Claims
- 1. An operating mechanism for controlling the movement of a downhole tool effector between first and second positions, comprising:
- a loading system operative to selectively create a first force;
- a leveraged load ratio system interconnecting the loading system and the downhole tool effector and being operative to receive the first force and responsively move the downhole tool effector from its first position to its second position with a second force different from the first force; and
- a biasing system yieldingly biasing the downhole tool effector toward its first position.
- 2. A reduced travel operating mechanism for controlling a downhole tool effector comprising:
- a loading system;
- a load ratio system connected between the loading system and the downhole tool effector; and
- a biasing system acting on the load ratio system and yieldingly biasing the downhole tool effector toward a first position,
- the loading system being selectively operable to exert a force on the load ratio system in a manner overcoming the bias and moving the downhole tool effector to a second position,
- the load ratio system comprising:
- a force receiving portion, the biasing system acting on the force receiving portion to bias it toward a first position, and the loading system acting on the force receiving portion to overcome the bias and move the force receiving portion to a second position;
- a linkage system coupled between the force receiving portion and the downhole tool effector, the downhole tool effector having a first position and a second position related to the first and second positions of the force receiving portion,
- a first distance being defined by the travel between the first position and the second position of the force receiving portion, and
- a second distance, different than the first distance, being defined by the travel between the first position and the second position of the downhole tool effector.
- 3. The reduced travel operating mechanism of claim 2, wherein the second distance is greater than the first distance.
- 4. The reduced travel operating mechanism of claim 2, wherein the linkage system comprises:
- a first link coupled between the force receiving portion and a master link, the first link being coupled to the master link at a first radius;
- the master link being rotatably coupled to a fixed support;
- a second link coupled between the master link and the downhole tool effector, the second link being coupled to the master link at a second radius; and
- the first radius being smaller than the second radius.
- 5. The reduced travel operating mechanism of claim 2, wherein the loading system includes a hydraulic actuator.
- 6. The reduced travel operating mechanism of claim 2, wherein the biasing system comprises at least one spring.
- 7. A downhole tool for use in a well, the downhole tool comprising:
- a tubular body;
- a downhole tool effector movable relative to the tubular body; and
- a reduced travel operating mechanism disposed within the tubular body and operative to control the movement of the downhole tool effector, the reduced travel operating mechanism including a loading system, and a load ratio system coupled between the loading system and the downhole tool effector,
- the load ratio system comprising:
- a force receiving portion coupled to the loading system; and
- a linkage system coupled between the force receiving portion and the downhole tool effector such that movement of the force receiving portion a first distance causes movement of the downhole tool effector a second distance in a first direction, the first distance being smaller than the second distance.
- 8. The downhole tool of claim 7, further comprising a biasing system acting on the load ratio system to bias the downhole tool effector in a second direction opposite from said first direction.
- 9. The downhole tool of claim 7, wherein the loading system comprises a hydraulic piston.
- 10. The downhole tool of claim 7, wherein the linkage system comprises:
- a first link rotatably coupled between the force receiving portion and a master link, the first link being coupled to the master link at a first radius;
- the master link being rotatably coupled to a fixed support;
- a second link rotatably coupled between the master link and a connecting member secured to the downhole tool effector, the second link being coupled to the master link at a second radius; and
- the first radius being smaller than the second radius.
- 11. The downhole tool of claim 7, further comprising a control system operable to control the loading system.
- 12. A subsurface safety valve, comprising:
- a housing assembly having a longitudinal axis;
- a flapper valve disposed within the housing assembly, the flapper valve having an open position and a closed position;
- a sleeve axially slidably disposed within the housing assembly and useable to open and close the flapper valve;
- a pocket formed between the housing assembly and the sleeve;
- a reduced travel operating mechanism disposed within the pocket, the reduced travel operating mechanism comprising:
- a force receiving portion movable longitudinally within the pocket;
- a linkage system coupled between the force receiving portion and the sleeve and operative in a manner such that a small longitudinal change in position of the force receiving portion causes a greater longitudinal change in the position of the sleeve;
- a biasing system exerting a biasing force on the force receiving portion to bias the sleeve toward a first position, the first position of the sleeve corresponding to the closed, position of the flapper valve; and
- a loading system acting on the force receiving portion to overcome the biasing force and axially move the sleeve toward a second position corresponding to the open position of the flapper valve.
- 13. The subsurface safety valve of claim 12, wherein the linkage system comprises:
- a first link rotatably coupled between the force receiving portion and a master link, the first link being coupled to the master link at a first radius;
- wherein the master link is rotatable about a fixed location; and
- a second link rotatable coupled to the master link at a second radius, and the first radius being smaller than the second radius.
- 14. The subsurface safety valve of claim 13, wherein the biasing system includes at least one spring.
- 15. A method of forming a reduced travel operating mechanism to control a downhole tool effector in a downhole tool, comprising the steps of:
- forming a pocket within the downhole tool;
- movably disposing a force receiving member within the pocket;
- biasing the force receiving member toward a first position;
- providing a load system operative to load the force receiving member to overcome the bias and move the force receiving member to a second position; and
- linking the force receiving member to the downhole tool effector such that movement of the force receiving member from its first position to its second position causes movement of the downhole tool effector from a first position to a second position, the movement of the force receiving member between its first position and its second position being smaller than the movement of the downhole tool effector between its first position and its second position.
- 16. The method of claim 15, wherein the step of biasing the force receiving member toward a first position further comprises the step of providing at least one spring in the pocket.
- 17. The method of claim 15, wherein the step of loading the force receiving member to overcome the bias and move the force receiving member to its second position further comprises the step of providing a control system to control the position of the force receiving member.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application claims priority under 35 USC .sctn. 119(e) of provisional application No. 60/046,585, filed May 15, 1997.
US Referenced Citations (18)