via a power transmission mechanism including a chain, and bearings for the balance shaft and the oil pump are provided separately, which results in a large number of parts and makes the internal combustion engine more complicated.

[0005] The present invention has been made in view of the above, and one of its objects is to prevent the internal combustion engine from becoming too complicated. [Means for solving the problem]

[0006] In order to solve the above-mentioned problems and achieve the object, the bearing structure for an internal combustion engine of the present invention comprises a base, a first cover fixed to the base, a first bearing provided on the base, a second bearing provided on the first cover, a balance shaft, a rotating shaft that is a separate part from the balance shaft and is connected to the balance shaft and rotates integrally with the balance shaft, and an oil pump driven by the rotating shaft, wherein the first bearing rotatably supports the joint between the balance shaft and the rotating shaft, and the second bearing rotatably supports the rotating shaft.

[0007] With this configuration, the first bearing is shared by the balance shaft and the rotating shaft, so the bearing structure can be realized without considering the positional accuracy or tolerance between the balance shaft and the rotating shaft that accompanies the first bearing.

[0008] The bearing structure of the internal combustion engine includes a second cover that is positioned on the balance shaft side of the first cover, fixed to the first cover, and has a hole into which the rotating shaft is inserted, and a gap is provided between the circumferential surface of the second cover that forms the hole and the rotating shaft, and the oil pump has a casing formed by the first cover and the second cover.

[0009] According to this configuration, since there is a gap between the second cover and the rotating shaft, the positional accuracy requirement between the first bearing and the second bearing from the balance shaft to the first cover can be relaxed.

[0010] In the bearing structure of the internal combustion engine, for example, the rotating shaft is rotatably supported only by the first bearing and the second bearing.

[0011] With this configuration, the positional accuracy of the rotating shaft can be relaxed compared to a configuration in which the rotating shaft is supported by three or more bearings. [Effects of the Invention]

[0012] According to the present invention, it is possible to suppress the complexity of the internal combustion engine. [Brief explanation of the drawings]

[0013] [Figure 1] FIG. 1 is a cross-sectional view showing a part of an internal combustion engine according to an embodiment. [Figure 2] FIG. 2 is a cross-sectional perspective view showing a part of the internal combustion engine according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0014] Hereinafter, an embodiment will be described with reference to FIGS. 1 and 2. In this specification, components according to an embodiment and descriptions of the components may be described using multiple expressions. The components and their descriptions are merely examples and are not limited by the expressions in this specification. The components may also be identified by names different from those in this specification. Furthermore, the components may also be described using expressions different from those in this specification.

[0015] Fig. 1 is a cross-sectional view showing a portion of an internal combustion engine 10 according to an embodiment. Fig. 2 is a cross-sectional perspective view showing a portion of the internal combustion engine 10 according to an embodiment. The internal combustion engine 10 is, for example, a reciprocating engine mounted on a vehicle. Note that the internal combustion engine 10 may be another type of internal combustion engine, or may be mounted on another device.

[0016] As shown in the drawings, for convenience, the X-axis, Y-axis, and Z-axis are defined in this specification. The X-axis, Y-axis, and Z-axis are perpendicular to each other. The X-axis is aligned along the width of the vehicle. The Y-axis is aligned along the length of the vehicle. The Z-axis is aligned along the height of the vehicle.

[0017] Furthermore, in this specification, the X direction, Y direction, and Z direction are defined. The X direction is a direction along the X axis, and includes the +X direction indicated by the X axis arrow and the -X direction opposite to the X axis arrow. The Y direction is a direction along the Y axis, and includes the +Y direction indicated by the Y axis arrow and the -Y direction opposite to the Y axis arrow. The Z direction is a direction along the Z axis, and includes the +Z direction indicated by the Z axis arrow and the -Z direction opposite to the Z axis arrow.

[0018] In the following description, the +Z direction is defined as the vertically upward direction, and the -Z direction is defined as the vertically downward direction. Note that the Z direction may differ from the vertical direction depending on various conditions such as the location of the vehicle and the condition of the tires.

[0019] The internal combustion engine 10 includes a crankcase 11, a chain cover 12, a balance shaft 13, a rotating shaft 15, an oil pump 14, a first bearing 16, and a second bearing 17. In addition to the above, the internal combustion engine 10 also includes a cylinder block, an oil pan, a crankshaft, a chain, etc. The crankcase 11, the chain cover 12, the first bearing 16, the second bearing 17, the balance shaft 13, and the oil pump 14 form the bearing structure of the internal combustion engine 10.

[0020] The crankcase 11 has an outer surface 11a. The crankcase 11 is provided with an internal space 11b that opens to the outer surface 11a. The crankcase 11 is also provided with a support portion 11c that supports a first bearing. The crankcase 11 is an example of a base. The base may be a cylinder block or the like.

[0021] The chain cover 12 is placed on the outer surface 11a of the crankcase 11. The chain cover 12 is fixed to the crankcase 11 with fasteners 22 (Fig. 2), such as bolts. The chain cover 12 covers a chain (not shown) located between the crankcase 11 and the chain cover 12. The inner surface 12a of the chain cover 12 is provided with a recess 12b. The recess 12b opens to the inner surface 12a. The chain cover 12 also has a bottomed hole 12c. The hole 12c opens to the bottom of the recess 12b. A second bearing 17 is provided on a peripheral surface 12d of the chain cover 12 that forms the hole 12c. The second bearing 17 is a sliding bearing. That is, the second bearing 17 is formed by a portion of the peripheral surface 12d.

[0022] At least a portion of the balance shaft 13 is housed inside the crankcase 11. The balance shaft 13 is rotatably supported by two bearings (one of the bearings is not shown), including a first bearing 16, around the central axis of rotation Ax. One end 13a of the balance shaft 13 is rotatably supported by the first bearing 16. Hereinafter, unless otherwise specified, the axial direction, radial direction, and circumferential direction refer to the axial direction, radial direction, and circumferential direction of the central axis of rotation Ax.

[0023] The first bearing 16 is a rolling bearing and includes an outer ring 16a, an inner ring 16b, and rolling elements 16c.

[0024] Rotating shaft 15 has one end 15a and the other end 15b. Rotating shaft 15 has a large diameter portion 15c and a small diameter portion 15d. Large diameter portion 15c includes one end 15a. Small diameter portion 15d includes the other end 15b and has a smaller diameter than large diameter portion 15c.

[0025] The rotating shaft 15 is connected to the balance shaft 13 with a difference in diameter, and rotates integrally with the balance shaft 13 around the central axis of rotation Ax.

[0026] Specifically, the rotating shaft 15 and the balance shaft 13 are splined together. A male spline 15e is provided on the large diameter portion 15c of the rotating shaft 15. The male spline 15e is configured with external teeth. Meanwhile, a hole 13b is provided on one end 13a of the balance shaft 13, and a female spline 13d is provided on a surface 13c of the balance shaft 13 that forms the hole 13b. The female spline 13d is configured with internal teeth. The large diameter portion 15c of the rotating shaft 15 is inserted into the hole 13b of the balance shaft 13, and the male spline 15e and the female spline 13d mesh with each other. The male spline 15e and the female spline 13d form a joint 21 between the balance shaft 13 and the rotating shaft 15. The joint 21 is also referred to as a spline joint.

[0027] The oil pump 14 is, for example, a trochoid oil pump, and includes a casing 31, an outer rotor 32, and an inner rotor 33. The oil pump 14 draws oil stored in an oil pan through an intake port by rotation of the inner rotor 33, and discharges the drawn oil from an exhaust port. The oil discharged from the oil pump 14 is supplied to each part of the internal combustion engine 10 via passages, etc. The oil supplied to each part falls by the action of gravity and returns to the oil pan.

[0028] The casing 31 has a base portion 34 provided on the chain cover 12, and a pump cover 35. The base portion 34 is a portion that includes the recessed portion 12b in the chain cover 12, and is formed integrally with the chain cover 12. In other words, a part of the chain cover 12 forms the base portion 34.

[0029] The pump cover 35 is fixed to the chain cover 12 with fasteners 23 such as screws while covering the recess 12b. The pump cover 35 is fixed to the crankcase 11 via the chain cover 12, and is not fixed directly to the crankcase 11. The pump cover 35 constitutes a bearing structure of the internal combustion engine 10.

[0030] The pump cover 35 has one surface 35a and another surface 35b. The one surface 35a is placed on the inner surface 12a of the chain cover 12. The pump cover 35 also has a hole 35c. The hole 35c penetrates the pump cover 35 in the thickness direction of the pump cover 35. That is, the hole 35c is open to the one surface 35a and the other surface 35b. The small diameter portion 15d of the rotating shaft 15 is inserted into the hole 35c. The circumferential surface 35d of the pump cover 35 that forms the hole 35c is spaced apart from the outer peripheral surface 15f of the rotating shaft 15, and a gap Sa is formed between the circumferential surface 35d of the pump cover 35 and the outer peripheral surface 15f of the rotating shaft 15.

[0031] The outer rotor 32 has a plurality of recesses formed in a trochoidal curve or the like. The inner rotor 33 has one less protrusion than the recesses of the outer rotor 32, is positioned inside the outer rotor 32, and meshes with the outer rotor 32. The inner rotor 33 has a hole 33a formed therein. The hole 33a penetrates the inner rotor 33 in the axial direction. The small-diameter portion 15d of the rotating shaft 15 is press-fitted into the hole 33a. That is, the inner rotor 33 rotates integrally with the rotating shaft 15 and the balance shaft 13 around the rotation center axis Ax. The tips of the protrusions of the inner rotor 33 slide along the inner surfaces of the recesses of the outer rotor 32 as they rotate. This allows oil to be sucked in and discharged. Note that the oil pump 14 is not limited to the above configuration.

[0032] Two guide portions 36, 37 are provided on the other surface 35b of the pump cover 35. The guide portion 36 protrudes from the pump cover 35 toward the joint 21 between the balance shaft 13 and the rotating shaft 15. The guide portion 36 guides oil from the oil pump 14 that leaks from a gap Sa between the peripheral surface 35d of the pump cover 35 and the outer circumferential surface 15f of the rotating shaft 15 to the first bearing 16. The guide portion 36 protrudes from the pump cover 35 toward the joint 21 between the balance shaft 13 and the rotating shaft 15. The guide portion 37 guides oil that drops from an oil hole 51 located above the joint 21 to the joint 21.

[0033] In the internal combustion engine 10 configured as described above, the rotation of the balance shaft 13 causes the rotating shaft 15 to rotate, and the rotation of the rotating shaft 15 drives the oil pump 14, thereby implementing an oil pump driving method.

[0034] As described above, in this embodiment, the bearing structure of the internal combustion engine 10 includes the crankcase 11 (base), the chain cover 12 (first cover), the first bearing 16, the second bearing 17, the balance shaft 13, and the oil pump 14. The chain cover 12 is fixed to the crankcase 11. The first bearing 16 is provided in the crankcase 11. The second bearing 17 is provided in the chain cover 12. The rotating shaft 15 is a separate part from the balance shaft 13 and is connected to the balance shaft 13 to rotate integrally therewith. The oil pump 14 is driven by the rotating shaft 15. The first bearing 16 rotatably supports the connecting portion 21 between the balance shaft 13 and the rotating shaft 15, and the second bearing 17 rotatably supports the rotating shaft 15.

[0035] According to this configuration, the first bearing 16 is shared by the balance shaft 13 and the rotating shaft 15. Therefore, compared to a configuration in which the balance shaft 13 and the rotating shaft 15 are connected by a chain or the like and the balance shaft 13 and the rotating shaft 15 are each provided with a bearing corresponding to the first bearing 16, the configuration can be performed without considering positional accuracy or tolerances, etc., and ultimately the complexity of the internal combustion engine 10 can be reduced.

[0036] The bearing structure of the internal combustion engine 10 also includes a pump cover 35 (second cover). The pump cover 35 is disposed on the balance shaft 13 side of the chain cover 12 and is fixed to the chain cover 12. The pump cover 35 is provided with a hole 35c into which the rotating shaft 15 is inserted. A gap Sa is provided between the rotating shaft 15 and a peripheral surface 35d of the pump cover 35 that forms the hole 35c.

[0037] With this configuration, the gap Sa is provided between the pump cover 35 and the rotating shaft 15, so the requirement for positional accuracy between the first bearing 16 and the second bearing 17 from the balance shaft 13 to the chain cover 12 can be relaxed, thereby facilitating assembly of the internal combustion engine 10.

[0038] Furthermore, the rotating shaft 15 is rotatably supported only by the first bearing 16 and the second bearing 17 .

[0039] According to this configuration, the positional accuracy of the rotating shaft 15 can be relaxed compared to a configuration in which the rotating shaft 15 is supported by three or more bearings, and therefore the internal combustion engine 10 can be easily assembled.

[0040] Furthermore, the only moving part provided between the first bearing 16 and the second bearing 17 is the oil pump 14. Therefore, the length of the rotating shaft 15 can be shortened, and the moment in the oil pump 14 can be reduced.

[0041] In the above embodiment, an example has been shown in which the pump cover 35 is fixed to the crankcase 11 via the chain cover 12, but the present invention is not limited to this. For example, the chain cover 12 may be fixed to the crankcase 11 via the pump cover 35. In this case, the second bearing 17 is provided in the pump cover 35. In other words, the second bearing 17 is provided in a member that is directly fixed to the crankcase 11.

[0042] The above-described embodiments of the present invention do not limit the scope of the invention, but are merely examples within the scope of the invention. Some embodiments of the present invention may be modified, omitted, or added to the above-described embodiments, for example, with respect to at least part of the specific applications, structures, shapes, actions, and effects, without departing from the spirit of the invention. [Explanation of symbols]

[0043] 10...internal combustion engine, 11...crankcase (base), 12...chain cover (first cover), 13...balance shaft, 14...oil pump, 16...first bearing, 17...second bearing, 35...pump cover (second cover), 35c...hole, 35d...circumferential surface, Sa...gap.

Claims

1. With the base, a first cover fixed to the base; a first bearing provided on the base; a second bearing provided in the first cover; A balance shaft and a rotating shaft that is a separate part from the balance shaft, is coupled to the balance shaft, and rotates integrally with the balance shaft; an oil pump driven by the rotating shaft; a second cover that is disposed on the balance shaft side of the first cover, is fixed to the first cover, and has a hole into which the rotating shaft is inserted; Equipped with the first bearing rotatably supports a joint between the balance shaft and the rotary shaft, the second bearing rotatably supports the rotary shaft; a gap is provided between a peripheral surface of the second cover that forms the hole and the rotary shaft; Bearing structure for internal combustion engines.

2. the rotating shaft is rotatably supported only by the first bearing and the second bearing; 2. A bearing structure for an internal combustion engine according to claim 1.

Citation Information

Patent Citations

  • Engine with mechanical governor

    JP1995083085A

  • Pump driving structure of water-cooled internal combustion engine

    JP2008064079A

  • Oil pump for internal combustion engine

    JP2014088807A