Claims
- 1. In a safety station having a safety and regulating valve for metering energy flows in the form of gases, steam or water, the valve having an inflow side, an outflow side, a valve seat, and at least one restrictor body defining a restrictor cross-section through which a working medium flows, said at least one restrictor body being adjustable relative to the valve seat for opening or closing the restrictor cross-section when a response pressure at least reaches a limit of a permissible pressure on one of the inflow and outflow sides,
- a servo drive for the valve, comprising:
- a non-self-locking spindle drive for the restrictor body,
- a regulating drive having a regulating motor,
- a rapid-travel mechanism,
- a planetary gear stage coupled to said spindle drive for superimposing an introduction of a first drive torque from said regulating drive and a second drive torque through said rapid-travel mechanism for rapidly opening or closing the valve when the response pressure is at least reached, means for deriving a drive force for a safety movement of the restrictor body from a working-medium pressure difference acting on the restrictor body,
- a non-self-locking gear unit coupling said rapid-travel mechanism to said planetary gear stage, said non-self-locking gear unit having at least one shaft, a releasable brake device normally securely braking said at least one shaft, and said brake device releasing said rapid-travel mechanism for driving the safety movement of the restrictor body into a desired position with the inherent medium, when the response pressure occurs.
- 2. The servo drive according to claim 1, wherein said spindle drive for the restrictor body has a valve spindle, a spindle nut rotatably mounted on said valve spindle, a spindle-nut housing rotatably mounting but axially fixing said spindle nut, and an output-shaft journal on said spindle-nut housing for converting a rotation of said output-shaft journal through said spindle-nut housing and said spindle nut into an axial thrust of said spindle and the restrictor body.
- 3. The servo drive according to claim 2, including a ring gear having an inner periphery and being coupled to said rapid-travel mechanism, said planetary gear stage being connected to said output-shaft journal, said planetary gear stage including a sun gear having an outer periphery and being moved by said regulating drive, and said planetary gear stage including planet gears meshing with the outer periphery of said sun gear and with the inner periphery of said ring gear.
- 4. The servo drive according to claim 1, wherein said non-self-locking gear unit coupling said rapid-travel mechanism to said planetary gear stage is a non-self-locking worm drive.
- 5. The servo drive according to claim 1, including means for remotely actuating a release of a braking engagement of said brake device when the response pressure occurs, and a free-wheel mechanism coupled to said shaft of said non-self-locking gear unit for permitting rotation of said shaft only in a direction of rotation corresponding to the safety movement of the restrictor body.
- 6. The servo drive according to claim 5, wherein said brake device has a first brake disc sitting securely on and rotating with said shaft of said non-self-locking gear unit and a second brake disc being axially displaceably but non-rotatably mounted and normally in braking engagement with said first brake disc, said second brake disc being mounted for movement into and out of braking engagement, and said free-wheel mechanism being a directional locking mechanism permitting said shaft to rotate only in a direction of rotation corresponding to the safety movement of the restrictor body, in a non-securely braked state of the shaft.
- 7. The servo drive according to claim 6, including a pressure-monitoring configuration being connected in a pressure-transmitting manner to a working-medium pipeline of the safety valve for monitoring an actual pressure and for tripping said brake device when the response pressure is reached, said pressure-monitoring configuration having pressure monitors for issuing tripping signals, and an electromagnet configuration receiving the tripping signals for normally holding said brake device for said shaft of said non-self-locking gear unit in braking engagement and for lifting said brake device when the tripping-signals are received.
- 8. The servo drive according to claim 7, wherein said pressure monitors are at least two pressure monitors, said electromagnetic configuration has at least two brake magnets each being connected downstream of a respective one of said pressure monitors, and a common transmission member coupling at least two of said brake magnets to said second brake disc for controlling said second brake disc by lifting said second brake disc when at least one of said brake magnets responds or when at least one tripping signal from said pressure monitors is present.
- 9. The servo drive according to claim 8, wherein said at least two pressure monitors are three pressure monitors and said at least two brake magnets are three brake magnets, said pressure monitors and said brake magnets being disposed in a three-channel configuration having one pressure monitor/brake magnet pair per channel, said pressure monitor/brake magnet pairs having a one-of-three tripping action of said brake magnets by said pressure monitors and a one-of-three tripping action of said second brake disc by said brake magnets.
- 10. The servo drive according to claim 5, including at least one ratchet wheel having a ratchet tooth system, said at least one ratchet wheel sitting securely on said shaft of said non-self-locking gear unit, said shaft having an axis, and at least one pawl being pivotably mounted about a pawl axis parallel to the shaft axis and being spring-loaded into engagement with said ratchet tooth system.
- 11. The servo drive according to claim 1, wherein the safety valve is an opening valve having a valve opening direction for protection against excess pressure in components or pipelines connected to the inflow side and said rapid-travel mechanism has a permitted direction of rotation corresponding to the valve opening direction.
- 12. The servo drive according to claim 11, including pressure monitors associated with the inflow side of the safety valve for issuing tripping signals, at least one brake magnet connected downstream of one of said pressure monitors for locking or releasing the rapid-travel mechanism, at least one additional safety leg, a signal line connecting said at least one additional safety leg downstream of another of said pressure monitors, said non-self-locking spindle drive having a valve spindle with a first spindle section connected to the restrictor body and a second spindle section flexibly coupled to said first spindle section, said additional safety leg having means for displacing said first spindle section into an open position relative to said second spindle section, when the pressure-monitor tripping signal is present.
- 13. The servo drive according to claim 12, including a compression-spring configuration coupling said first spindle section to said second spindle section, a safety lever linked to an end of said first spindle section facing away from the restrictor body, said safety lever having at least one free end, a secondary spindle extending substantially parallel to said valve spindle, a slot joint linking said secondary spindle to said at least one free end of said safety lever, a non-self-locking secondary spindle drive for said secondary spindle, said non-self-locking secondary spindle drive having a spindle nut, at least one first brake disc mounted for rotation with said spindle nut, and another brake magnet normally holding said secondary spindle in place on said brake disc and releasing said spindle nut for rotation and said secondary spindle for axial movement, in the event of a tripping signal being supplied from one of said pressure monitors.
- 14. The servo drive according to claim 13, including a housing for said secondary spindle drive and said other brake magnet, said housing being rigidly coupled to and longitudinally displaceably mounted with said second spindle section.
- 15. The servo drive according to claim 14, wherein said safety lever has a rocker-like two-armed construction, and including another secondary spindle, another secondary spindle drive for said other secondary spindle, said at least one free end of said safety lever being two free ends, said secondary spindles each being linked to a respective one of said free ends of said safety lever, a further brake magnet, another housing for said other secondary spindle and said further brake magnet, a housing bridge interconnecting said housings and said brake magnets, and said housing bridge being firmly connected to said second spindle section.
- 16. The servo drive according to claim 1, wherein the safety valve is a closing valve having a valve closing direction for protection against excess pressure in components or pipelines connected to the outflow side, and said rapid-travel mechanism has a permitted direction of rotation corresponding to the valve closing direction.
- 17. In a safety station having a safety and regulating valve for metering energy flows, the valve having an inflow side, and outflow side, a valve seat, and at least one restrictor body defining a restrictor cross-section through which a working medium flwos, said at least one restrictor body being adjustable relative to the valve seat for opening or closing the restrictor cross-section when a response pressure at least reaches a limit of a permissible pressure on one of the inflow and outflow sides,
- a servo drive for the valve, comprising:
- a spindle drive for the restrictor body,
- a regulating drive,
- a rapid-travel mechanism for rapidly opening or closing the valve when the response pressure is at least reached,
- a planetary gear stage coupled to said spindle drive for superimposing a first drive torque from said regulating drive and a second drive torque through said rapid-travel mechanism,
- a gear unti coupling said rapid-travel mechanism to said planetary gear stage and having a shaft, a releasable brake device normally securely braking said at least one shaft, and said brake device releasing said rapid-travel mechanism for driving the safety movement of the restrictor body into a desired position with the inherent medium, when the response pressure occurs.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| 3907289 |
Mar 1989 |
DEX |
|
CROSS-REFERENCE TO RELATED APPLICATION
This application is a Continuation of International Application Ser. No. PCT/DE90/00160, filed Mar. 6, 1990.
Foreign Referenced Citations (1)
| Number |
Date |
Country |
| 2416653 |
Oct 1975 |
DEX |