PATH SPLIT UNIT AND SAFETY VALVE FOR SUSPENSION DEVICE
20170227081 · 2017-08-10
Inventors
Cpc classification
F16K17/0406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A safety valve includes a first part and a second part. The first part has a main chamber, and a sub chamber is defined between the first and second parts. A path split unit includes a base with a recess which communicates with the sub chamber. The base has a main path communicating with the main chamber, and a sub-path unit communicating with a sub chamber. One end of the sub-path unit communicates with the main path. A safety path unit communicates between the sub chamber and the recess and the sub-path unit by a communication path. A switch unit is received in the recess and controls the communication between the main path and the sub-path unit. When a severe and sudden impact is transferred to the suspension device, a portion of liquid in the main path flows into the sub chamber to provide a level of buffering feature.
Claims
1. A path split unit of a suspension device, comprising: a base; a recess defined in a top of the base for receiving a switch unit therein; a main path defined in the base and communicating with a main chamber; a sub-path unit located in the base and having a first sub path and a second sub-path, the first sub-path being in communication between the main path and a sub chamber, the second sub-path being in communication between the recess and the sub chamber; a safety path unit located in the base and having a safety path which communicates with the sub chamber, and a communication path located in the base and communicating with the first sub-path, the recess and the safety path.
2. A safety valve of a suspension device which has an inner tube and an outer tube which is movably mounted to the inner tube, the safety valve comprising: a tube unit adapted to be located in the inner tube and having a first part and a second part which is mounted to the first part, the first part having a main chamber defined therein, a sub chamber defined between the first and second parts; a path split unit having a base which has a recess defined in a top thereof, the recess communicating with the sub chamber, the base having a main path and a sub-path unit, the main path communicating with the main chamber, the sub-path unit communicating with the sub chamber, one end of the sub-path unit communicating with the main path; a safety path unit having one end communicating the sub chamber, the other end of the safety path unit communicating with the recess and the sub-path unit by a communication path, and a switch unit received in the recess, when the switch unit is turned off, the suspension device is locked, a communication between the main path and the sub-path unit is closed, when an impact that is higher than a pre-set value of the suspension device is transferred to the suspension device, a portion of liquid in the main path flows into the sub chamber via the communication path and the safety path unit to provide a level of buffering feature.
3. The path split unit as claimed in claim 1, wherein the safety path unit has a first safety path and a second safety path, the first safety path is in communication between the communication path and the main chamber, and the second safety path is in communication between the communication path and the sub chamber.
4. The safety valve as claimed in claim 2, wherein the sub-path unit has a first sub-path and a second sub-path, the first sub-path is in communication between the main path and the sub chamber, the second sub-path is in communication between the recess and the sub chamber, the communication path communicates with the first sub-path, the recess and the safety path unit.
5. The path split unit as claimed in claim 2, wherein the safety path unit has a safety valve received therein so as to adjust pressure of liquid in the safety path unit to break through a pre-set value, the path split unit has a connection part which is located above the base so as to receive the switch unit and the safety valve therein.
6. The safety valve as claimed in claim 5, wherein a cover is connected to a top of the connection part, a portion of the switch unit and a portion of the safety valve extending through the cover.
7. The safety valve as claimed in claim 1, wherein the safety path unit has a safety valve received therein so as to adjust pressure of liquid in the safety path unit to break through a pre-set value, the safety valve has an adjustment rod which has one end connected to the base, the other end of the adjustment rod extends beyond the base, a bead located in the safety path unit to block the liquid in the safety path unit, a resilient member is located between the bead and the adjustment rod, a knob is connected to the adjustment rod that exposed beyond the base so as to rotate the adjustment rod, the adjustment rod linearly moves in the base to adjust a distance between the adjustment rod and the bead, and to adjust a compression of the resilient member.
8. The safety valve as claimed in claim 2, wherein the first part is a tubular member, the second part is a pouch made by elastic material.
9. The safety valve as claimed in claim 2, wherein the switch unit has a shaft which has one end located in the recess and the other end of the shaft extends beyond the base, the shaft has a guide path which communicates with the sub chamber to guide liquid in the communication path into the sub chamber, when the shaft is rotated an angle, the guide path is closed so that liquid cannot flow between the main chamber, the sub chamber and the path split unit, the portion of the shaft that is exposed beyond the base is connected with a switch which rotates the shaft to control a communication of the guide path.
10. The safety valve as claimed in claim 9, wherein the sub-path unit has at least one second sub-path which is in communication between the recess and the sub chamber, the guide path has at least one guide hole defined in the shaft, when the shaft is rotated the angle, the at least one guide hole is located corresponding to the at least one second sub-path, the liquid flows through the at least one guide hole and the at least one second sub-path to provide buffering feature, when the shaft is rotated another angle, the at least one guide hole is located offset from the at least one second sub-path, the liquid cannot flow through the at least one guide hole and the at least one second sub-path, the suspension device is locked.
11. The safety valve as claimed in claim 2, wherein the safety path unit has a first safety path and a second safety path, the first safety path is in communication between the communication path and the main chamber, the second safety path is in communication between the communication path 50 and the sub chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0038] Referring to
[0039] A path split unit 30 has a base 31 which has a recess 32 defined in the top thereof, wherein the recess 32 communicates with the sub chamber 24 and a switch unit 60 is received therein. The base 31 further has a main path 33 and a sub-path unit 34, wherein the main path 33 communicates with the main chamber 23, and the sub-path unit 34 communicates with the sub chamber 24. Specifically, the sub-path unit 34 has a first sub-path 341 and a second sub-path 342, the first sub-path 341 is in communication between the main path 33 and the sub chamber 24, the second sub-path 342 is in communication between the recess 32 and the sub chamber 24. The path split unit 30 has a connection part 35 which is located above the base 31 so as to be connected with the switch unit 60 and a safety valve 70.
[0040] A safety path unit 40 is located in the base 31 and has one end communicating the sub chamber 24, the other end of the safety path unit 40 communicates with the recess 32 and the sub-path unit 34 by a communication path 50. Specifically, the safety path unit 40 has a first safety path 41 and a second safety path 42, the first safety path 41 is in communication between the communication path 50 and the main chamber 23, and the second safety path 42 is in communication between the communication path 50 and the sub chamber 24.
[0041] The switch unit 60 is received in the recess 32 and communicates with the first sub-path 341, the recess 32 and the first and second safety paths 41, 42.
[0042] When the switch unit 60 is turned off, the suspension device is locked, the communication between the main path 33 and the sub-path unit 34 is closed. When an impact that is higher than a pre-set value of the suspension device is transferred to the suspension device, a portion of liquid in the main path 33 flows into the sub chamber 24 via the communication path 50 and the safety path unit 40 to provide a level of buffering feature.
[0043] The switch unit 60 has a shaft 61 which has one end located in the recess 32 and the other end of the shaft 61 extends beyond the base 31 and the connection part 35. The distal end of the switch unit 60 extends beyond the cover 36. The shaft 61 has a guide path 62 which communicates with the sub chamber 24 to guide liquid in the communication path 50 into the sub chamber 24. When the shaft 61 is rotated an angle, the guide path 62 is closed so that liquid cannot flow between the main chamber 23, the sub chamber 24 and the base 31. The portion of the shaft 61 that is exposed beyond the cover 36 is connected with a switch 63 which rotates the shaft 61 to control the communication of the guide path 62. The guide path 62 has two guide holes 621 defined in the shaft 61, when the shaft 61 is rotated the angle, the guide holes 621 are located corresponding to the two second sub-paths 342, the liquid flows through the two guide holes 621 and the two second sub-paths 342 to provide buffering feature. When the shaft 61 is rotated another angle, the two guide holes 621 are located offset from the two second sub-paths 342, the liquid cannot flow through the two guide holes 621 and the two second sub-paths 342, the suspension device is locked.
[0044] The safety path unit 40 has the safety valve 70 received therein so as to adjust pressure of liquid in the safety path unit 40 to break through the pre-set value. A portion of the safety valve 70 extends through the cover 36. The safety valve 70 has an adjustment rod 71 which has one end connected to the base 31, the other end of the adjustment rod 70 extends beyond the base 31. A bead 72 is located in the safety path unit 40 to block the liquid in the safety path unit 40. A resilient member 33 is located between the bead 72 and the adjustment rod 71. A knob 74 is connected to the adjustment rod 71 that exposed beyond the base 31 so as to rotate the adjustment rod 71. The adjustment rod 71 linearly moves in the base 31 to adjust the distance between the adjustment rod 71 and the bead 72, and to adjust the compression of the resilient member 73.
[0045] As shown in
[0046] As shown in
[0047] As shown in
[0048] When rotating the switch 63 to “OFF” position, the switch 61 is simultaneously rotated, the guide holes 621 are located offset from the second sub-paths 342, therefore, the liquid in the main chamber 23, the sub chamber 24 and the path split unit 30 cannot flow. The suspension device 81 is under locked status.
[0049] The safety buffering action happens when the switch 63 is operated to the “OFF” position, as shown in
[0050] Even when the switch 63 is switched to “ON” position, when a severe impact happens, the liquid can also follows the above mentioned two paths to push the bead 72 away and then enters into the sub chamber 24. In other words, by increasing paths for the liquid to flow through, a better buffering feature is obtained.
[0051] As shown in
[0052] The base 31 properly splits the paths of the liquid and includes the main path 33, the sub-path unit 34 and the safety path unit 40 so that the liquid can be set to flow into the main chamber 23 or the sub chamber 24. The base 31 can arrange the main chamber 23 and the sub chamber 24 to be perpendicular to each other, or to be parallel to each other.
[0053] The safety path unit 40 allows the liquid to push the bead 72 away to open the safety path unit 40 when a severe impact is transferred to the suspension device 81, after the severe impact disappears, the bead 72 automatically seals the safety path unit 40 so as to provide a short and temporary safety buffering feature. By the use of the safety path unit 40 and the safety valve 70, the impact does not damage the parts of the suspension device 81.
[0054] The operation of the knob 74 of the safety valve 70 can adjust the compression of the resilient member 73, so as to adjust the value that is able to push the bead 72 away. Accordingly, the users may set the value to activate the safety buffering feature.
[0055] As shown in
[0056] While we have shown and described the embodiment in accordance with the present invention, it should be clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.