IP Library › Granted Patent US 9,683,625
Granted Patent B2
US 9,683,625 · App. 14/916,063 · Granted Jun 20, 2017

Shock absorber

Inventor: Norihiko Kurita (Gifu, JP)
Assignee: KYB Corporation
F16F9/512B62K25/28F16F9/19F16F9/50F16F9/5165F16F2222/12F16F2228/066
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,683,625
App. No.
14/916,063
Granted
Jun 20, 2017
Kind
B2
Abstract

A shock absorber includes a piston joined to a piston rod that proceeds into and recedes from a cylinder, an extension-side chamber and a compression-side chamber that are separated from each other by the piston and have a working fluid reserved therein, first and second extension-side discharge passages in which the working fluid discharged from the extension-side chamber flows, an extension-side supply passage in which the working fluid to be supplied to the compression-side chamber flows, first and second compression-side discharge passages in which the working fluid discharged from the compression-side chamber flows, and a compression-side supply passage in which the working fluid to be supplied to the extension-side chamber flows. An extension-side damping valve and a compression-side damping valve are respectively provided in the first extension-side discharge passage and the first compression-side discharge passage. An extension-side electromagnetic pressure control valve and a compression-side electromagnetic pressure control valve, which are respectively provided in the second extension-side discharge passage and the second compression-side discharge passage, are set such that the openings thereof are maximized before the piston speed reaches a high-speed range.

Claims (27)

1. A shock absorber comprising:

a tubular cylinder; a piston rod configure to proceed into and recede from the cylinder; a piston joined to the piston rod;

an extension-side chamber and a compression-side chamber configured to be formed inside the cylinder, separated from each other by the piston, and filled with a working fluid;

a tank arranged outside the cylinder and configured to have the working fluid reserved therein;

passages connecting between the extension-side chamber and the compression-side chamber and between the cylinder and the tank,

the passages comprising:

first and second extension-side discharge passages in which the working fluid discharged from the extension-side chamber flows;

an extension-side supply passage in which the working fluid to be supplied to the compression-side chamber flows;

first and second compression-side discharge passages in which the working fluid discharged from the compression-side chamber flows; and

a compression-side supply passage in which the working fluid to be supplied to the extension-side chamber flows,

an extension-side damping valve provided in the first extension-side discharge passage and configured to apply predetermined resistance to the working fluid passing through the first extension-side discharge passage;

an extension-side electromagnetic pressure control valve provided in the second extension-side discharge passage and configured to control a pressure in the extension-side chamber;

a compression-side damping valve provided in the first compression-side discharge passage and configured to apply predetermined resistance to the working fluid passing through the first compression-side discharge passage; and

a compression-side electromagnetic pressure control valve provided in the second compression-side discharge passage and configured to control a pressure in the compression-side chamber,

wherein

the extension-side electromagnetic pressure control valve and the compression-side electromagnetic pressure control valve change an opening degree of the second extension-side discharge passage or an opening degree of the second compression-side discharge passage so that a pressure in the extension-side chamber or the compression-side chamber matches a predetermined constant target pressure when a piston speed is in a first speed range,

the extension-side electromagnetic pressure control valve and the compression-side electromagnetic pressure control valve are controlled so that the opening degree of the second extension-side discharge passage or the opening degree of the second compression-side discharge passage becomes maximum when the piston speed is in a second speed range set to a range faster than the first speed range,

the first extension-side discharge passage bypasses the extension-side electromagnetic control valve, and

the first compression-side discharge passage bypasses the compression-side electromagnetic control valve.

2. The shock absorber according to claim 1 , wherein

the piston is joined to one end portion of the piston rod inside the cylinder,

the compression-side chamber and the tank communicate with each other via the first and second compression-side discharge passages, and

the passages include a third compression-side discharge passage in which the working fluid discharged from the compression-side chamber to the extension-side chamber flows.

3. The shock absorber according to claim 2 , wherein

the extension-side chamber and the compression-side chamber communicate with each other via the first and second extension-side discharge passages.

4. The shock absorber according to claim 1 , wherein

the extension-side chamber and the tank communicate with each other via the compression-side supply passage.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 2, 2016
From: KURITA, NORIHIKO
To: KYB CORPORATION
Reel/Frame 037872/0738 →
Priority Claims (1)
JP 2013-188366 · Sep 11, 2013 · national
Continuity (1)
Related Publication 20160215849A1 · Jul 28, 2016