Piston Cylinder Device With Protection Arrangement and Method of Protecting a Piston Cylinder Device Against overload or Failure of the Piston Cylinder Device
20190331188 · 2019-10-31
Inventors
Cpc classification
F16F9/0236
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/3214
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/0218
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/0281
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/3242
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/362
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A piston cylinder device (1) comprising a cylinder (2) with a first and a second end and a guide (6), such that a pressure chamber (8) is formed in the cylinder. A piston (12) is moveable in the pressure chamber (8). The guide (6) is fixedly secured to the cylinder (2) by a lock ring (7). A sealing means (9) is arranged to seal between the guide (6) and an inner wall of a tubular wall (3) of the cylinder (2) to prevent fluid leakage from the pressure chamber (8) to the surroundings. The piston cylinder device (1) is provided with a material weakening zone (13) arranged in the inner wall of the tubular wall (3) of the cylinder (2) axially between the lock ring (7) and the second end (20) of the cylinder (2), the material weakening zone (13) being arranged to be deformed or sheared against the lock ring (7) at a predetermined level of impact of the piston (12) against the guide (6). A leakage gap (14) is arranged to interrupt the sealing means (9) upon deformation or shearing of the material weakening zone (13) such that gas from the pressure chamber (8) is allowed to leave the pressure chamber (8) through said leakage gap (14) to the surroundings.
Claims
1. A piston cylinder device, comprising: a cylinder having a tubular wall, an end wall at a first end of the tubular wall and a guide at a second end of the tubular wall, and said tubular wall, said end wall and said guide forming a pressure chamber there between, a piston disposed within the pressure chamber and connected to a piston rod, the piston rod extending through the guide and into the pressure chamber, the piston rod being slidable relative to the guide, the guide being fixedly secured to the cylinder by a lock ring arranged to protrude in a circumferential lock ring groove of an inner wall of the tubular wall of the cylinder and an opposing lock ring groove of an outer wall of the guide, a sealing means is arranged to seal between the guide and the inner wall of the tubular wall to prevent fluid leakage from the pressure chamber to the surroundings, the piston cylinder device is provided with a material weakening zone arranged in the inner wall of the tubular wall of the cylinder axially between the lock ring and the second end of the cylinder, the material weakening zone being arranged to be deformed or sheared against the lock ring at a predetermined level of impact of the piston against the guide, a leakage gap is arranged to interrupt the sealing means upon deformation or shearing of the material weakening zone such that gas from the pressure chamber is allowed to leave the pressure chamber through said leakage gap to the surroundings.
2. The piston cylinder device of claim 1, wherein the material weakening zone is formed between the lock ring groove and a continuous or discontinuous circumferential groove in the inner wall of the of the tubular wall of the cylinder.
3. The piston cylinder device of claim 1, wherein the sealing means is axially arranged between the lock ring and the first end of the cylinder.
4. The piston cylinder device of claim 3, wherein the sealing means is arranged in a circumferential groove in the outer wall of the guide.
5. The piston cylinder device of claim 3, wherein the sealing means is arranged in a circumferential groove in the inner wall of the tubular wall of the cylinder.
6. The piston cylinder device of claim 3, wherein the leakage gap is axially arranged between the lock ring and the sealing means.
7. The piston cylinder device of claim 4, wherein the leakage gap is arranged in the inner wall of the tubular wall of the cylinder.
8. The piston cylinder device of claim 5, wherein the leakage gap is arranged in the outer wall of the guide.
9. The piston cylinder device of claim 7, wherein the leakage gap is a continuous or discontinuous circumferential groove in the inner wall of the tubular wall of the cylinder.
10. The piston cylinder device of claim 8, wherein the leakage gap is a continuous or discontinuous circumferential groove in the outer wall of the guide.
11. The piston cylinder device of claim 6, wherein the leakage gap is integrated with the lock ring groove.
12. The piston cylinder device of claim 6, wherein the leakage gap is arranged at an axial distance from the lock ring groove.
13. A method of protecting a piston cylinder device against overload, said piston cylinder device comprising a cylinder with a first and second end and a guide such that a pressure chamber is defined in the cylinder, and a piston moveable in the pressure chamber, the method comprising: at a predetermined level of impact of the piston against the guide, causing a material weakening zone arranged in an inner wall of a tubular wall of the cylinder to be deformed or sheared, and interrupting a sealing means arranged to seal between the guide and the inner wall of the tubular wall upon deformation or shearing of the material weakening zone such that gas from the pressure chamber is allowed to leave the pressure chamber to the surroundings.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035]
[0036]
[0037] In
[0038] In
[0039] In
[0040]
[0041]
[0042]
DETAILED DESCRIPTION
[0043] In
[0044] The pressure chamber 8 is normally pre-loaded with gas under high pressure, typically in the order of 50-200 bar, normally 150 bar.
[0045] Sealing means 9,
[0046] The guide 6 includes a central opening 10 therethrough, and a piston rod 11 is slidingly received in the opening 10 and extends into the pressure chamber 8. A piston 12 is secured to the end of the piston rod 11 in the pressure chamber 8.
[0047] A seal 21 surrounds the piston rod 11 in order to prevent fluid leakage between the piston rod 11 and the guide 6.
[0048] The piston cylinder device 1 is provided with a material weakening zone 13 arranged in the inner wall of the tubular wall 3 of the cylinder 2 axially between the lock ring 7 and the second end 4 of the cylinder 2. The material weakening zone 13 is arranged to be deformed or sheared against the lock ring 7,
[0049] A leakage gap 14 is arranged to interrupt the sealing means 9 upon deformation or shearing of the material weakening zone 13 such that gas from the pressure chamber 8 is allowed to leave the pressure chamber 8 through the leakage gap 14 to the surroundings.
[0050] Due to the presence of the material weakening zone 13 in the inner wall of the tubular wall 3 of the cylinder 2 axially between the lock ring groove and the second end of the cylinder 2, the piston cylinder device 1 is designed to stop, in a controlled manner, a piston rod 11 moving with high velocity in a direction out of the cylinder, along arrow X shown in
[0051] In
[0052] The material weakening zone 13 may be formed between the lock ring groove and a continuous or discontinuous circumferential groove 30 (see
[0053] The leakage gap 14 may be axially arranged between the lock ring 7 and the sealing means 9 as shown in
[0054] The leakage gap 14 may be a continuous or discontinuous circumferential groove in the inner wall of the tubular wall 3 of the cylinder 2.
[0055] The discontinuous circumferential groove may be a milled or bored undercut along the circumference of the inner wall of the tubular wall.
[0056] The leakage gap 14 may be integrated with the lock ring groove, see
[0057] The leakage gap 14 may alternatively be arranged at an axial distance from the lock ring groove, see