HYDRAULIC DAMPER WITH A HYDRAULIC COMPRESSION STOP ASSEMBLY
20230117340 · 2023-04-20
Inventors
Cpc classification
F16F2230/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G2800/162
PERFORMING OPERATIONS; TRANSPORTING
F16F2228/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/486
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/5126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2222/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/585
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2234/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G17/08
PERFORMING OPERATIONS; TRANSPORTING
F16F9/3488
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2232/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G17/08
PERFORMING OPERATIONS; TRANSPORTING
F16F9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/348
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure relates to a hydraulic damper comprising a main tube, a piston assembly, a base valve assembly, and at least one hydraulic compression stop assembly cooperating with a compression valve assembly, and comprising a pin disposed slidably within the piston rod and biased to project an activating tip towards the compression chamber. Said compression valve assembly comprises at least one deflectable or floating disc covering compression flow passages, and biased by a piston member slidable along said axis and normally abutting a retaining surface, and a pressure chamber having one surface defined by a surface of said piston member abutting said retaining surface, wherein said pin upon sliding inside the piston rod facilitates a flow of the working liquid from the compression chamber into said pressure chamber to increase biasing load on said at least one deflectable or floating disc.
Claims
1. A hydraulic damper, comprising: a main tube filed with working liquid and extending along an axis between an open end and a closed end; a piston assembly slidably disposed inside the main tube, attached to a piston rod that extends outside the hydraulic damper through a sealed piston rod guide located at the open end, dividing the main tube into a rebound chamber and a compression chamber and configured to generate a damping force; a base valve assembly located at the closed end of the compression chamber and configured to control a flow of the working liquid between the compression chamber and a compensation chamber; and at least one compression stop assembly cooperating with a compression valve assembly and comprising a pin disposed slidably within the piston rod and biased to project an activating tip towards the compression chamber to increase damping of said compression valve assembly upon sliding inside the piston rod and to generate an additional damping force with said piston assembly at an end of a compression stroke; wherein said compression valve assembly comprises: at least one deflectable or floating disc covering compression flow passages and biased by a piston member slidable along said axis and abutting a retaining surface, and a pressure chamber having one surface defined by a surface of said piston member abutting said retaining surface; and wherein said pin, upon sliding inside the piston rod, facilitates a flow of the working liquid from the compression chamber into said pressure chamber to generate a pressure on said surface of said piston member to increase a biasing load on said at least one deflectable or floating disc.
2. The hydraulic damper according to claim 1, wherein the piston assembly includes compression and rebound valve assemblies to control the flow of working liquid passing between the rebound chamber and the compression chamber to generate the damping force.
3. The hydraulic damper according to claim 1, wherein said compression valve assembly comprises at least one spring having a first surface biasing said at least one deflectable or floating disc, and a second surface biasing said piston member.
4. The hydraulic damper according to claim 1, wherein said compression valve assembly cooperating with said at least one compression stop assembly includes a compression valve assembly of the piston assembly, and said pressure chamber is additionally defined by a guiding portion fixed on the piston rod, wherein the piston rod has at least one radial channel in fluid communication with said pressure chamber and normally disconnected from the compression chamber by a wall of the pin, wherein the pin has at least one axial channel in fluid communication with the compression chamber having an outlet distal to the activating tip of the pin normally closed by the wall of the piston rod, wherein said compression flow passages are disposed within the piston assembly, and wherein upon sliding of the pin inside the piston rod along a predetermined distance said at least one axial channel of the pin is in fluid communication with said at least one radial channel of the piston rod to generate pressure on said surface of said piston member.
5. The hydraulic damper according to claim 4, wherein said at least one axial channel has a form of a narrowed cross-section of said pin.
6. The hydraulic damper according to claim 1, wherein said compression valve assembly cooperating with said at least one compression stop assembly is installed within an adapter disposed between the base valve assembly and the compression chamber and comprising an axial opening for a flow of the working liquid through the base valve assembly between the compression chamber and the compensation chamber which is closable by the activating tip of the pin, and said pressure chamber is additionally defined by a guiding portion of said adapter, wherein the adapter has at least one radial channel in fluid communication with said pressure chamber and normally connected with the compression chamber, wherein said compression flow passages are disposed within a valve member fixed between said adapter and the main tube, wherein closing said axial opening by the activating tip and sliding of the pin inside the piston rod along a predetermined distance generates pressure on said surface of said piston member.
7. The hydraulic damper according to claim 6, wherein said adapter comprises a number of axial flow passages surrounding said guiding portion, and said valve member has a number of rebound flow passages covered in the compression chamber by at least one deflective or floating intake disk provided with a number of flow passages that allow the working liquid to flow to said compression flow passages during the compression stroke of the hydraulic damper.
8. The hydraulic damper according to claim 1, wherein the pin is biased by a spring disposed within an internal chamber in the piston rod.
9. The hydraulic damper according to claim 8, wherein the pin has an internal axial channel joining the compression chamber with said internal chamber in the piston rod.
10. The hydraulic damper according to claim 1, wherein the hydraulic damper is a motor vehicle suspension damper.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The disclosure shall be described and explained below in connection with the attached drawings on which:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026]
[0027]
[0028] The term “compression” as used herein with reference to particular elements of the damper refers to these elements or parts of elements which are adjacent to or face the compression chamber 12 or, in a case of the working liquid flow direction, it refers to this flow direction that takes place during the compression stroke of the damper. Similarly the term “rebound” as used in this specification with reference to particular elements of the damper refers to these elements or these parts of particular elements which are adjacent to or face the rebound chamber 11 or, in a case of the working liquid flow direction, it refers to this flow direction that takes place during the rebound stroke of the damper.
[0029] As shown in
[0030] The damper 1 is further provided with two compression stop assemblies 8p and 8b to generate an additional damping force at the end of the compression stroke e.g. in order to avoid abrupt stop of the piston assembly 4. An activating component of both compression stop assemblies 8p and 8b is a pin 81 disposed slidably within an internal chamber 82 of the piston rod 5. The pin 81 is biased to project from the piston rod 5 towards the compression chamber 12 by a spring 83 disposed within the internal chamber 82. The pin 81 has an internal axial channel 84 joining the compression chamber 12 with the internal chamber 82 to provide venting and lubrication.
[0031] The compression stop assembly 8p is installed on the piston assembly 4 and cooperates with the first compression valve assembly 41 of the piston assembly 4. The first compression valve assembly 41 has a spring 411 having a first surface biasing four deflectable discs 412 covering compression flow passages 413 in the body 44 of the piston assembly 4. A second surface of the spring 411 biases a piston member 414 surrounding the piston rod 5 and slidable along the axis A. In an inactive state of the compression stop assembly 8p the piston member 414 abuts a retaining surface 415 of a guiding portion 417 fixed on the piston rod 5. The guiding portion 417 and the surface of the piston member 414 distal to the spring 411 define a pressure chamber 416. The piston rod 5 is provided with a number of equiangularly spaced radial channels 418 that may join the pressure chamber 416 with the compression chamber 12, as shall be explained later.
[0032] The base compression stop assembly 8b is installed on an adapter 9 fixed to the base valve assembly 7 and cooperates with a third compression valve assembly 91 of the adapter 9. The third compression valve assembly 91 has a spring 911 having a first surface biasing three deflectable discs 912 covering compression flow passages 913 in an annular valve member 94 fixed between the adapter 9 and the main tube 3. A second surface of the spring 911 biases a piston member 914 surrounding a sleeve member 92 and slidable along the axis A. The adapter 9 is further provided with a guiding portion 917 surrounding the piston member 914. In an inactive state of the base compression stop assembly 8b, the piston member 914 abuts a retaining surface 915 of the guiding portion 917. The guiding portion 917 and the surface of the piston member 914 distal to the spring 911 define a pressure chamber 916. The adapter 9 is provided with a number of equiangularly spaced radial channels 918 joining the pressure chamber 916 with the compression chamber 12. The sleeve member 92 passes through deflectable discs 912, the valve member 94, and an intake disk 95 and is fixed to the valve member 94 by a securing nut 96. The intake disk 95 is provided with a number of flow passages 951 that allow the working liquid to flow to the compression flow passages 913. The adapter is provided with an axial opening 93, that allows the working liquid to flow between the compression chamber 12 and the compensation chamber 13 that may be closed by an activating tip 85 of the pin 81, as shall be explained later.
[0033] The pin 81 has an axial, annular channel 86 in fluid communication with the compression chamber 12 having an outlet distal to the activating tip 85 of the pin 81 normally closed by the wall of the piston rod 5. As shown in
[0034] Similarly, as shown in
[0035] Each of the compression stop assemblies 8p, 8b cooperates with a corresponding valve assembly 41, 91. The piston compression stop assembly 8p cooperates with the first compression valve assembly 41, and the base compression stop assembly 8b cooperates with the third compression valve assembly 91.
[0036] As shown in
[0037] As shown in
[0038] As shown in
[0039] As shown in
[0040] The above embodiments of the present disclosure are merely exemplary. The figures are not necessarily to scale, and some features may be exaggerated or minimized. These and other factors however should not be considered as limiting the spirit of the disclosure, the intended scope of protection of which is indicated in appended claims.
List of Reference Numerals
[0041] 1. damper [0042] 11. rebound chamber [0043] 12. compression chamber [0044] 13. compensation chamber [0045] 2. external tube [0046] 3. main tube [0047] 31. minimum bearing span [0048] 4. piston assembly [0049] 41. first compression valve assembly [0050] 411. spring [0051] 412. deflectable disc [0052] 413. compression flow passage [0053] 414. piston member [0054] 415. retaining surface [0055] 416. pressure chamber [0056] 417. guiding portion [0057] 418. radial channel [0058] 42. first rebound valve assembly [0059] 43. shoulder nut [0060] 44. body [0061] 5. piston rod [0062] 51. rebound stop [0063] 52. rebound bumper [0064] 6. piston rod guide [0065] 7. base valve assembly [0066] 71. second compression valve assembly [0067] 72. second rebound valve assembly [0068] 8b. base compression stop assembly [0069] 8p. piston compression stop assembly [0070] 81. pin [0071] 82. internal chamber [0072] 83. spring [0073] 84. internal axial channel [0074] 85. activating tip [0075] 86. axial channel [0076] 9. adapter [0077] 91. third compression valve assembly [0078] 911. spring [0079] 912. deflectable disc [0080] 913. compression flow passage [0081] 914. piston member [0082] 915. retaining surface [0083] 916. pressure chamber [0084] 917. guiding portion [0085] 918. radial channel [0086] 92. sleeve member [0087] 93. axial opening [0088] 94. valve member [0089] 95. intake disk [0090] 951. flow passage [0091] 96. securing nut [0092] 97. flow passage [0093] 98. rebound flow passage [0094] 101. vehicle chassis [0095] 102. top mount [0096] 103. screw [0097] 104. spring [0098] 105. steering knuckle [0099] 106. vehicle wheel