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The shock absorber addresses durability issues by using a dual damping mechanism with a main valve closed at low speeds and an orifice to manage fluid flow, improving valve durability and performance across varying speeds.

JP7801414B2Active Publication Date: 2026-01-16ASTEMO LTD
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Patent Information

Application Number
JP2024202229
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-12-25
Filing Date
2024-11-20
Publication Date
2026-01-16
Estimated Expiration
2039-11-12

AI Technical Summary

Technical Problem

Shock absorbers with parallel valves that open in the same stroke face durability issues, particularly in the low-speed range, necessitating an improvement in valve durability.

Method used

A shock absorber design featuring a cylinder with a piston dividing it into two chambers, incorporating a first and second damping force generating mechanism with a main valve and sub-valve, where the main valve is closed at low piston speeds and opens at higher speeds, and an orifice in the second passage suppresses fluid flow to enhance durability.

Benefits of technology

The design improves the durability of the valve by managing fluid flow effectively across different piston speeds, enhancing the shock absorber's performance and longevity.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a shock absorber that can improve durability of a valve.SOLUTION: A shock absorber is configured such that a valve seat member (106) is disposed in a cap member (101); a first sub valve (181) is disposed in the other side chamber (20); a second sub valve (171) is disposed in a cap chamber (146) between a bottom (122) of the cap member (101) and the valve seat member (106); in a second passage (182), an orifice (175) is disposed at an upstream side or a downstream side of a flow where the first sub valve (181) is opened; in an area where a piston speed is low, a second damp force generating mechanism (183) is opened in a state that a first damp force generating mechanism (41) is closed; and in an area where a piston speed is larger than the low speed, both the first damp force generating mechanism (41) and the second damp force generating mechanism (183) are opened.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a shock absorber. This application claims priority based on Japanese Patent Application No. 2018-241206, filed on December 25, 2018, the contents of which are incorporated herein by reference. [Background technology]

[0002] Some shock absorbers have two valves arranged in parallel that open in the same stroke (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Special Publication No. 2-41666 Summary of the Invention [Problem to be solved by the invention]

[0004] By arranging valves that open in the same stroke in parallel, it is possible to open only one valve in the low-speed range of the piston speed and open both valves in the higher-speed range. In such a structure, there is a demand for improving the durability of the valve on the low-speed side in particular.

[0005] The present invention provides a shock absorber that can improve the durability of the valve. [Means for solving the problem]

[0006] According to one aspect of the present invention, a shock absorber includes a cylinder in which a working fluid is sealed, a piston slidably provided within the cylinder and dividing the interior of the cylinder into two chambers, i.e., one side chamber and the other side chamber, a piston rod having an attachment shaft portion inserted into the piston, connected to the piston, and extending to the outside of the cylinder, a first passage through which the working fluid flows from an upstream chamber to a downstream chamber within the cylinder as the piston moves, a second passage provided in parallel to the first passage through which the working fluid flows from the upstream chamber to the downstream chamber within the cylinder as the piston moves, and a first damping valve provided in the first passage and generating a damping force by a main valve. a force generating mechanism, a second damping force generating mechanism provided in the second passage and generating a damping force by a sub-valve, and an orifice provided in the second passage and arranged in series with the second damping force generating mechanism, wherein in a range where the moving speed of the piston is low, the main valve of the first damping force generating mechanism is closed and the sub-valve of the second damping force generating mechanism is open, and in a speed range where the moving speed of the piston is faster than low speed, the flow of the working fluid in the second passage is suppressed by the orifice with the sub-valve of the second damping force generating mechanism open, and the pressure applied to the main valve of the first damping force generating mechanism rises to a predetermined pressure and the main valve opens. According to another aspect of the present invention, a shock absorber includes a cylinder in which a working fluid is sealed, a piston slidably provided within the cylinder and dividing the interior of the cylinder into two chambers, i.e., one side chamber and the other side chamber, a piston rod having an attachment shaft portion inserted into the piston, connected to the piston, and extending to the outside of the cylinder, a first passage through which the working fluid flows from an upstream chamber to a downstream chamber within the cylinder as the piston moves, a second passage provided in parallel to the first passage through which the working fluid flows from the upstream chamber to the downstream chamber within the cylinder as the piston moves, a first damping force generating mechanism provided in the first passage and having a main valve, and a second damping force generating mechanism provided in the second passage and equipped with a sub-valve, and an orifice provided in the second passage and arranged in series with the second damping force generating mechanism, wherein in the range where the piston movement speed is low, the sub-valve of the second damping force generating mechanism suppresses the flow of the working fluid in the second passage with the main valve of the first damping force generating mechanism closed, thereby generating a damping force, and in the range where the piston movement speed is higher than low speed, the orifice suppresses the flow of the working fluid in the second passage, and the pressure applied to the main valve of the first damping force generating mechanism rises to a predetermined pressure and opens the valve, thereby changing the characteristics of the damping force. [Effects of the Invention]

[0007] According to the shock absorber described above, it is possible to improve the durability of the valve. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a cross-sectional view showing a shock absorber according to a first embodiment of the present invention. [Figure 2] 1 is a partial cross-sectional view showing the periphery of a piston of a shock absorber according to a first embodiment of the present invention. [Figure 3] 1 is a partial cross-sectional view showing the periphery of an orifice of a shock absorber according to a first embodiment of the present invention. [Figure 4] 1 is a hydraulic circuit diagram of a shock absorber according to a first embodiment of the present invention. [Figure 5] 3 is a characteristic diagram showing the damping force characteristics in the extension stroke of the shock absorber of the first embodiment according to the present invention. FIG. [Figure 6] FIG. 4 is a cross-sectional view showing a main part of a shock absorber according to a second embodiment of the present invention. [Figure 7] FIG. 10 is a cross-sectional view showing a main part of a shock absorber according to a third embodiment of the present invention. [Figure 8] FIG. 10 is a cross-sectional view showing a main part of a shock absorber according to a fourth embodiment of the present invention. [Figure 9] FIG. 10 is a cross-sectional view showing a main part of a shock absorber according to a fifth embodiment of the present invention. [Figure 10] FIG. 10 is a partial cross-sectional view showing the periphery of an orifice of a shock absorber according to a fifth embodiment of the present invention. [Figure 11] FIG. 10 is a cross-sectional view showing a main part of a shock absorber according to a sixth embodiment of the present invention. [Figure 12] FIG. 10 is a partial cross-sectional view showing the periphery of an orifice of a shock absorber according to a sixth embodiment of the present invention. [Figure 13] FIG. 10 is a cross-sectional view showing a main part of a shock absorber according to a seventh embodiment of the present invention. [Figure 14] FIG. 13 is a cross-sectional view showing a main part of a shock absorber according to an eighth embodiment of the present invention. [Figure 15] FIG. 13 is a cross-sectional view showing a main part of a shock absorber according to a ninth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0009] [First embodiment] A first embodiment of the present invention will be described with reference to Figures 1 to 5. For ease of explanation, the upper side in the drawings will be referred to as "top" and the lower side in the drawings will be referred to as "bottom".

[0010] As shown in Fig. 1, the shock absorber 1 of the first embodiment is a so-called twin-cylinder hydraulic shock absorber. The shock absorber 1 includes a cylinder 2 in which oil (not shown) is sealed as a working fluid. The cylinder 2 includes a cylindrical inner cylinder 3 and a cylindrical outer cylinder 4 with a bottom that is larger in diameter than the inner cylinder 3 and is provided concentrically to cover the inner cylinder 3. A reservoir chamber 6 is formed between the inner cylinder 3 and the outer cylinder 4.

[0011] The outer cylinder 4 is composed of a cylindrical body member 11 and a bottom member 12 that is fitted and fixed to the lower side of the body member 11 to close the lower part of the body member 11. A mounting eye 13 is fixed to the bottom member 12 at an outer position opposite the body member 11.

[0012] The shock absorber 1 is provided with a piston 18 that is slidably provided inside the inner tube 3 of the cylinder 2. This piston 18 defines two chambers inside the inner tube 3: an upper chamber 19 (one side chamber), which is one of the cylinder inner chambers, and a lower chamber 20 (other side chamber), which is the other cylinder inner chamber. In other words, the piston 18 is slidably provided inside the cylinder 2 and divides the interior of the cylinder 2 into the upper chamber 19 on one side and the lower chamber 20 on the other side. Oil liquid is sealed inside the upper chamber 19 and the lower chamber 20 inside the inner tube 3, serving as a working fluid. Oil liquid and gas are sealed inside a reservoir chamber 6 between the inner tube 3 and the outer tube 4, serving as a working fluid.

[0013] The shock absorber 1 is provided with a piston rod 21, one axial end of which is disposed inside the inner tube 3 of the cylinder 2 and is connected and fixed to the piston 18, and the other axial end of which extends to the outside of the cylinder 2. The piston rod 21 passes through the upper chamber 19 but does not pass through the lower chamber 20. Therefore, the upper chamber 19 is a rod-side chamber through which the piston rod 21 passes, and the lower chamber 20 is a bottom-side chamber on the bottom side of the cylinder 2.

[0014] The piston 18 and piston rod 21 move together. During the extension stroke of the shock absorber 1, in which the piston rod 21 increases the amount of protrusion from the cylinder 2, the piston 18 moves toward the upper chamber 19. During the compression stroke of the shock absorber 1, in which the piston rod 21 decreases the amount of protrusion from the cylinder 2, the piston 18 moves toward the lower chamber 20.

[0015] Rod guides 22 are fitted to the upper open ends of the inner cylinder 3 and the outer cylinder 4. A seal member 23 is fitted to the outer cylinder 4 above the rod guide 22, closer to the exterior of the cylinder 2. Both the rod guide 22 and the seal member 23 are annular. The piston rod 21 is slidably inserted through the rod guide 22 and the seal member 23, and extends from the interior to the exterior of the cylinder 2. One axial end of the piston rod 21 is fixed to the piston 18 inside the cylinder 2, and the other axial end protrudes outside the cylinder 2 via the rod guide 22 and the seal member 23.

[0016] The rod guide 22 supports the piston rod 21 so that it can move axially while restricting its radial movement, and guides the movement of the piston rod 21. The outer periphery of the seal member 23 is in close contact with the outer cylinder 4, and the inner periphery is in sliding contact with the outer periphery of the piston rod 21 that moves axially. In this way, the seal member 23 prevents the oil in the inner cylinder 3 and the high-pressure gas and oil in the reservoir chamber 6 in the outer cylinder 4 from leaking to the outside.

[0017] The rod guide 22 has a stepped outer periphery with a larger diameter at the top than at the bottom. The smaller-diameter lower part of the rod guide 22 fits into the inner periphery of the upper end of the inner cylinder 3, and the larger-diameter upper part fits into the inner periphery of the upper part of the outer cylinder 4. A base valve 25 that separates the lower chamber 20 and the reservoir chamber 6 is installed on the bottom member 12 of the outer cylinder 4. The inner periphery of the lower end of the inner cylinder 3 fits into this base valve 25. The upper end of the outer cylinder 4 is crimped radially inward to form a locking portion 26. This locking portion 26 and the rod guide 22 hold the seal member 23 in place.

[0018] The piston rod 21 has a main shaft portion 27 and a mounting shaft portion 28 having a smaller diameter than the main shaft portion 27. The main shaft portion 27 of the piston rod 21 is slidably fitted into the rod guide 22 and the seal member 23, and the mounting shaft portion 28 is disposed in the cylinder 2 and connected to the piston 18 and the like. The end of the main shaft portion 27 on the mounting shaft portion 28 side forms a shaft step portion 29 that widens in a direction perpendicular to the axis. A pair of axially extending passage cutouts 30 are formed in the outer periphery of the mounting shaft portion 28 at intermediate positions in the axial direction, and a male thread 31 is formed at the tip position on the axial opposite side from the main shaft portion 27. The passage cutouts 30 have a so-called two-flat shape formed by cutting out two parallel flat portions 180 degrees apart around the circumference of the mounting shaft portion 28.

[0019] In the shock absorber 1, for example, the portion of the piston rod 21 protruding from the cylinder 2 is arranged at the top and supported by the vehicle body, and the mounting eye 13 on the cylinder 2 side is arranged at the bottom and connected to the wheel side. Conversely, the cylinder 2 side may be supported by the vehicle body, and the piston rod 21 may be connected to the wheel side.

[0020] As shown in FIG. 2, the piston 18 is composed of a metal piston body 35 connected to the piston rod 21, and an annular sliding member 36 made of synthetic resin that is integrally attached to the outer circumferential surface of the piston body 35 and slides inside the inner cylinder 3.

[0021] The piston body 35 is provided with a plurality of passage holes 37 (only one of which is shown in FIG. 2 because it is a cross-section) that allow communication between the upper chamber 19 and the lower chamber 20, and a plurality of passage holes 39 (only one of which is shown in FIG. 2 because it is a cross-section) that allow communication between the upper chamber 19 and the lower chamber 20. The piston body 35 is a sintered product, and the passage holes 37, 39 are formed during sintering, or are formed by cutting with a drill.

[0022] The plurality of passage holes 37 are formed at equal intervals in the circumferential direction of the piston body 35, with one passage hole 39 sandwiched between each of them, and constitute half of the passage holes 37, 39. The plurality of passage holes 37 have a crank shape with two bending points. The plurality of passage holes 37 open radially outward on one axial side of the piston 18 (upper side in FIG. 2 ) and radially inward on the other axial side of the piston 18 (lower side in FIG. 2 ).

[0023] A first damping force generating mechanism 41 is provided on the lower chamber 20 side of these passage holes 37, which generates a damping force by opening and closing the passages in the passage holes 37. By arranging the first damping force generating mechanism 41 on the lower chamber 20 side, the passages in the multiple passage holes 37 become extension-side passages through which oil flows from the upper chamber 19, which is on the upstream side, to the lower chamber 20, which is on the downstream side, when the piston 18 moves toward the upper chamber 19, i.e., during the extension stroke. The first damping force generating mechanism 41 provided for the passages in these passage holes 37 serves as an extension-side damping force generating mechanism that generates a damping force by suppressing the flow of oil from the passages in the extension-side passage holes 37 to the lower chamber 20.

[0024] The remaining half of the passage holes 37, 39, that is, the passage holes 39, are formed at equal intervals in the circumferential direction of the piston body 35, with one passage hole 37 sandwiched between each of them. The plurality of passage holes 39 have a crank shape with two bending points. The plurality of passage holes 39 open radially outward on the other axial side of the piston 18 (lower side in FIG. 2) and radially inward on one axial side of the piston 18 (upper side in FIG. 2) than the other side.

[0025] On the upper chamber 19 side of these passage holes 39 is provided a first damping force generating mechanism 42 that generates a damping force by opening and closing the passages in the passage holes 39. By arranging the first damping force generating mechanism 42 on the upper chamber 19 side, the passages in the multiple passage holes 39 become compression-side passages through which oil flows from the lower chamber 20, which is on the upstream side, to the upper chamber 19, which is on the downstream side, when the piston 18 moves toward the lower chamber 20, that is, during the compression stroke. The first damping force generating mechanism 42 provided for the passages in these passage holes 39 is a compression-side damping force generating mechanism that generates a damping force by suppressing the flow of oil from the passages in the compression-side passage holes 39 to the upper chamber 19.

[0026] The piston body 35 has a generally circular disk shape. An insertion hole 44, into which the mounting shaft portion 28 of the piston rod 21 is inserted, is formed axially through the radial center of the piston body 35. The insertion hole 44 has a small-diameter hole portion 45 on one axial side into which the mounting shaft portion 28 of the piston rod 21 is fitted, and a large-diameter hole portion 46 on the other axial side, which has a larger diameter than the small-diameter hole portion 45.

[0027] An annular inner seat portion 47 is formed at the end of the piston body 35 on the axial side of the lower chamber 20, radially inward of the opening of the passage hole 37 on the lower chamber 20 side of the piston body 35. An annular valve seat portion 48 that constitutes a part of the first damping force generating mechanism 41 is formed at the end of the piston body 35 on the axial side of the lower chamber 20, radially outward of the opening of the passage hole 37 on the lower chamber 20 side of the piston body 35.

[0028] An annular inner seat portion 49 is formed at the axial end of the piston body 35 on the upper chamber 19 side, radially inward of the opening of the passage hole 39 on the upper chamber 19 side of the piston body 35. An annular valve seat portion 50 that constitutes a part of the first damping force generating mechanism 42 is formed at the axial end of the piston body 35 on the upper chamber 19 side, radially outward of the opening of the passage hole 39 on the upper chamber 19 side of the piston body 35.

[0029] The insertion hole 44 of the piston body 35 has a large diameter hole portion 46 that is located closer to the inner seat portion 47 in the axial direction than the small diameter hole portion 45. The passage within the large diameter hole portion 46 of the piston body 35 is constantly in communication with the passage within the passage cutout portion 30 of the piston rod 21.

[0030] The piston body 35 has a stepped portion radially outward of the valve seat portion 48 that is lower in axial height than the valve seat portion 48. The opening of the compression-side passage hole 39 on the lower chamber 20 side is located in this stepped portion. Similarly, the piston body 35 has a stepped portion radially outward of the valve seat portion 50 that is lower in axial height than the valve seat portion 50. The opening of the extension-side passage hole 37 on the upper chamber 19 side is located in this stepped portion.

[0031] The compression-side first damping force generating mechanism 42 includes the valve seat portion 50 of the piston 18 and has, in order from the piston 18 side in the axial direction, one disc 62, a plurality of (specifically, four) discs 63 having the same inner and outer diameters, a plurality of (specifically, two) discs 64 having the same inner and outer diameters, one disc 65, one disc 66, and one annular member 67. The discs 62 to 66 and the annular member 67 are made of metal. The discs 62 to 66 and the annular member 67 are each in the form of a perforated circular flat plate of a uniform thickness, into which the mounting shaft portion 28 of the piston rod 21 can be fitted.

[0032] The disc 62 has an outer diameter that is larger than the outer diameter of the inner seat portion 49 of the piston 18 and smaller than the inner diameter of the valve seat portion 50. The disc 62 is always in contact with the inner seat portion 49. The multiple discs 63 have an outer diameter that is approximately the same as the outer diameter of the valve seat portion 50 of the piston 18. The multiple discs 63 are capable of being seated on the valve seat portion 50.

[0033] The multiple discs 64 have an outer diameter smaller than that of discs 63. Disc 65 has an outer diameter smaller than that of discs 64 and smaller than that of the inner seat portion 49 of piston 18. Disc 66 has an outer diameter larger than that of discs 64 and smaller than that of discs 63. Annular member 67 has an outer diameter smaller than that of discs 66 and larger than that of shaft step portion 29 of piston rod 21. Annular member 67 is thicker than discs 62 to 66 and has high rigidity. Annular member 67 abuts against shaft step portion 29.

[0034] A plurality of discs 63 and a plurality of discs 64 constitute a compression-side main valve 71 that can be seated on and removed from the valve seat portion 50. When the main valve 71 is lifted from the valve seat portion 50, it connects the passage in the passage hole 39 with the upper chamber 19 and generates a damping force by suppressing the flow of oil between the valve seat portion 50 and the main valve 71. The annular member 67, together with the disc 66, restricts the main valve 71 from deforming beyond a specified limit in the opening direction.

[0035] The passage between the main valve 71 and the valve seat 50, which appears when the valve is open, and the passage inside the passage hole 39 constitute a first compression passage 72 through which oil flows from the lower chamber 20, which is on the upstream side within the cylinder 2, to the upper chamber 19, which is on the downstream side, as the piston 18 moves. The first compression damping force generating mechanism 42, which generates a damping force, includes the main valve 71 and the valve seat 50. Therefore, the first damping force generating mechanism 42 is provided in this first passage 72. The first passage 72 is provided in the piston 18, including the valve seat 50, and oil passes through it when the piston rod 21 and piston 18 move toward the compression side.

[0036] In the compression-side first damping force generating mechanism 42, no fixed orifice is formed in either the valve seat portion 50 or the main valve 71 abutting thereon, which communicates between the upper chamber 19 and the lower chamber 20, even when these are in an abutting state. In other words, when the valve seat portion 50 and the main valve 71 are in abutting state over the entire circumference, the compression-side first damping force generating mechanism 42 does not communicate between the upper chamber 19 and the lower chamber 20. In other words, the first passage 72 does not have a fixed orifice formed therein, which constantly communicates between the upper chamber 19 and the lower chamber 20, and is not a passage that constantly communicates between the upper chamber 19 and the lower chamber 20.

[0037] The first extension-side damping force generating mechanism 41 includes the valve seat portion 48 of the piston 18 and has, in axial order from the piston 18 side, one disc 82, a plurality of (specifically, five) discs 83 having the same inner and outer diameters, one disc 84, and one disc 85. The discs 82 to 85 are made of metal. Each of the discs 82 to 85 is in the form of a perforated circular flat plate of a uniform thickness, into which the mounting shaft portion 28 of the piston rod 21 can be fitted.

[0038] The disc 82 has an outer diameter that is larger than the outer diameter of the inner seat portion 47 of the piston 18 and smaller than the inner diameter of the valve seat portion 48. The disc 82 is constantly in contact with the inner seat portion 47. As shown in FIG. 3 , the disc 82 has a notch 88 formed therein, which extends from a midpoint on the outer circumferential edge to the inner circumferential edge in the radial direction and constantly connects the passage in the passage hole 37 with the passage in the large diameter hole portion 46 of the piston 18 and the passage in the passage notch 30 of the piston rod 21.

[0039] 2, the plurality of discs 83 have an outer diameter substantially equal to the outer diameter of the valve seat portion 48 of the piston 18 and are capable of being seated on the valve seat portion 48. The disc 84 has an outer diameter smaller than the outer diameter of the disc 83 and smaller than the outer diameter of the inner seat portion 47 of the piston 18. The disc 85 has an outer diameter larger than the outer diameter of the disc 84 and smaller than the outer diameter of the disc 83.

[0040] A plurality of discs 83 constitute an extension-side main valve 91 that can be seated on and removed from the valve seat portion 48. When the main valve 91 is lifted from the valve seat portion 48, the passage in the passage hole 37 communicates with the lower chamber 20, and the flow of oil between the main valve 91 and the valve seat portion 48 is suppressed, thereby generating a damping force.

[0041] The passage between the main valve 91 and the valve seat 48, which appears when the valve is open, and the passage inside the passage hole 37 form a first extension passage 92 through which oil flows from the upper chamber 19, which is on the upstream side within the cylinder 2, to the lower chamber 20, which is on the downstream side, as the piston 18 moves. The first extension damping force generating mechanism 41, which generates a damping force, includes the main valve 91 and the valve seat 48. Therefore, the first damping force generating mechanism 41 is provided in this first passage 92. The first passage 92 is provided in the piston 18, including the valve seat 48, and oil passes through it when the piston rod 21 and piston 18 move toward the extension side.

[0042] In the first extension-side damping force generation mechanism 41, no fixed orifice is formed in either the valve seat portion 48 or the main valve 91 abutting thereon, which communicates between the upper chamber 19 and the lower chamber 20, even when these are in an abutting state. In other words, when the valve seat portion 48 and the main valve 91 are in an abutting state over the entire circumference, the first extension-side damping force generation mechanism 41 does not communicate between the upper chamber 19 and the lower chamber 20. In other words, the first passage 92 does not have a fixed orifice formed therein, which constantly communicates between the upper chamber 19 and the lower chamber 20, and is not a passage that constantly communicates between the upper chamber 19 and the lower chamber 20.

[0043] On the side of the extension-side first damping force generating mechanism 41 opposite the piston 18, there are provided, in order from the first damping force generating mechanism 41 side, one cap member 101, one passage forming member 102, one disk 103, one disk 104, multiple (specifically, two) disks 105 having the same inner and outer diameters, one valve seat member 106 having an O-ring 107 attached to its outer periphery, multiple (specifically, three) disks 108 having the same inner and outer diameters, multiple (specifically, two) disks 109 having the same inner and outer diameters, one disk 110, and one annular member 111, with the mounting shaft portion 28 of the piston rod 21 fitted inside each of them. A male thread 31 is formed on the mounting shaft portion 28 of the piston rod 21 at a portion that protrudes beyond the annular member 111 toward the opposite side from the piston 18. A nut 112 is threadedly engaged with the male thread 31. The nut 112 abuts against the annular member 111 .

[0044] The cap member 101, the passage forming member 102, the disks 103 to 105, the valve seat member 106, the disks 108 to 110, and the annular member 111 are all made of metal. The disks 103 to 105, 108 to 110, and the annular member 111 are all circular flat plates with holes and a constant thickness, into which the mounting shaft portion 28 of the piston rod 21 can be fitted. The cap member 101, the passage forming member 102, and the valve seat member 106 are all annular, into which the mounting shaft portion 28 of the piston rod 21 can be fitted.

[0045] The cap member 101 is a cylindrical, one-piece molded product with a bottom. The cap member 101 is formed by drawing a metal plate. The cap member 101 has a perforated, disc-shaped bottom portion 122, an intermediate tapered portion 123 that extends from the outer peripheral edge of the bottom portion 122 toward one axial direction of the bottom portion 122 while expanding in diameter, a cylindrical tubular portion 124 that extends from the edge of the intermediate tapered portion 123 opposite the bottom portion 122 in the opposite direction to the bottom portion 122, and an expanded diameter opening portion 125 that extends from the edge of the tubular portion 124 opposite the intermediate tapered portion 123 in the opposite direction to the intermediate tapered portion 123 while expanding in diameter. The cap member 101 is disposed with the bottom portion 122 facing the piston 18. The cap member 101 is fitted onto the mounting shaft portion 28 at the inner peripheral portion of the bottom portion 122.

[0046] The cap member 101 has a substantially constant thickness, and the outer diameter of the bottom portion 122 is equal to the outer diameter of the disk 83 that constitutes the main valve 91. The cap member 101 is thicker than the disk 83, and its cylindrical shape with a bottom makes it more rigid than the disk 83. Therefore, the cap member 101, together with the disk 85 that abuts against it, prevents the main valve 91, which is made up of multiple disks 83, from deforming beyond a specified limit in the opening direction.

[0047] The valve seat member 106 has a perforated, circular main body portion 132 with a through hole 131 formed in the radial center. The through hole 131 penetrates the main body portion 132 in the thickness direction. The mounting shaft portion 28 is inserted into the through hole 131. The valve seat member 106 has, on one axial side of the main body portion 132, an inner seat portion 134, an intermediate valve seat portion 135, and an outer valve seat portion 136, in that order from the inside in the radial direction of the main body portion 132, and, on the other axial side of the main body portion 132, an inner seat portion 138 and a valve seat portion 139, in that order from the inside in the radial direction of the main body portion 132.

[0048] The inner seat portion 134 is annular and protrudes from the inner peripheral edge of the main body portion 132 to one side in the axial direction of the main body portion 132. The intermediate valve seat portion 135 is also annular and protrudes from a radially intermediate position of the main body portion 132 to the same side as the inner seat portion 134 in the axial direction of the main body portion 132. The outer valve seat portion 136 is also annular and protrudes from the radially outer periphery of the main body portion 132 to the same side as the inner seat portion 134 in the axial direction of the main body portion 132.

[0049] The inner seat portion 138 is also annular and protrudes from the inner peripheral edge of the main body portion 132 along the axial direction of the main body portion 132 on the opposite side to the inner seat portion 134. The inner seat portions 134, 138 both have a through hole 131 on their radially inner sides and have the same outer diameter. The valve seat portion 139 is also annular and protrudes from a radially intermediate position of the main body portion 132 along the axial direction of the main body portion 132 on the same side as the inner seat portion 138. The intermediate valve seat portion 135 and the valve seat portion 139 have the same inner diameter and the same outer diameter.

[0050] The main body portion 132 is formed with inner passage holes 141 that axially penetrate the main body portion 132 between the inner seat portions 134, 138 and the intermediate valve seat portion 135 and valve seat portion 139. A plurality of inner passage holes 141 are formed at equal intervals in the circumferential direction of the main body portion 132. The main body portion 132 is formed with outer passage holes 143 that axially penetrate the main body portion 132 between the intermediate valve seat portion 135 and the outer valve seat portion 136 and radially outward of the valve seat portions 139. The outer passage hole 143 is positioned radially outward of the inner passage hole 141 in the radial direction of the main body portion 132. A plurality of outer passage holes 143 are formed at equal intervals in the circumferential direction of the main body portion 132.

[0051] The main body portion 132 has an annular seal groove 145 recessed radially inward at the axially intermediate position of its outer periphery. An O-ring 107 is disposed in this seal groove 145. The valve seat member 106 is fitted onto the cylindrical portion 124 of the cap member 101 at the main body portion 132, with the inner seat portion 134, intermediate valve seat portion 135, and outer valve seat portion 136 facing the bottom portion 122. Thus, the valve seat member 106 is disposed within the cap member 101. In this state, the O-ring 107 seals the gap between the cylindrical portion 124 of the cap member 101 and the main body portion 132 of the valve seat member 106. The valve seat member 106 is fitted onto the mounting shaft portion 28 in the through-hole 131.

[0052] The cap member 101, the valve seat member 106, and the O-ring 107 constitute a housing 147 that defines a cap chamber 146 therein. The cap chamber 146 is located within the housing 147 between the bottom portion 122 of the cap member 101 and the valve seat member 106. The passage-forming member 102, the disk 103, the disk 104, and the multiple disks 105 are located within this cap chamber 146. The valve seat member 106 is arranged such that the intermediate valve seat portion 135 and the outer valve seat portion 136 face the cap chamber 146, and the valve seat portion 139 faces the lower chamber 20. The housing 147, including the annular valve seat member 106, is located in the lower chamber 20. The valve seat member 106 separates the cap chamber 146 from the lower chamber 20, and is located facing both the cap chamber 146 and the lower chamber 20.

[0053] The passage forming member 102 has an outer diameter smaller than the outer diameter of the bottom portion 122 of the cap member 101. A small-diameter fitting hole 151 is formed on one axial side of the radial center of the passage forming member 102, and a large-diameter hole 152, larger in diameter than the small-diameter fitting hole 151, is formed on the other axial side. A passage groove 153 is formed in the passage forming member 102 on the axial side of the large-diameter hole 152, penetrating radially from the large-diameter hole 152 to the outer circumferential surface. A plurality of passage grooves 153 are provided, aligned at equal intervals around the circumferential direction of the passage forming member 102. The passage forming member 102 is formed into this shape from a single member, for example, by cutting. The passage forming member 102 is positioned with the large-diameter hole 152 and passage groove 153 facing the bottom portion 122. The small-diameter fitting hole 151 of the passage forming member 102 is fitted onto the mounting shaft portion 28. In the passage forming member 102, the passage in the large diameter hole 152 is always in communication with the passage in the passage cutout portion 30 of the piston rod 21.

[0054] The passage in the large diameter hole 152 of the passage forming member 102 and the passage in the passage groove 153 are constantly in communication with the cap chamber 146 and the passage in the passage cutout 30 of the piston rod 21. Therefore, the cap chamber 146 is constantly in communication with the upper chamber 19 via the passage in the large diameter hole 152 of the passage forming member 102 and the passage in the passage groove 153, the passage in the passage cutout 30 of the piston rod 21, the passage in the large diameter hole 46 of the piston 18, the passage in the cutout 88 of the disc 82, and the passage in the passage hole 37 of the piston 18.

[0055] The multiple discs 105 have an outer diameter approximately equal to the outer diameter of the outer valve seat portion 136 of the valve seat member 106. The multiple discs 105 are constantly in contact with the inner seat portion 134 and are capable of being seated on the outer valve seat portion 136 and the intermediate valve seat portion 135. A through hole 161 penetrating in the axial direction is formed in each of the multiple discs 105 at a radially intermediate position between the inner seat portion 134 and the intermediate valve seat portion 135. The passage in the through hole 161 constantly connects the passage in the inner passage hole 141 of the valve seat member 106 to the cap chamber 146.

[0056] The disk 104 has an outer diameter smaller than the outer diameter of the disk 105 and the outer diameter of the passage forming member 102, and is approximately the same as the outer diameter of the inner seat portion 134 of the valve seat member 106. The disk 103 has an outer diameter larger than the maximum outer diameter of the passage forming member 102, and is smaller than the outer diameter of the disk 105.

[0057] The multiple discs 105 form a sub-valve 171 (second sub-valve) that can be seated on and removed from the outer valve seat portion 136 and the intermediate valve seat portion 135. The sub-valve 171 is provided in the cap chamber 146. When the sub-valve 171 is seated on and removed from the outer valve seat portion 136 in the cap chamber 146, it connects the passage in the outer passage hole 143 to the cap chamber 146 and connects the lower chamber 20 to the passage in the passage hole 37, i.e., the upper chamber 19. At this time, the sub-valve 171 suppresses the flow of hydraulic fluid between the outer valve seat portion 136 and the cap chamber 146, thereby generating a damping force. The sub-valve 171 is an inflow valve that opens when hydraulic fluid flows from the lower chamber 20 into the cap chamber 146 via the passage in the outer passage hole 143. The sub-valve 171 is a check valve that restricts the flow of hydraulic fluid from the cap chamber 146 to the lower chamber 20 via the passage in the outer passage hole 143.

[0058] The passage within the outer passage hole 143, the passage between the sub-valve 171 and the outer valve seat 136 that appears when the valve is open, the cap chamber 146, the passage within the passage groove 153 and the large-diameter hole 152 of the passage forming member 102, the passage within the passage cutout 30 of the piston rod 21, the passage within the large-diameter hole 46 of the piston 18, the passage within the cutout 88 of the disc 82, and the passage within the passage hole 37 constitute a second passage 172 through which oil flows from the lower chamber 20, which is the upstream side within the cylinder 2, to the upper chamber 19, which is the downstream side, as the piston 18 moves. The second passage 172 serves as a compression-side passage through which oil flows from the lower chamber 20, which is the upstream side, to the upper chamber 19, which is the downstream side, during movement of the piston 18 toward the lower chamber 20, i.e., during the compression stroke. The second passage 172 includes the passage within the passage cutout 30 formed by cutting out the piston rod 21. In other words, the second passage 172 is formed by cutting out a part of the piston rod 21 .

[0059] The sub-valve 171, the outer valve seat portion 136, the intermediate valve seat portion 135, the discs 103 and 104, the passage forming member 102, and the cap member 101 constitute a second compression damping force generating mechanism 173. The second damping force generating mechanism 173 is provided in a second compression passage 172. The second damping force generating mechanism 173 opens and closes the second passage 172, suppressing the flow of hydraulic fluid from the second passage 172 to the upper chamber 19, thereby generating a damping force. In other words, the outer valve seat portion 136 and the intermediate valve seat portion 135 of the second damping force generating mechanism 173 are provided on the valve seat member 106. The sub-valve 171 that constitutes the second compression damping force generating mechanism 173 is the compression sub-valve.

[0060] In the second passage 172, when the second damping force generating mechanism 173 is in an open state, the passage inside the notch 88 of the disc 82 becomes the narrowest among the portions with fixed flow path cross-sectional areas, and becomes an orifice 175 in the second passage 172. The orifice 175 is disposed downstream of the sub-valve 171 in the flow of oil when the oil flows in the second passage 172 and the sub-valve 171 opens.

[0061] In the compression-side second damping force generating mechanism 173, no fixed orifice is formed in the outer valve seat portion 136, the intermediate valve seat portion 135, or the sub-valve 171 abutting thereon, which communicates between the upper chamber 19 and the lower chamber 20, even when these are in contact with each other. In other words, in the compression-side second damping force generating mechanism 173, when the outer valve seat portion 136 and the intermediate valve seat portion 135 are in contact with the disc 105 over the entire circumference, the upper chamber 19 and the lower chamber 20 are not in communication with each other. In other words, the second passage 172 does not have a fixed orifice that constantly communicates between the upper chamber 19 and the lower chamber 20, and is not a passage that constantly communicates between the upper chamber 19 and the lower chamber 20. The passage-forming member 102 is thicker and more rigid than the disc 105 that constitutes the sub-valve 171. The passage forming member 102, together with the disk 103, restricts deformation of the sub-valve 171 in the opening direction beyond a specified limit.

[0062] The second compression passage 172, which allows communication between the upper chamber 19 and the lower chamber 20, is arranged in parallel with the first passage 72, which is also a compression passage that allows communication between the upper chamber 19 and the lower chamber 20. The first damping force generating mechanism 42 is provided in the first passage 72. The second damping force generating mechanism 173 is provided in the second passage 172. Therefore, the first damping force generating mechanism 42 and the second damping force generating mechanism 173 on the compression side are arranged in parallel.

[0063] The multiple discs 108 have an outer diameter that is approximately the same as the outer diameter of the valve seat portion 139 of the valve seat member 106, and are constantly in contact with the inner seat portion 138 so as to be able to seat on the valve seat portion 139. The discs 108 have a smaller diameter than the outer diameter of the discs 105, and are therefore more rigid than the discs 105.

[0064] The plurality of discs 109 have an outer diameter smaller than that of the discs 108 and substantially the same as that of the inner seat portion 138 of the valve seat member 106. The discs 110 have an outer diameter larger than that of the discs 109 and smaller than that of the discs 108. The annular member 111 has an outer diameter that is larger than the outer diameter of the disk 110 and slightly smaller than the outer diameter of the disk 108, and is thicker and more rigid than the disk 108.

[0065] The multiple discs 108 constitute a sub-valve 181 (first sub-valve) that can be seated on and removed from the valve seat portion 139. The sub-valve 181 is provided in the lower chamber 20. When the sub-valve 181 is released from the valve seat portion 139, it connects the cap chamber 146 and the lower chamber 20 via the passage in the through-hole 161 of the disc 105 and the passage in the inner passage hole 141. In this way, the sub-valve 181 connects the upper chamber 19 to the lower chamber 20. At this time, the sub-valve 181 suppresses the flow of oil between the valve seat portion 139 and generates a damping force. The sub-valve 181 is a discharge valve that opens when discharging oil from inside the cap chamber 146 to the lower chamber 20 via the passage in the through-hole 161 of the disc 105 and the passage in the inner passage hole 141. The sub-valve 181 is a check valve that restricts the inflow of oil from the lower chamber 20 into the cap chamber 146 via the passage in the inner passage hole 141 .

[0066] The passage within the passage hole 37 of the piston 18, the passage within the notch 88 of the disc 82, the passage within the large-diameter hole 46 of the piston 18, the passage within the passage cutout 30 of the piston rod 21, the passage within the large-diameter hole 152 and the passage groove 153 of the passage forming member 102, the cap chamber 146, the passage within the through-hole 161 of the disc 105, the passage within the inner passage hole 141, and the passage between the sub-valve 181 and the valve seat 139 that appears when the valve is opened constitute a second passage 182 through which oil flows from the upper chamber 19 (upstream) to the lower chamber 20 (downstream) as the piston 18 moves. The second passage 182 serves as an extension-side passage through which oil flows from the upper chamber 19 (upstream) to the lower chamber 20 (downstream) as the piston 18 moves toward the upper chamber 19, i.e., during the extension stroke. The second passage 182 includes the passage within the passage cutout 30 formed by cutting out the piston rod 21. In other words, the second passage 182 is formed by cutting out a part of the piston rod 21 .

[0067] The sub-valve 181, the valve seat portion 139, the plurality of discs 109, the discs 110, and the annular member 111 constitute a second extension-side damping force generating mechanism 183. The second damping force generating mechanism 183 is provided in a second extension-side passage 182. The second damping force generating mechanism 183 opens and closes the second passage 182, and generates a damping force by suppressing the flow of hydraulic fluid from the second passage 182 to the lower chamber 20. In other words, the second damping force generating mechanism 183 has the valve seat portion 139 provided on the valve seat member 106. The sub-valve 181 that constitutes the second extension-side damping force generating mechanism 183 is the extension-side sub-valve.

[0068] In the second passage 182, when the second damping force generating mechanism 183 is in an open state, the passage inside the cutout portion 88 of the disc 82 becomes the narrowest among the portions with fixed flow path cross-sectional areas, and also becomes the orifice 175 in the second passage 182. The orifice 175 is common to the second passages 172, 182. The orifice 175 is disposed upstream of the sub-valve 181 in the flow of oil when oil flows in the second passage 182 and the sub-valve 181 opens. The orifice 175 is formed by cutting out the disc 82 that abuts against the piston 18 in the first damping force generating mechanism 41.

[0069] The disc 108 that constitutes the sub-valve 181 has higher rigidity than the disc 105 that constitutes the sub-valve 171, and the sub-valve 181 has higher rigidity than the sub-valve 171. Therefore, the sub-valve 171, which is an inlet valve to the cap chamber 146, has a lower valve opening pressure than the sub-valve 181, which is an outlet valve from the cap chamber 146. The sub-valves 181 and 171 open and close independently.

[0070] In the extension-side second damping force generating mechanism 183, no fixed orifice is formed in either the valve seat portion 139 or the disc 108 abutting thereon, which communicates between the upper chamber 19 and the lower chamber 20, even when these are in contact with each other. In other words, when the valve seat portion 139 and the disc 108 are in contact with each other over the entire circumference, the extension-side second damping force generating mechanism 183 does not communicate between the upper chamber 19 and the lower chamber 20. In other words, the second passage 182 does not have a fixed orifice that constantly communicates between the upper chamber 19 and the lower chamber 20, and is not a passage that constantly communicates between the upper chamber 19 and the lower chamber 20. The annular member 111, together with the disc 110, restricts deformation of the sub-valve 181 in the opening direction beyond a specified limit.

[0071] In shock absorber 1, the flow of oil passing in the axial direction at least within piston 18 allows communication between upper chamber 19 and lower chamber 20 only via first damping force generating mechanisms 41, 42 and second damping force generating mechanisms 173, 183. Therefore, in shock absorber 1, no fixed orifice that constantly communicates upper chamber 19 and lower chamber 20 is provided on the passage of oil passing in the axial direction at least within piston 18.

[0072] The second extension passage 182, which can communicate between the upper chamber 19 and the lower chamber 20, is parallel to the first passage 92, which is also an extension passage which can communicate between the upper chamber 19 and the lower chamber 20, except for the passage inside the passage hole 37 on the upper chamber 19 side. In the parallel portion between the second passage 182 and the first passage 92, the first passage 92 is provided with a first damping force generating mechanism 41, and the second passage 182 is provided with a second damping force generating mechanism 183. Therefore, the first extension-side damping force generating mechanism 41 and the second damping force generating mechanism 183 are arranged in parallel.

[0073] The second damping force generating mechanisms 173, 183 include a valve seat member 106, a sub-valve 181 provided on one side (lower chamber 20 side) and a sub-valve 171 provided on the other side (upper chamber 19 side) of second passages 172, 182 provided in the valve seat member 106, and a cylindrical cap member 101 with a bottom provided between the piston 18 and the valve seat member 106 in the second passages 172, 182. The sub-valve 181 is provided on the lower chamber 20 side of the valve seat member 106, and the sub-valve 171 is provided in a cap chamber 146 between the bottom 122 of the cap member 101 and the valve seat member 106.

[0074] 1, the above-mentioned base valve 25 is provided between the bottom member 12 of the outer cylinder 4 and the inner cylinder 3. This base valve 25 has a base valve member 191 that separates the lower chamber 20 and the reservoir chamber 6, a disk 192 provided on the lower side of this base valve member 191, i.e., on the reservoir chamber 6 side, a disk 193 provided on the upper side of the base valve member 191, i.e., on the lower chamber 20 side, and a mounting pin 194 that attaches the disk 192 and the disk 193 to the base valve member 191.

[0075] The base valve member 191 has an annular shape. A mounting pin 194 is inserted through the radial center of the base valve member 191. The base valve member 191 is formed with a plurality of passage holes 195 that allow hydraulic fluid to flow between the lower chamber 20 and the reservoir chamber 6, and a plurality of passage holes 196 that are located radially outward of the base valve member 191 from the passage holes 195 and allow hydraulic fluid to flow between the lower chamber 20 and the reservoir chamber 6. The disk 192 on the reservoir chamber 6 side allows hydraulic fluid to flow from the lower chamber 20 to the reservoir chamber 6 via the passage holes 195, while restricting hydraulic fluid from flowing from the reservoir chamber 6 to the lower chamber 20 via the passage holes 195. The disk 193 allows hydraulic fluid to flow from the reservoir chamber 6 to the lower chamber 20 via the passage holes 196, while restricting hydraulic fluid from flowing from the lower chamber 20 to the reservoir chamber 6 via the passage holes 196.

[0076] The disc 192 and the base valve member 191 constitute a compression-side damping valve mechanism 197 that opens during the compression stroke of the shock absorber 1 to allow hydraulic fluid to flow from the lower chamber 20 to the reservoir chamber 6 and generate a damping force. The disc 193 and the base valve member 191 constitute a suction valve mechanism 198 that opens during the extension stroke of the shock absorber 1 to allow hydraulic fluid to flow from the reservoir chamber 6 into the lower chamber 20. The suction valve mechanism 198 mainly functions to allow hydraulic fluid to flow from the reservoir chamber 6 to the lower chamber 20 without generating any damping force, so as to make up for a shortage of hydraulic fluid caused by the extension of the piston rod 21 from the cylinder 2.

[0077] As shown in FIG. 2 , when assembling the piston 18 and other components to the piston rod 21, the mounting shaft portion 28 of the piston rod 21 is inserted, and the annular member 67, the disc 66, the disc 65, the plurality of discs 64, the plurality of discs 63, the disc 62, and the piston 18 are sequentially stacked on the shaft step portion 29. At this time, the piston 18 is oriented so that the small-diameter hole portion 45 faces the shaft step portion 29. Additionally, while the mounting shaft portion 28 is inserted, the disc 82, the plurality of discs 83, the disc 84, the disc 85, and the cap member 101 are sequentially stacked on the piston 18. At this time, the cap member 101 is oriented so that the expanded-diameter opening portion 125 faces away from the piston 18, and the bottom portion 122 abuts against the disc 85. Furthermore, while the mounting shaft portion 28 is inserted, the passage-forming member 102 is stacked on the bottom portion 122 of the cap member 101. At this time, the passage forming member 102 is oriented so that the large diameter hole 152 and the passage groove 153 face the bottom portion 122 side.

[0078] Additionally, with the mounting shaft portion 28 inserted, the disc 103, the disc 104, the plurality of discs 105, and the valve seat member 106 with the O-ring 107 attached are placed on the passage forming member 102. At this time, the valve seat member 106 is oriented so that the inner seat portion 134, the intermediate valve seat portion 135, and the outer valve seat portion 136 face the plurality of discs 105, and the main body portion 132 and the O-ring 107 are fitted into the tubular portion 124 of the cap member 101. Furthermore, with the mounting shaft portion 28 inserted, the plurality of discs 108, the plurality of discs 109, the disc 110, and the annular member 111 are placed on the valve seat member 106. In this state, a nut 112 is screwed onto the male thread 31 of the piston rod 21 protruding beyond the annular member 111, and the nut 112 and the shaft step portion 29 clamp the inner peripheral sides of these in the axial direction.

[0079] In this state, the main valve 71 is clamped at its inner periphery to the inner seat portion 49 of the piston 18 and the disc 65 via the disc 62, and abuts over its entire periphery against the valve seat portion 50 of the piston 18. In this state, the main valve 91 is clamped at its inner periphery to the inner seat portion 47 of the piston 18 and the disc 84 via the disc 82, and abuts over its entire periphery against the valve seat portion 48 of the piston 18. In this state, the sub-valve 171 is clamped at its inner periphery to the inner seat portion 134 of the valve seat member 106 and the disc 104, and abuts over its entire periphery against the intermediate valve seat portion 135 and the outer valve seat portion 136 of the valve seat member 106. In this state, the sub-valve 181 is clamped at its inner periphery to the inner seat portion 138 of the valve seat member 106 and the disc 109, and abuts over its entire periphery against the valve seat portion 139 of the valve seat member 106.

[0080] A hydraulic circuit diagram of the shock absorber 1 of the first embodiment described above is shown in Fig. 4. As shown in Fig. 4, a first extension-side damping force generating mechanism 41 is provided in the first extension-side passage 92 connecting the upper chamber 19 and the lower chamber 20. A second extension-side damping force generating mechanism 183 is provided in parallel to the first damping force generating mechanism 41 in a second extension-side passage 182 connecting the upper chamber 19 and the lower chamber 20. A first compression-side damping force generating mechanism 42 is provided in the first compression-side passage 72 connecting the lower chamber 20 and the upper chamber 19. A second compression-side damping force generating mechanism 173 is provided in parallel to the first damping force generating mechanism 42 in a second compression-side passage 172 connecting the lower chamber 20 and the upper chamber 19. An orifice 175 is provided in a common portion of the second passages 172, 182 closer to the upper chamber 19 than the second damping force generating mechanisms 173, 183. As mentioned above, this shock absorber 1 is not provided with a fixed orifice that constantly connects the upper chamber 19 and the lower chamber 20.

[0081] As shown in Figure 2, of the first damping force generating mechanism 41 and second damping force generating mechanism 183 on the extension side, the main valve 91 of the first damping force generating mechanism 41 has higher rigidity and a higher valve opening pressure than the sub-valve 181 of the second damping force generating mechanism 183. Therefore, during the extension stroke, in the extremely low speed region where the piston speed is slower than a predetermined value, the first damping force generating mechanism 41 remains closed and the second damping force generating mechanism 183 opens. In the normal speed region where the piston speed is equal to or greater than this predetermined value, both the first damping force generating mechanism 41 and the second damping force generating mechanism 183 open. The sub-valve 181 is an extremely low speed valve that opens in the extremely low speed region of the piston speed to generate damping force.

[0082] That is, during the extension stroke, as the piston 18 moves toward the upper chamber 19, the pressure in the upper chamber 19 increases and the pressure in the lower chamber 20 decreases. However, because neither the first damping force generating mechanisms 41, 42 nor the second damping force generating mechanisms 173, 183 have fixed orifices, oil does not flow until the second damping force generating mechanism 183 opens. For this reason, as shown in FIG. 5 , during the extension stroke when the piston speed (PS) is less than the first predetermined value v1, the damping force (DF) rises sharply. When the piston speed (PS) is in a region higher than the first predetermined value v1 at which the second damping force generating mechanism 183 opens, and in an extremely low speed region (v1 or higher but less than v2) that is faster than the first predetermined value v1 and slower than the second predetermined value v2, the first damping force generating mechanism 41 remains closed and the second damping force generating mechanism 183 opens.

[0083] In other words, the sub-valve 181 is lifted off the valve seat 139, and the upper chamber 19 and the lower chamber 20 are connected via the extension-side second passage 182. As a result, oil in the upper chamber 19 flows to the lower chamber 20 via the passage in the passage hole 37 of the piston 18, the orifice 175, the passage in the large-diameter hole 46 of the piston 18, the passage in the passage cutout 30 of the piston rod 21, the passages in the large-diameter hole 152 and the passage groove 153 of the passage forming member 102, the cap chamber 146, the passage in the through-hole 161 of the sub-valve 171, the passage in the inner passage hole 141, and the passage between the sub-valve 181 and the valve seat 139. As a result, a damping force with a valve characteristic (a characteristic in which the damping force is approximately proportional to the piston speed) can be obtained even in an extremely low speed region (greater than or equal to v1 and less than v2) where the piston speed (PS) is lower than the second predetermined value v2.

[0084] During the extension stroke, when the piston speed is in the normal speed range where the piston speed is equal to or greater than the second predetermined value v2, the first damping force generating mechanism 41 opens while the second damping force generating mechanism 183 remains open. That is, the sub-valve 181 leaves the valve seat 139, and hydraulic fluid flows from the upper chamber 19 to the lower chamber 20 through the second extension passage 182. At this time, the flow of hydraulic fluid is throttled by the orifice 175, which is located downstream of the main valve 91 in the second passage 182, increasing the pressure applied to the main valve 91 and increasing the pressure difference. As a result, the main valve 91 leaves the valve seat 48, and hydraulic fluid flows from the upper chamber 19 to the lower chamber 20 through the first extension passage 92. Therefore, hydraulic fluid in the upper chamber 19 flows to the lower chamber 20 via the passage in the passage hole 37 and the passage between the main valve 91 and the valve seat 48.

[0085] Here, during the extension stroke, in a normal speed region where the piston speed (PS) is equal to or greater than the second predetermined value v2, the differential pressure between the upper chamber 19 and the lower chamber 20 becomes larger than in a low speed region where the piston speed is equal to or greater than the first predetermined value v1 and less than the second predetermined value v2. However, because the first passage 92 is not restricted by an orifice, opening the main valve 91 allows oil to flow at a large flow rate through the first passage 92. This, combined with restricting the second passage 182 by the orifice 175, makes it possible to suppress deformation of the sub-valve 181.

[0086] At this time, pressures in opposite directions are applied to the closed sub-valve 171 from the lower chamber 20 and the cap chamber 146. Even if the pressure difference between the upper chamber 19 and the lower chamber 20 increases, the orifice 175 is formed in the second passage 182 upstream of the sub-valve 171, so the pressure increase in the cap chamber 146 is gradual relative to the pressure increase in the upper chamber 19, preventing the pressure difference between the cap chamber 146 and the lower chamber 20 from increasing. This prevents the pressure difference between the cap chamber 146 and the lower chamber 20 that the closed sub-valve 171 receives from increasing, preventing a large back pressure from being applied to the sub-valve 171 from the cap chamber 146 side toward the lower chamber 20 side.

[0087] The shock absorber 1 has a first passage 92 and a second passage 182 arranged in parallel to each other as a flow path for flowing oil from the upper chamber 19 to the lower chamber 20 during the extension stroke, and has a main valve 91 and a sub-valve 181 arranged in parallel. The orifice 175 is connected in series with the sub-valve 181.

[0088] As described above, during the extension stroke, in the normal speed region where the piston speed (PS) is equal to or greater than the second predetermined value v2, the main valve 91 opens, allowing hydraulic fluid to flow at a large flow rate through the first passage 92. This reduces the flow rate through the passage between the sub-valve 181 and the valve seat 139. This allows the valve rigidity of the sub-valve 181 to be reduced. Therefore, for example, as shown in Figure 5, the rate of increase in the damping force (DF) relative to an increase in piston speed (PS) in the normal speed region (v2 or higher) can be lowered from dashed line X1 to solid line X2. In other words, the slope of the rate of increase in the extension damping force (DF) relative to an increase in piston speed (PS) in the normal speed region (v2 or higher) can be made gentler than in the extremely low speed region (less than v2). This allows for greater design freedom.

[0089] Of the first damping force generating mechanism 42 and second damping force generating mechanism 173, both of which are on the compression side, the main valve 71 of the first damping force generating mechanism 42 has greater rigidity and a higher valve opening pressure than the sub-valve 171 of the second damping force generating mechanism 173. Therefore, during the compression stroke, in the extremely low speed region where the piston speed is slower than a predetermined value, the first damping force generating mechanism 42 remains closed and the second damping force generating mechanism 173 opens. In the normal speed region where the piston speed is equal to or greater than this predetermined value, both the first damping force generating mechanism 42 and the second damping force generating mechanism 173 open. The sub-valve 171 is an extremely low speed valve that opens in the extremely low speed region of the piston speed to generate damping force.

[0090] That is, during the compression stroke, as the piston 18 moves toward the lower chamber 20, the pressure in the lower chamber 20 increases and the pressure in the upper chamber 19 decreases. However, because neither the first damping force generating mechanisms 41, 42 nor the second damping force generating mechanisms 173, 183 have fixed orifices, oil does not flow until the second damping force generating mechanism 173 opens. As a result, the damping force rises suddenly. In the extremely low speed region where the piston speed is higher than the third predetermined value at which the second damping force generating mechanism 173 opens, which is higher than the third predetermined value but lower than a fourth predetermined value, the first damping force generating mechanism 42 remains closed and the second damping force generating mechanism 173 opens.

[0091] In other words, the sub-valve 171 leaves the outer valve seat portion 136, and the lower chamber 20 and the upper chamber 19 communicate with each other through the compression-side second passage 172. As a result, oil in the lower chamber 20 flows to the upper chamber 19 via the passage in the outer passage hole 143, the passage between the sub-valve 171 and the outer valve seat portion 136, the cap chamber 146, the passage groove 153 and the large-diameter hole 152 of the passage forming member 102, the passage in the passage cutout portion 30 of the piston rod 21, the passage in the large-diameter hole portion 46 of the piston 18, the orifice 175, and the passage in the passage hole 37 of the piston 18. As a result, a damping force with a valve characteristic (a characteristic in which the damping force is approximately proportional to the piston speed) can be obtained even in an extremely low-speed region where the piston speed is slower than the fourth predetermined value.

[0092] During the compression stroke, when the piston speed is in the normal speed range above the fourth predetermined value, the first damping force generating mechanism 42 opens while the second damping force generating mechanism 173 remains open. That is, the sub-valve 171 leaves the outer valve seat 136, and hydraulic fluid flows from the lower chamber 20 to the upper chamber 19 through the second compression passage 172. At this time, the orifice 175 in the second passage 172 restricts the hydraulic fluid flow rate, so the pressure difference across the main valve 71 increases, causing the main valve 71 to leave the valve seat 50, and hydraulic fluid flows from the lower chamber 20 to the upper chamber 19 through the first compression passage 72. As a result, hydraulic fluid in the lower chamber 20 flows through the passage in the passage hole 39 and the passage between the main valve 71 and the valve seat 50. As a result, damping force with valve characteristics (damping force approximately proportional to piston speed) can be obtained even when the piston speed is in the normal speed range above the fourth predetermined value. The rate of increase in the compression-side damping force with respect to an increase in piston speed in the normal speed region is lower than the rate of increase in the compression-side damping force with respect to an increase in piston speed in the extremely low speed region. In other words, the slope of the rate of increase in the compression-side damping force with respect to an increase in piston speed in the normal speed region can be made flatter than in the extremely low speed region.

[0093] During the compression stroke, in the normal speed region where the piston speed is equal to or greater than a fourth predetermined value, the differential pressure between the lower chamber 20 and the upper chamber 19 becomes larger than in the low speed region. However, because the first passage 72 is not restricted by an orifice, opening the main valve 71 allows a large flow rate of oil to flow through the first passage 72. This reduces the flow rate through the sub-valve 171, allowing the valve stiffness of the sub-valve 171 to be reduced. This makes it possible to reduce the damping force in the normal speed region of the piston speed, thereby expanding the degree of design freedom.

[0094] When the piston speed is high, the pressure difference between the lower chamber 20 and the upper chamber 19 becomes large, but by restricting the second passage 172 with the orifice 175, the pressure in the cap chamber 146, which communicates with the upper chamber 19 via the orifice 175, becomes the pressure between the lower chamber 20 and the upper chamber 19. This makes it possible to prevent the pressure difference between the lower chamber 20 and the upper chamber 19 from becoming too large. This, combined with the fact that the main valve 71 opens to allow oil to flow at a large flow rate through the first passage 72, makes it possible to prevent deformation of the sub-valve 171.

[0095] When the sub-valve 181 is closed, pressures are applied in opposite directions from the lower chamber 20 and the cap chamber 146. At this time, although the differential pressure between the lower chamber 20 and the upper chamber 19 is large, the lower chamber 20 and the cap chamber 146 are connected by opening the sub-valve 171, and an orifice 175 is provided between the cap chamber 146, which is downstream of the sub-valve 181, and the upper chamber 19. This prevents the pressure in the cap chamber 146 from decreasing too much, and allows the pressure in the cap chamber 146 to increase in accordance with the increase in pressure in the lower chamber 20. Therefore, the differential pressure between the upstream and downstream surfaces of the sub-valve 181 is small, preventing a large back pressure from being applied to the sub-valve 181 from the lower chamber 20 toward the cap chamber 146.

[0096] In the shock absorber 1 described above, a first passage 72 and a second passage 172 are provided in parallel to form a flow path for flowing oil from the lower chamber 20 to the upper chamber 19 during the compression stroke, and the main valve 71 and the sub-valve 171 are provided in parallel. The orifice 175 is connected in series to the sub-valve 171 in the second passage 172.

[0097] During the compression stroke, the damping force characteristics of the damping valve mechanism 197 are also taken into account.

[0098] During the extension stroke, in the normal speed region where the piston speed is equal to or greater than a second predetermined value, the pressure difference between the upper chamber 19 and the lower chamber 20 becomes large, but the orifice 175 formed upstream of the sub-valve 171 can suppress the pressure increase in the cap chamber 146, thereby suppressing deformation of the sub-valve 171 due to back pressure. During the compression stroke, in the normal speed region where the piston speed is equal to or greater than a fourth predetermined value, the pressure difference between the lower chamber 20 and the upper chamber 19 becomes larger than in the low speed region, but by flowing hydraulic fluid at a large flow rate through the first passage 72 and throttling the second passage 172 downstream of the sub-valve 171 with the orifice 175, deformation of the sub-valve 171 can be suppressed. Therefore, the durability of the sub-valve 171 can be improved.

[0099] During the extension stroke, in the normal speed region where the piston speed is equal to or greater than a second predetermined value, the pressure difference between the upper chamber 19 and the lower chamber 20 is greater than in the low-speed region. However, by allowing hydraulic fluid to flow at a large flow rate through the first passage 92 and throttling the second passage 182 with the orifice 175, deformation of the sub-valve 181 can be suppressed. During the compression stroke, in the normal speed region where the piston speed is equal to or greater than a fourth predetermined value, the pressure difference between the lower chamber 20 and the upper chamber 19 becomes greater. However, with the sub-valve 171 open, the lower chamber 20 and the cap chamber 146 are in communication with each other, and the flow of hydraulic fluid to the upper chamber 19 is throttled by the orifice 175 provided between the cap chamber 146 and the upper chamber 19. Therefore, the pressure difference between the lower chamber 20 and the cap chamber 146 is small, suppressing deformation of the sub-valve 181 due to back pressure. This improves the durability of the sub-valve 181.

[0100] Since there are independent second damping force generating mechanisms 173, 183 for the compression stroke and the extension stroke, the degree of freedom in setting the damping force characteristics is increased.

[0101] The aforementioned Patent Document 1 describes a parallel arrangement of valves that open in the same stroke by connecting two oil chambers with parallel flow paths and providing valves in each of these paths. By adopting a structure in which valves that open in the same stroke are arranged in parallel, one valve can be opened in a range where the piston speed is slower than the other valve, and both valves can be opened in a range where the piston speed is faster. In such a structure, there is a demand for improving the durability of the valve on the slower speed side in particular.

[0102] In contrast, in the shock absorber 1 of the first embodiment, the sub-valve 181 and the sub-valve 171 of the second damping force generating mechanisms 173, 183 in the second passages 172, 182 that are parallel to the first passages 72, 92 of the piston 18 in which the first damping force generating mechanisms 41, 42 are provided are provided in the valve seat member 106 that is arranged in the lower chamber 20. Additionally, a bottomed, cylindrical cap member 101 is provided between the piston 18 and the valve seat member 106 in the second passages 172, 182, with the valve seat member 106 arranged inside the cap member 101. In this case, the sub-valve 181 is provided on the lower chamber 20 side, and the sub-valve 171 is provided in the cap chamber 146 between the bottom 122 of the cap member 101 and the valve seat member 106. An orifice 175 is arranged in the second passage 172 upstream of the flow during the extension stroke when the sub-valve 181 opens. As a result, during the compression stroke, the orifice 175 throttles the flow of hydraulic fluid from the lower chamber 20 into the cap chamber 146, which opens the sub-valve 171, and then into the upper chamber 19. This reduces the pressure difference between the cap chamber 146 and the lower chamber 20, and the sub-valve 181, which is in the closed state and receives back pressure from the lower chamber 20, receives pressure from the cap chamber 146 that is equal to that of the lower chamber 20, thereby suppressing the back pressure (pressure difference) it receives. This improves the durability of the sub-valve 181.

[0103] The second passages 172, 182 are not always communicating passages and do not have a always communicating fixed orifice, which is highly effective in suppressing the back pressure that the sub-valve 181 receives.

[0104] Since the piston rod 21 is inserted into the piston 18, the cap member 101, and the valve seat member 106, the piston 18, the cap member 101, and the valve seat member 106 can be arranged compactly.

[0105] Since the orifice 175 is formed by cutting out the disk 82 that contacts the piston 18 of the extension-side first damping force generating mechanism 41, the orifice 175 can be easily formed.

[0106] The second passages 172, 182 are each formed by cutting out a portion of the piston rod 21, and therefore the second passages 172, 182 can be easily formed.

[0107] The sub-valve 171, which is an inlet valve into the cap chamber 146, has a lower valve opening pressure than the sub-valve 181, so that hydraulic fluid can easily flow from the lower chamber 20 into the cap chamber 146 by opening the sub-valve 171 during the compression stroke. Therefore, when the pressure in the lower chamber 20 is lower, the closed sub-valve 181 receives pressure from the cap chamber 146 that is equivalent to that of the lower chamber 20, and the back pressure it receives is suppressed. This further improves the durability of the sub-valve 181. Since the pressure difference between the cap chamber 146 and the lower chamber 20 does not increase during both the extension and retraction strokes, it is possible to use a pressed thin plate part for the cap member 107. This is advantageous in terms of manufacturability and weight reduction.

[0108] [Second embodiment] Next, the second embodiment will be described, focusing on the differences from the first embodiment, mainly with reference to Fig. 6. Note that parts common to the first embodiment will be designated by the same names and symbols.

[0109] As shown in FIG. 6, in the shock absorber 1A of the second embodiment, a housing 147 is formed from the same cap member 101, valve seat member 106 and O-ring 107 as in the first embodiment, and a passage forming member 102, a disc 103, a disc 104 and a compression side sub-valve 171 provided therein, and an extension side sub-valve 181 on the opposite side of the valve seat member 106 from the sub-valve 171 are provided with their axial orientations reverse to those in the first embodiment.

[0110] The disc 85 of the first embodiment is not provided on the opposite side of the extension-side main valve 91 from the piston 18, as in the first embodiment, but rather a plurality of (specifically, three) discs 84 similar to those of the first embodiment. A sub-valve 181 made up of a plurality of (specifically, three) discs 108 is stacked on top of these discs 84 on the opposite side of the main valve 91 from the discs 84. A valve seat member 106 is stacked on top of the sub-valve 181 on the opposite side of the disc 84 from the disc 84, with an inner seat portion 138 and a valve seat portion 139 facing the sub-valve 181.

[0111] Furthermore, a compression-side sub-valve 171 made up of multiple (specifically, two) discs 105 is placed on inner seat portion 134, intermediate valve seat portion 135, and outer valve seat portion 136 of valve seat member 106, which face away from sub-valve 181. Disc 104, disc 103, and passage-forming member 102 are placed on sub-valve 171 in this order. Passage-forming member 102 is oriented so that small-diameter fitting hole 151 faces disc 103.

[0112] The cap member 101 is placed over the valve seat member 106, the sub-valve 171, the disk 104, the disk 103, and the passage forming member 102, with the bottom portion 122 abutting against the large diameter hole 152 and the passage groove 153 side of the passage forming member 102, and the cylindrical portion 124 fitting over the main body portion 132 of the valve seat member 106 and the O-ring 107.

[0113] On the side of the bottom 122 of the cap member 101 opposite the passage forming member 102, there are stacked a disk 211, a disk 109 similar to that of the first embodiment, and a disk 110 and an annular member 111, all similar to those of the first embodiment. A nut 112 is provided on the annular member 111 opposite the disk 110, and is threaded onto the male thread 31. The disk 211 is made of metal. The disk 211 is a circular flat plate with a certain thickness and has holes, inside which the mounting shaft portion 28 of the piston rod 21 can be fitted. The outer diameter of the disk 211 is equal to the outer diameter of the disk 110.

[0114] In the second embodiment, due to the above-described arrangement, the axial distance of the passage forming member 102 from the piston 18 is longer than in the first embodiment. Accordingly, the piston rod 21A of the second embodiment is formed with a passage cutout 30A that is axially longer than the passage cutout 30 of the piston rod 21 of the first embodiment. The passage in this passage cutout 30A communicates with the passage in the large diameter hole 152 of the passage forming member 102.

[0115] In the second embodiment, during the compression stroke, hydraulic oil flows from the lower chamber 20 to the upper chamber 19 via the passage within the outer passage hole 143, the passage between the open sub-valve 171 and the outer valve seat 136, the cap chamber 146, the passages within the passage groove 153 and the large diameter bore 152 of the passage forming member 102, the passage within the passage cutout 30A of the piston rod 21A, the passage within the large diameter bore 46 of the piston 18, the orifice 175 consisting of the passage within the cutout 88 of the disc 82, and the passage within the passage hole 37. These constitute a second compression passage 172A.

[0116] During the extension stroke, hydraulic fluid flows from the upper chamber 19 to the lower chamber 20 through the passage in the passage hole 37 of the piston 18, the orifice 175 consisting of the passage in the cutout 88 of the disc 82, the passage in the large diameter hole 46 of the piston 18, the passage in the passage cutout 30A of the piston rod 21A, the passages in the large diameter hole 152 and passage groove 153 of the passage forming member 102, the cap chamber 146, the passage in the through hole 161 of the disc 105, the passage in the inner passage hole 141, and the passage between the opened sub-valve 181 and the valve seat 139. These constitute the second extension passage 182A.

[0117] The shock absorber 1A of the second embodiment has the same hydraulic circuit, operation, and damping force characteristics as the shock absorber 1 of the first embodiment.

[0118] [Third embodiment] Next, the third embodiment will be described, focusing on the differences from the first embodiment, mainly with reference to Fig. 7. Note that parts common to the first embodiment will be designated by the same names and symbols.

[0119] As shown in Fig. 7, the shock absorber 1B of the third embodiment has a piston rod 21B that is partially different in configuration from the piston rod 21. The piston rod 21B has a passage cutout 30B that extends to the shaft step 29 instead of the passage cutout 30. A groove 215 that extends radially and communicates with the inside of the passage cutout 30B is formed in the shaft step 29 of the main shaft portion 27 of the piston rod 21B. The passage inside the passage cutout 30B communicates with the passage inside the large diameter hole 152 of the passage forming member 102. As a result, the passages inside the large diameter hole 152 and the passage groove 153 of the passage forming member 102 are constantly in communication with the upper chamber 19 via the passage inside the passage cutout 30B and the passage inside the groove 215.

[0120] The third embodiment has a piston 18B that is partially different in configuration from piston 18. This piston 18B has a piston main body 35B that is partially different in configuration from piston main body 35. In piston main body 35B, instead of insertion hole 44 having small diameter hole portion 45 and large diameter hole portion 46 of the first embodiment, insertion hole 44B having the same diameter as small diameter hole portion 45 is formed.

[0121] Furthermore, the third embodiment has an extension-side first damping force generating mechanism 41B that is partially different in configuration from the first damping force generating mechanism 41 of the first embodiment. The first damping force generating mechanism 41B has a disk 82B that does not have a notch 88 formed therein, instead of the disk 82 that has the notch 88 formed therein of the first embodiment.

[0122] In the third embodiment, during the compression stroke, oil flows from the lower chamber 20 to the upper chamber 19 via the passage in the outer passage hole 143, the passage between the opened sub-valve 171 and the outer valve seat 136, the cap chamber 146, the passage groove 153 and the large diameter hole 152 of the passage forming member 102, and the passages in the passage cutout 30B and groove 215 of the piston rod 21B. These constitute a compression-side second passage 172B.

[0123] In this second passage 172B, the passage in the passage groove 153 of the passage forming member 102 becomes the orifice 175B, which has the narrowest flow path cross-sectional area among the fixed portions. The orifice 175B is disposed downstream of the sub-valve 171 in the flow of oil when the oil flows in the second passage 172B and the sub-valve 171 opens.

[0124] During the extension stroke, hydraulic fluid flows from the upper chamber 19 to the lower chamber 20 through the groove 215 of the piston rod 21B and the passage in the passage cutout 30B, the large diameter hole 152 and the passage groove 153 of the passage forming member 102, the cap chamber 146, the passage in the through hole 161 of the sub-valve 171, the passage in the inner passage hole 141, and the passage between the opened sub-valve 181 and the valve seat 139. These components form the second extension passage 182B.

[0125] In this second passage 182B as well, the passage in the passage groove 153 of the passage formation member 102 becomes the orifice 175B, which has the narrowest flow path cross-sectional area among the fixed portions. The orifice 175B is disposed upstream of the sub-valve 181 in the flow of oil when the oil flows in the second passage 182B and the sub-valve 181 opens.

[0126] The shock absorber 1B of the third embodiment has the same hydraulic circuit, operation, and damping force characteristics as the shock absorber 1 of the first embodiment.

[0127] [Fourth embodiment] Next, the fourth embodiment will be described, focusing on the differences from the first embodiment, mainly with reference to Fig. 8. Note that parts common to the first embodiment will be designated by the same names and symbols.

[0128] 8, the shock absorber 1C of the fourth embodiment does not include the passage forming member 102 and the disc 103 of the first embodiment. Also, the shock absorber 1C has a housing 147C that is partially different in configuration from the housing 147. The housing 147C includes a valve seat member 106C that is partially different in configuration from the valve seat member 106, and a cap member 101C that is partially different in configuration from the cap member 101.

[0129] The valve seat member 106C has a through hole 131C formed in the radial center of the main body portion 132. The through hole 131C is composed of a large-diameter hole portion 221 on the axial side of the inner seat portion 134 and a small-diameter hole portion 222 on the axial side of the inner seat portion 138. The large-diameter hole portion 221 has a larger diameter than the small-diameter hole portion 222. The valve seat member 106C fits onto the mounting shaft portion 28 at the small-diameter hole portion 222. The valve seat member 106C has a plurality of passage cutouts 223 formed at equal intervals in the circumferential direction, which radially penetrate the inner seat portion 134.

[0130] In order to communicate with the passage inside the large diameter hole portion 221 of the valve seat member 106C, the piston rod 21C of the fourth embodiment has a passage cutout portion 30C whose length in the axial direction of the piston rod 21C is longer than that of the piston rod 21 of the first embodiment.

[0131] The cap member 101C of the fourth embodiment has a bottom portion 122C whose outer diameter is larger than the outer diameter of the bottom portion 122 of the first embodiment, an intermediate tapered portion 123C whose axial length and radial width are smaller than those of the intermediate tapered portion 123 of the first embodiment, and a cylindrical portion 124C whose axial length is longer than that of the cylindrical portion 124. The bottom portion 122C of the cap member 101C restricts deformation of the compression-side sub-valve 171 in the opening direction beyond a specified extent.

[0132] In the fourth embodiment, there are provided a plurality of (specifically, two) disks 104. The disks 104 abut against the bottom portion 122C of the cap member 101C.

[0133] In the fourth embodiment, during the compression stroke, hydraulic oil flows from the lower chamber 20 to the upper chamber 19 via the passage inside the outer passage hole 143, the passage between the open sub-valve 171 and the outer valve seat 136, the cap chamber 146, the passage inside the through-hole 161 of the sub-valve 171, the passages inside the passage cutout 223 and the large diameter hole 221 of the valve seat member 106C, the passage inside the passage cutout 30C of the piston rod 21C, the passage inside the large diameter hole 46 of the piston 18, the orifice 175 consisting of the passage inside the cutout 88 of the disc 82, and the passage inside the passage hole 37. These constitute the second compression passage 172C.

[0134] During the extension stroke, hydraulic fluid flows from the upper chamber 19 to the lower chamber 20 via the passage within the passage hole 37 of the piston 18, the orifice 175 consisting of the passage within the cutout 88 of the disc 82, the passage within the large diameter hole 46 of the piston 18, the passage within the passage cutout 30C of the piston rod 21C, the passages within the large diameter hole 221 and the passage cutout 223 of the valve seat member 106C, the passage within the inner passage hole 141, and the passage between the opened sub-valve 181 and the valve seat 139. These constitute the second extension passage 182C. The passage within the passage cutout 223 is constantly in communication with the passage within the through hole 161 of the disc 105.

[0135] The shock absorber 1C of the fourth embodiment has the same hydraulic circuit, operation, and damping force characteristics as the shock absorber 1 of the first embodiment.

[0136] [Fifth embodiment] Next, the fifth embodiment will be described, focusing on the differences from the third and fourth embodiments, mainly with reference to Figures 9 and 10. Note that parts common to the third and fourth embodiments will be designated by the same names and symbols.

[0137] As shown in FIG. 9, the shock absorber 1D of the fifth embodiment is provided with a first damping force generating mechanism 41B including a disc 82B, a piston 18B and a piston rod 21B, similar to those of the third embodiment, and a cap member 101C and a plurality of (specifically, two) discs 104, similar to those of the fourth embodiment.

[0138] The fifth embodiment has a housing 147D that is partially different in configuration from the housing 147C. The housing 147D has a valve seat member 106D that differs from the valve seat member 106C in that the passage notch 223 is not formed therein.

[0139] The second damping force generating mechanism 173D also has a second damping force generating mechanism 173D that is partially different in configuration from the second damping force generating mechanism 173. The second damping force generating mechanism 173D includes a sub-valve 171D in which a disc 105D that abuts against a valve seat member 106D is partially different in configuration from the disc 105. As shown in FIG. 10 , the disc 105D is formed with a notch 231 that extends from inside the radial through-hole 161 to the inner circumferential edge. The passage within the notch 231 constantly connects the passage within the passage notch 30B of the piston rod 21B and the passage within the large diameter hole 221 of the valve seat member 106D to the passage within the inner passage hole 141.

[0140] 9, the passage within the outer passage hole 143, the passage between the open sub-valve 171D and the outer valve seat 136, the cap chamber 146, the passage within the through-hole 161 of the sub-valve 171D, the passage within the notch 231 of the disc 105D, the passage within the large diameter hole 221 of the valve seat member 106D, and the passage within the passage notch 30B of the piston rod 21B. These constitute the second compression passage 172D.

[0141] In the second passage 172D, the passage inside the cutout portion 231 of the disk 105D becomes the orifice 175D, which has the narrowest flow path cross-sectional area among the fixed portions. The orifice 175D is disposed downstream of the sub-valve 171D in the flow of oil when the oil flows in the second passage 172D and the sub-valve 171D opens.

[0142] During the extension stroke, hydraulic fluid flows from the upper chamber 19 to the lower chamber 20 through the passage in the passage cutout 30B of the piston rod 21B, the passage in the large diameter hole 221 of the valve seat member 106C, the passage in the cutout 231 of the disc 105D, the passage in the inner passage hole 141 of the valve seat member 106C, and the passage between the opened sub-valve 181 and the valve seat 139. These constitute the second extension passage 182D.

[0143] In the second passage 182D, the passage inside the notch 231 of the disk 105D becomes the orifice 175D, which has the narrowest flow path cross-sectional area among the fixed portions. The orifice 175D is disposed upstream of the sub-valve 181 in the flow of oil when the oil flows in the second passage 182D and the sub-valve 181 opens.

[0144] The shock absorber 1D of the fifth embodiment has the same hydraulic circuit, operation, and damping force characteristics as the shock absorber 1 of the first embodiment.

[0145] [Sixth embodiment] Next, the sixth embodiment will be described, focusing on the differences from the fourth embodiment, mainly with reference to Figures 11 and 12. Note that parts common to the fourth embodiment will be designated by the same names and symbols.

[0146] 11, the shock absorber 1E of the sixth embodiment has a cap member 101E that is partially different in configuration from the cap member 101C. The cap member 101E does not have the intermediate tapered portion 123C of the fourth embodiment, and has a bottom portion 122E in which the outer diameter of the bottom portion 122C is increased, and a cylindrical portion 124E in which the axial length of the cylindrical portion 124C is increased.

[0147] The shock absorber 1E has a valve seat member 106E that is partially different in configuration from the valve seat member 106C of the fourth embodiment. The valve seat member 106E does not have a passage cutout 223. The valve seat member 106E has a through hole 131E at the center in the radial direction. In the through hole 131E, large-diameter hole portions 221E are formed on the axial sides of the inner seat portion 138 and the valve seat portion 139, and small-diameter hole portions 222E that are smaller in diameter than the large-diameter hole portion 221E and fit onto the mounting shaft portion 28 are formed on the axial sides of the inner seat portion 134, the intermediate valve seat portion 135, and the outer valve seat portion 136.

[0148] Similar to the fourth embodiment, a plurality of (specifically, two) discs 104 and a compression-side sub-valve 171 are provided inside a housing 147E, which is made up of a cap member 101E, a valve seat member 106E, and an O-ring 107. The sub-valve 171 abuts against an inner seat portion 134, an intermediate valve seat portion 135, and an outer valve seat portion 136 of the valve seat member 106E. The plurality of discs 104 are provided between the sub-valve 171 and a bottom portion 122E of the cap member 101E.

[0149] A housing 147E, a compression-side sub-valve 171, and a plurality of discs 104 are provided with their axial directions facing in the opposite direction to those in the fourth embodiment.

[0150] The shock absorber 1E has an extension-side second damping force generating mechanism 183E that is partially different in configuration from the second damping force generating mechanism 183. The second damping force generating mechanism 183E is equipped with a sub-valve 181E. The sub-valve 181E is different from the sub-valve 181 of the fourth embodiment in that the disc 108E that abuts against the inner seat portion 138 and the valve seat portion 139 of the valve seat member 106E is partially different in configuration from the disc 108. As shown in FIG. 12 , the disc 108E is formed with a notch 241 that extends from a middle position radially inside the valve seat portion 139 to the inner peripheral edge.

[0151] 11 , like the valve seat member 106E, the sub-valve 181E is also provided with its axial orientation reverse to that of the fourth embodiment. That is, multiple (specifically, three) discs 84 and the sub-valve 181E are stacked in this order on the extension-side main valve 91. In this case, the sub-valve 181E has multiple (specifically, two) discs 108 arranged on the axial side of the discs 84 and one disc 108E arranged on the axial opposite side of the discs 84. Then, the valve seat member 106E with the O-ring 107 attached, the sub-valve 171, and the multiple discs 104 are stacked in this order on the axial opposite side of the sub-valve 181E from the discs 84, and a cap member 101E is placed to cover the valve seat member 106E, the sub-valve 171, and the multiple discs 104.

[0152] The cutout 241 of the disc 108E of the sub-valve 181E is formed in a range radially inward of the valve seat 139. The passage in the cutout 241 connects the passage in the passage cutout 30C of the piston rod 21C and the passage in the large diameter hole 221E of the valve seat member 106E to the passage between the sub-valve 181E and the valve seat 139. The passage in the cutout 241 communicates with the cap chamber 146 via the passage in the inner passage hole 141 and the through hole 161 of the sub-valve 171.

[0153] On the opposite side of the disk 104 of the bottom portion 122E of the cap member 101E, one disk 242, one disk 109, one disk 110, and the annular member 111 are stacked. The disk 242 is made of metal. The disk 242 is a circular flat plate with a certain thickness and holes, inside which the mounting shaft portion 28 of the piston rod 21 can be fitted. The outer diameter of the disk 242 is equal to the outer diameter of the disk 110.

[0154] In the sixth embodiment, during the compression stroke, when the sub-valve 171 leaves the outer valve seat 136, hydraulic oil flows from the lower chamber 20 to the upper chamber 19 via the passage within the outer passage hole 143, the passage between the open sub-valve 171 and the outer valve seat 136, the cap chamber 146, the passage within the through-hole 161 of the sub-valve 171, the passage within the inner passage hole 141 of the valve seat member 106E, the passage within the notch 241 of the disc 108E, the passage within the large diameter hole 221E of the valve seat member 106E, the passage within the passage notch 30C of the piston rod 21C, the passage within the notch 88 of the disc 82, and the passage within the passage hole 37 of the piston 18. These passages form a second compression passage 172E.

[0155] At this time, the passage in the notch 88 of the disk 82 becomes the orifice 175, and in addition, the passage in the notch 241 of the disk 108E becomes the orifice 245. The orifice 175 and the orifice 245 are arranged in series downstream of the sub-valve 171 in the flow of oil when the oil flows in the second passage 172E and the sub-valve 171 opens.

[0156] During the extension stroke, hydraulic fluid flows from the upper chamber 19 to the lower chamber 20 through the passage in the passage hole 37 of the piston 18, the passage in the notch 88 of the disc 82, the passage in the large diameter hole 46 of the piston 18, the passage in the passage notch 30C of the piston rod 21C, the passage in the large diameter hole 221E of the valve seat member 106E, the passage in the notch 241 of the disc 108E, and the passage between the sub-valve 181E and the valve seat 139. These constitute a second extension passage 182E.

[0157] In this case, the passage in the cutout 88 of the disk 82 serves as the orifice 175, and the passage in the cutout 241 of the disk 108E serves as the orifice 245. The orifice 175 and the orifice 245 are arranged in series upstream of the sub-valve 181E in the flow of oil when the oil flows in the second passage 182E and the sub-valve 181E opens.

[0158] In the shock absorber 1E of the sixth embodiment, the orifice 175 and the orifice 245 are arranged in series at two locations, which increases the degree of freedom in setting the orifices.

[0159] [Seventh embodiment] Next, the seventh embodiment will be described, focusing on the differences from the third embodiment, mainly with reference to Fig. 13. Note that parts common to the third embodiment will be designated by the same names and symbols.

[0160] As shown in Fig. 13, the shock absorber 1F of the seventh embodiment has a piston 18F that is partially different in configuration from the piston 18B of the third embodiment. The piston 18F has a piston main body 35F that is different from the piston main body 35B.

[0161] An insertion hole 44F is formed in the radial center of the piston body 35F, penetrating the piston body 35F in the axial direction. The mounting shaft portion 28 of the piston rod 21 is fitted into the insertion hole 44F. The piston body 35F is provided with a plurality of passage holes 37F (only one is shown in FIG. 13 because the cross section is shown) that allow communication between the upper chamber 19 and the lower chamber 20, and a plurality of passage holes 39F (only one is shown in FIG. 13 because the cross section is shown) that allow communication between the upper chamber 19 and the lower chamber 20. The piston body 35F is a sintered product. The passage holes 37F and 39F are formed in the piston body 35F during sintering or by cutting with a drill.

[0162] The plurality of passage holes 37F are parallel to the axial direction of the piston body 35F, and the plurality of passage holes 39F are also parallel to the axial direction of the piston body 35F.

[0163] An annular inner seat portion 47F is formed at the axial end of the piston body 35F facing the lower chamber 20, radially inward of the openings of the passage holes 37F facing the lower chamber 20. An annular valve seat portion 48F is formed at the axial end of the piston body 35F facing the lower chamber 20, and together with the inner seat portion 47F, surrounds the openings of the passage holes 37F facing the lower chamber 20.

[0164] An annular inner seat portion 49F is formed at the axial end of the piston body 35F facing the upper chamber 19, radially inward of the openings of the passage holes 39F facing the upper chamber 19. An annular valve seat portion 50F is formed at the axial end of the piston body 35F facing the upper chamber 19, and together with the inner seat portion 49F, surrounds the openings of the passage holes 39F facing the upper chamber 19.

[0165] At the end of the piston body 35F facing the lower chamber 20 in the axial direction, step portions 251 are cut out and formed at the opening positions of each of the circumferential passage holes 39F so as to be positioned axially more inward than the inner seat portions 47F. The step portions 251 constantly connect the corresponding passage holes 39F to the lower chamber 20. At the end of the piston body 35F facing the upper chamber 19 in the axial direction, step portions 252 are cut out and formed at the opening positions of each of the circumferential passage holes 37F so as to be positioned axially more inward than the inner seat portions 49F. The step portions 252 constantly connect the corresponding passage holes 37F to the upper chamber 19.

[0166] In the seventh embodiment, a compression-side main valve 71F is provided, which has a configuration partially different from that of the main valve 71. The main valve 71F includes a disc 63F provided at a predetermined intermediate position in the stacking direction of the plurality of discs 63. The disc 63F is formed with a protrusion 255 that protrudes radially outward and toward one axial direction. The protrusion 255 protrudes toward the valve seat portion 50F. The protrusion 255 presses the outer periphery of one disc 63 that is closer to the valve seat portion 50F than the disc 63F against the valve seat portion 50F. The main valve 71F is constantly in contact with the inner seat portion 49F and is seated and separated from the valve seat portion 50F. The main valve 71F and the valve seat portion 50F together constitute a first compression-side damping force generating mechanism 42F.

[0167] In the seventh embodiment, an extension-side main valve 91F is provided, which has a partial configuration different from that of the main valve 91. The main valve 91F is provided with a disk 83F at a predetermined intermediate position in the stacking direction of the plurality of disks 83. A protrusion 256 that protrudes axially and radially outward is formed on the disk 83F. The protrusion 256 protrudes toward the valve seat portion 48F. The protrusion 256 presses the outer periphery of one of the disks 83 that is closer to the valve seat portion 48F than the disk 83F against the valve seat portion 48F. The main valve 91F is always in contact with the inner seat portion 47F and is seated and separated from the valve seat portion 48F. The main valve 91F and the valve seat portion 48F constitute a first damping force generation mechanism 41F.

[0168] In the seventh embodiment, the passage between the main valve 71F and the valve seat 50F that appears when the valve is opened during the compression stroke, the passage in the passage hole 39F, and the passage in the stepped portion 251 constitute a first compression passage 72F. The passage between the main valve 91F and the valve seat 48F that appears when the valve is opened during the extension stroke, the passage in the passage hole 37F, and the passage in the stepped portion 252 constitute a first extension passage 92F.

[0169] [Eighth embodiment] Next, the eighth embodiment will be described, focusing on the differences from the third embodiment, mainly with reference to Fig. 14. Note that parts common to the third embodiment will be designated by the same names and symbols.

[0170] 14, the shock absorber 1G of the eighth embodiment has a piston 18G that is partially different in configuration from the piston 18B of the third embodiment. The piston 18G has a piston main body 35G that is partially different in configuration from the piston main body 35B.

[0171] An insertion hole 44G is formed in the radial center of the piston body 35G, penetrating the piston body 35G in the axial direction. The mounting shaft portion 28 of the piston rod 21B is fitted into the insertion hole 44G. The piston body 35G is provided with a plurality of passage holes 37G that can communicate between the upper chamber 19 and the lower chamber 20, and a plurality of passage holes 39G that can communicate between the upper chamber 19 and the lower chamber 20. The piston body 35G is a sintered product. The passage holes 37G and 39G are formed in the piston body 35G during sintering or by cutting using a drill.

[0172] The plurality of passage holes 37G extend parallel to the axial direction of the piston body 35G. The plurality of passage holes 39G also extend parallel to the axial direction of the piston body 35G. The plurality of passage holes 37G are formed radially inward of the plurality of passage holes 39G.

[0173] A recess 261 is formed in the radial center of the end of the piston body 35G on the axial side of the lower chamber 20. The recess 261 is recessed axially toward the upper chamber 19. An annular inner seat portion 47G is formed at the bottom of this recess 261, radially inward of the opening of the passage hole 37G on the lower chamber 20 side of the piston body 35G. An annular valve seat portion 48G is formed at the bottom of the recess 261, radially outward of the opening of the passage hole 37G on the lower chamber 20 side of the piston body 35G and radially inward of the opening of the passage hole 39G on the lower chamber 20 side of the piston body 35G.

[0174] An annular inner seat portion 49G is formed at the axial end of the piston body 35G facing the upper chamber 19, radially inward of the opening of the passage hole 37G facing the upper chamber 19. An annular intermediate valve seat portion 265 is formed at the axial end of the piston body 35G facing the upper chamber 19, radially outward of the opening of the passage hole 37G facing the upper chamber 19 and radially inward of the opening of the passage hole 39G facing the upper chamber 19. An annular outer valve seat portion 50G is formed at the axial end of the piston body 35G facing the upper chamber 19, radially outward of the opening of the passage hole 39G facing the upper chamber 19.

[0175] In the eighth embodiment, a compression-side main valve 71G is provided instead of the main valve 71. The main valve 71G is made up of a plurality of (specifically, two) discs 63G. The main valve 71G is always in contact with the inner seat portion 49G and is removably in contact with the intermediate valve seat portion 265 and the outer valve seat portion 50G. The main valve 71G opens and closes the passage in the compression-side passage hole 39G. The intermediate valve seat portion 265, the outer valve seat portion 50G, and the main valve 71G constitute a compression-side second damping force generation mechanism 42G.

[0176] A plurality of (specifically, two) discs 65G, each with an outer diameter smaller than that of the main valve 71G, are provided on the axially opposite side of the main valve 71G from the piston 18G. An annular member 67G is provided on the axially opposite side of the disc 65G from the main valve 71G. The annular member 67G has an outer diameter equal to that of the main valve 71G and abuts against the shaft step 29. The annular member 67G restricts deformation of the main valve 71G in the opening direction beyond a specified limit. A through hole 267 is formed in the disc 63G at a position between the intermediate valve seat portion 265 and the inner seat portion 49G. A through hole 268 is also formed in the disc 65G, radially aligned with the through hole 267. These through holes 267, 268 constantly connect the passage in the passage hole 37G to the upper chamber 19.

[0177] In the eighth embodiment, an extension-side main valve 91G is provided instead of the main valve 91. The main valve 91G is made up of a plurality of (specifically, five) discs 83G. The main valve 91G is always in contact with the inner seat portion 47G and is removably in contact with the valve seat portion 48G. The main valve 91G opens and closes the passage in the extension-side passage hole 37G. The side of the main valve 91G opposite to the piston 18G is in contact with the disc 84.

[0178] In the eighth embodiment, the passage between the main valve 71G and the outer valve seat 50G that appears when the valve is opened during the compression stroke, and the passage inside the passage hole 39G, form a first compression passage 72G. Also, the passage between the main valve 91G and the valve seat 48G that appears when the valve is opened during the extension stroke, the passage inside the passage hole 37G, and the passages inside the through holes 267 and 268 form a first extension passage 92G.

[0179] The main valve 91G, the disk 84, the disk 85, and the bottom portion 122 and intermediate tapered portion 123 of the cap member 101 are disposed within the recess 261 of the piston body 35G of the piston 18G, thereby shortening the axial length of all the parts attached to the mounting shaft portion 28 of the piston rod 21B.

[0180] [Ninth embodiment] Next, the ninth embodiment will be described, focusing on the differences from the third embodiment, mainly with reference to Fig. 15. Note that parts common to the third embodiment will be designated by the same names and symbols.

[0181] 15, the shock absorber 1H of the ninth embodiment has a piston 18H that is partially different in configuration from the piston 18B of the third embodiment. The piston 18H has a piston main body 35H that is partially different in configuration from the piston main body 35.

[0182] An insertion hole 44H is formed in the radial center of the piston body 35H, penetrating in the axial direction. The mounting shaft portion 28 of the piston rod 21 is fitted into the insertion hole 44H. The piston body 35H is provided with a plurality of passage holes 37H (only one is shown in FIG. 15 because the cross section is shown) that allow communication between the upper chamber 19 and the lower chamber 20, and a plurality of passage holes 39H (only one is shown in FIG. 15 because the cross section is shown) that allow communication between the upper chamber 19 and the lower chamber 20. The passage holes 37H and 39H are formed in the piston body 35H by cutting.

[0183] The plurality of passage holes 37H are generally linear. The plurality of passage holes 37H are inclined with respect to the axial direction of the piston body 35H. The plurality of passage holes 39H are also generally linear. The plurality of passage holes 39H are also inclined with respect to the axial direction of the piston body 35H. The upper chamber 19 side of the plurality of passage holes 37H is located radially outward of the piston body 35H relative to the lower chamber 20 side. The lower chamber 20 side of the plurality of passage holes 39H is located radially outward of the piston body 35H relative to the upper chamber 19 side. The piston body 35H has a shape that does not distinguish between a front and a back, and has the same shape regardless of the axial orientation of the piston body 35H when attached to the piston rod 21.

[0184] An annular inner seat portion 47H is formed at the axial end of the piston body 35H facing the lower chamber 20, radially inward of the opening of the passage hole 37H facing the lower chamber 20. An annular valve seat portion 48H is formed at the axial end of the piston body 35H facing the lower chamber 20, radially outward of the opening of the passage hole 37H facing the lower chamber 20. The inner seat portion 47H is recessed more inward in the axial direction of the piston body 35H than the valve seat portion 48H.

[0185] An annular inner seat portion 49H is formed at the axial end of the piston body 35H facing the upper chamber 19, radially inward of the opening of the passage hole 39H facing the upper chamber 19. An annular valve seat portion 50H is formed at the axial end of the piston body 35H facing the upper chamber 19, radially outward of the opening of the passage hole 39H facing the upper chamber 19.

[0186] The ninth embodiment is provided with a second damping force generating mechanism 42H that is partially different in configuration from the second damping force generating mechanism 42. The second damping force generating mechanism 42H has a main valve 71H that differs from the main valve 71 in that a plurality of discs 62 (specifically, three discs) are provided.

[0187] In the ninth embodiment, a first damping force generating mechanism 41H is provided that is partially different in configuration from the first damping force generating mechanism 41B. The first damping force generating mechanism 41H has a main valve 91H. The main valve 91H differs from the main valve 91 in that a plurality of discs 82H (specifically, two discs) are provided on the side of disc 82B opposite disc 83. The discs 82H abut against an inner seat portion 47H on the side opposite disc 82B. The outer diameter of the discs 82H is smaller than the outer diameter of the discs 82B.

[0188] In the ninth embodiment, the passage between the main valve 71H and the valve seat 50H that appears when the valve is opened during the compression stroke, and the passage inside the passage hole 39H, form a first compression passage 72H. Also, the passage between the main valve 91H and the valve seat 48H that appears when the valve is opened during the extension stroke, and the passage inside the passage hole 37H, form a first extension passage 92H.

[0189] Although the seventh to ninth embodiments have been described by taking as examples modifications to the third embodiment, the structures of any of the seventh to ninth embodiments can be applied to the first, second, and fourth to sixth embodiments.

[0190] Furthermore, the above embodiment shows an example in which the present invention is used in a twin-tube hydraulic shock absorber, but it is not limited to this. The present invention may also be used in a monotube hydraulic shock absorber in which the outer tube is eliminated and a gas chamber is formed by a slidable partition on the opposite side of the upper chamber 19 from the lower chamber 20 in the cylinder 2, and it may be used in any shock absorber including a pressure control valve that uses a packing valve with a structure in which a sealing member is provided on a disk.

[0191] According to a first aspect of the above-described embodiment, the shock absorber includes a cylinder filled with hydraulic fluid, a piston slidably disposed within the cylinder and dividing the interior of the cylinder into one side chamber and another side chamber, a piston rod connected to the piston and extending to the outside of the cylinder, a first passage and a second passage through which hydraulic fluid flows from an upstream chamber to a downstream chamber within the cylinder as the piston moves, a first damping force generating mechanism disposed in the first passage and generating a damping force, and a second damping force generating mechanism disposed in an annular valve seat member disposed in the other side chamber and in the second passage parallel to the first passage, generating a damping force. The second damping force generating mechanism includes a first sub-valve disposed on one side of the second passage disposed in the valve seat member and a second sub-valve disposed on the other side, and a cylindrical cap member with a bottom disposed in the second passage between the piston and the valve seat member. The valve seat member is disposed within the cap member. The first sub-valve is disposed in the other side chamber. The second sub-valve is provided in a cap chamber between the bottom of the cap member and the valve seat member. An orifice is arranged in the second passage on the upstream or downstream side of the flow at which the first sub-valve opens. In a low piston speed range, the first damping force generating mechanism is closed and the second damping force generating mechanism is open, and in a speed range where the piston speed is higher than low speed, both the first damping force generating mechanism and the second damping force generating mechanism are open. This makes it possible to improve the durability of the valve.

[0192] In a second aspect, in the first aspect, the second passage is not a passage that is always in communication.

[0193] A third aspect is the first or second aspect, wherein the piston rod is inserted into the piston, the cap member, and the valve seat member.

[0194] A fourth aspect is any one of the first to third aspects, wherein the orifice is formed by cutting out a disk of the first damping force generating mechanism that comes into contact with the piston.

[0195] A fifth aspect is any one of the first to fourth aspects, wherein the second passage is formed by cutting out the piston rod.

[0196] A sixth aspect is any one of the first to fifth aspects, wherein the second sub-valve, which is an inlet valve into the cap chamber, has a lower valve opening pressure than the first sub-valve.

[0197] In a seventh aspect, in any one of the first to sixth aspects, the cap member is a pressed part. [Industrial Applicability]

[0198] According to the shock absorber described above, it is possible to improve the durability of the valve. [Explanation of symbols]

[0199] 1,1A~1H buffer 2 cylinders 18, 18B, 18F~18H Piston 19 Upper chamber (one side chamber) 20 Lower room (other side room) 21,21B Piston rod 41, 41B, 41F-41H First damping force generating mechanism 42, 42B, 42F~42H First damping force generating mechanism 72,72F~72H 1st aisle 92,92F~92H 1st aisle 101, 101C, 101E Cap member 106, 106C~106E Valve seat member 122,122C,122E bottom 146 Cap Room 171,171D Sub-valve (second sub-valve) 172,172A~172E 2nd aisle 173,173D Second damping force generating mechanism 175, 175B, 175D, 245 Orifice 181,181E Sub-valve (first sub-valve) 182,182A~182E 2nd aisle 183,183E Second damping force generating mechanism

Claims

1. a cylinder in which a working fluid is sealed; a piston slidably provided in the cylinder and dividing the interior of the cylinder into two chambers, i.e., one side chamber and the other side chamber; a piston rod having an attachment shaft portion inserted into the piston, the piston rod being connected to the piston and extending to the outside of the cylinder; a first passage through which the working fluid flows from an upstream chamber to a downstream chamber in the cylinder as the piston moves; a second passage provided in parallel with the first passage, through which the working fluid flows from an upstream chamber to a downstream chamber in the cylinder as the piston moves; a first damping force generating mechanism provided in the first passage and configured to generate a damping force by a main valve; a second damping force generating mechanism provided in the second passage and configured to generate a damping force by a sub-valve; an orifice provided in the second passage and arranged in series with the second damping force generating mechanism; Equipped with In a region where the moving speed of the piston is low, the sub-valve of the second damping force generating mechanism is opened while the main valve of the first damping force generating mechanism is closed, In a speed range in which the piston movement speed is faster than a low speed, when the sub-valve of the second damping force generating mechanism is open, the flow of the working fluid in the second passage is suppressed by the orifice, and the pressure applied to the main valve of the first damping force generating mechanism rises to a predetermined pressure, causing the main valve to open.

2. A shock absorber according to claim 1, The main valve is a shock absorber that opens and closes depending on the pressure difference between the first passage and the downstream chamber.

3. The shock absorber according to claim 1 or 2, the first passage is provided in the piston, A shock absorber, wherein a portion of the second passage is provided in the piston rod.

4. The shock absorber according to any one of claims 1 to 3, The main valve is deformable and is provided so as to be able to be seated on and removed from the piston, and the sub-valve is sandwiched between a valve seat member fixed to the piston rod and a nut.

5. The shock absorber according to claim 4, The valve seat member is sandwiched between the piston and the nut.

6. a cylinder in which a working fluid is sealed; a piston slidably provided in the cylinder and dividing the interior of the cylinder into two chambers, i.e., one side chamber and the other side chamber; a piston rod having an attachment shaft portion inserted into the piston, the piston rod being connected to the piston and extending to the outside of the cylinder; a first passage through which the working fluid flows from an upstream chamber to a downstream chamber in the cylinder as the piston moves; a second passage provided in parallel with the first passage, through which the working fluid flows from an upstream chamber to a downstream chamber in the cylinder as the piston moves; a first damping force generating mechanism provided in the first passage and including a main valve; a second damping force generating mechanism provided in the second passage and including a sub-valve; an orifice provided in the second passage and arranged in series with the second damping force generating mechanism; Equipped with In a region where the moving speed of the piston is low, the flow of the working fluid in the second passage is suppressed by the sub-valve of the second damping force generating mechanism with the main valve of the first damping force generating mechanism closed, thereby generating a damping force, In a speed range in which the piston movement speed is faster than a low speed, the orifice restricts the flow of the working fluid in the second passage, and the pressure applied to the main valve of the first damping force generating mechanism rises to a predetermined pressure, causing the valve to open, thereby changing the characteristics of the damping force of the shock absorber.

7. The shock absorber according to claim 6, The sub-valve is a shock absorber in which deformation is suppressed by the orifice in a speed range in which the piston moving speed is higher than a low speed.

8. The shock absorber according to claim 6 or 7, the first passage is provided in the piston, A shock absorber, wherein a portion of the second passage is provided in the piston rod.

Citation Information

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