Clamping device
US-12158169-B2 · Dec 3, 2024 · US
US9677582B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9677582-B2 |
| Application number | US-201514593851-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 9, 2015 |
| Priority date | Jan 9, 2015 |
| Publication date | Jun 13, 2017 |
| Grant date | Jun 13, 2017 |
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A fluid-actuated fastening device comprises a housing including a housing body defining a fluid cavity and a fluid port. The fluid port places the fluid cavity in selective communication with an outside fluid source. A telescoping mast assembly includes a mast sleeve. A spindle has longitudinally spaced inner and outer spindle ends separated by a longitudinally oriented spindle body. The spindle body is at least partially located within the mast sleeve for telescoping longitudinal movement with respect thereto to transform the mast assembly between compressed and expanded mast states. At least one disc spring is located substantially within the fluid cavity. Introduction of pressurized fluid into the fluid cavity via the fluid port causes at least one of travel of the disc spring between flexed and relaxed spring states and translational movement of the mast between the compressed and expanded mast states.
Opening claim text (preview).
I claim: 1. A fluid-actuated fastening device for connection to a workpiece, the fastening device comprising: a housing, including a housing body defining a fluid cavity and a fluid port, the fluid port placing the fluid cavity in selective communication with an outside fluid source, the housing body including a mast aperture concentrically surrounding a longitudinal axis; a telescoping mast assembly including: a mast sleeve having longitudinally spaced inner and outer sleeve ends separated by a sleeve body defining a longitudinally oriented sleeve bore, a spindle having longitudinally spaced inner and outer spindle ends separated by a longitudinally oriented spindle body, the spindle body being at least partially located within the sleeve bore for telescoping longitudinal movement with respect thereto to transform the mast assembly between compressed and expanded mast states, and a fastening mechanism mechanically associated with the spindle and selectively actuable to mechanically interlock with the workpiece when the mast assembly is in an at least partially expanded mast state, the mast assembly having longitudinally spaced inner and outer mast ends, at least a portion of the mast assembly extending longitudinally through the mast aperture, the inner mast end including the inner sleeve end and being located substantially within the fluid cavity, and the outer mast end including the outer spindle end and being located substantially outside the fluid cavity; and at least one disc spring having a central disc spring aperture concentrically surrounding the longitudinal axis, the disc spring being located substantially within the fluid cavity and being configured for selective travel between flexed and relaxed spring states; wherein introduction of pressurized fluid into the fluid cavity via the fluid port causes at least one of travel of the disc spring between the flexed and relaxed spring states and translational movement of the mast assembly between the compressed and expanded mast states. 2. The fastening device of claim 1 , wherein the housing body has an inner housing surface at least partially defining the fluid cavity and an outer housing surface spaced from the inner housing surface by the housing body, the outer housing surface including a mast collar protruding therefrom and extending around a perimeter of the mast aperture. 3. The fastening device of claim 1 , wherein at least one of the inner sleeve end and the inner spindle end includes a flange configured for selective interaction with a respective one of the disc spring and the mast sleeve to at least partially help prevent the at least one of the inner sleeve end and the inner spindle end from separating from the respective disc spring and mast sleeve. 4. The fastening device of claim 3 , wherein the pressurized fluid acts upon the flange of at least one of the inner sleeve end and the inner spindle end to at least partially cause translational movement of the mast assembly between the compressed and expanded mast states. 5. The fastening device of claim 1 , wherein introduction of positively pressurized fluid into the fluid cavity via the fluid port causes at least one of travel of the disc spring from the relaxed spring state to the flexed spring state and translational movement of the mast assembly from the compressed mast state to the expanded mast state. 6. The fastening device of claim 1 , wherein introduction of negatively pressurized fluid into the fluid cavity via the fluid port causes at least one of travel of the disc spring from the flexed spring state to the relaxed spring state and translational movement of the mast assembly from the expanded mast state to the compressed mast state. 7. The fastening device of claim 1 , including a port valve selectively preventing fluid travel through the fluid port and thereby selectively preventing at least one of travel of the disc spring between the flexed and relaxed spring states and translational movement of the mast between the compressed and expanded mast states. 8. The fastening device of claim 1 , wherein the spindle is a ball spindle and the fastening mechanism includes at least one captured-ball mechanism selectively actuable by the ball spindle to mechanically interlock with a workpiece cavity of the workpiece and thereby connect the fastening device to the workpiece. 9. The fastening device of claim 8 , wherein the ball spindle is spring-biased via a spindle-biasing spring to resist longitudinal movement toward the expanded mast state, and the at least one captured-ball mechanism is selectively actuated by longitudinal travel of the ball spindle driven by at least one of the pressurized fluid and the spindle-biasing spring. 10. The fastening device of claim 1 , wherein the fastening mechanism is located at least partially in the sleeve body. 11. A method of connecting a fluid-actuated fastening device to a workpiece, the method comprising: providing a fastening device, including a housing, including a housing body defining a fluid cavity and a fluid port, the housing body including a mast aperture concentrically surrounding a longitudinal axis; a telescoping mast assembly including: a mast sleeve having longitudinally spaced inner and outer sleeve ends separated by a sleeve body defining a longitudinally oriented sleeve bore, a spindle having longitudinally spaced inner and outer spindle ends separated by a longitudinally oriented spindle body, the spindle body being at least partially located within the sleeve bore for telescoping longitudinal movement with respect thereto to transform the mast assembly between compressed and expanded mast states, the mast assembly having longitudinally spaced inner and outer mast ends, at least a portion of the mast assembly extending longitudinally through the mast aperture, the inner mast end including the inner sleeve end and being located substantially within the fluid cavity, and the outer mast end including the outer spindle end and being located substantially outside the fluid cavity, and a fastening mechanism mechanically associated with the spindle; and at least one disc spring having a central disc spring aperture concentrically surrounding the longitudinal axis, the disc spring being located substantially within the fluid cavity and being configured for selective travel between flexed and relaxed spring states; placing the fluid cavity in selective communication with an outside fluid source via the fluid port; introducing pressurized fluid into the fluid cavity via the fluid port; causing, at least partially via the pressurized fluid, at least one of travel of the disc spring between the flexed and relaxed spring states and translational movement of the mast assembly between the compressed and expanded mast states; selectively actuating the fastening mechanism, at least partially via the pressurized fluid, to mechanically interlock with the workpiece when the mast assembly is in an at least partially expanded mast state; and connecting the fastening device to the workpiece via the mechanical interlock of the fastening mechanism. 12. The method of claim 11 , including: providing at least one of the inner sleeve end and the inner spindle end with a flange configured for selective interaction with a respective one of the disc spring and the mast sleeve to at least partially help prevent the at least one of the inner sleeve end and the inner spindle end from separating from the respective disc spring and mast sleeve; and acting upon the flange of at least one of the inner sleeve end and the inner spindle end with the pressurized fluid to at least partially cause translational movement of t
engaging or disengaging by means of fluid pressure · CPC title
Joining sheets or plates {, e.g. panels,} to one another or to strips or bars parallel to them ({F16B17/00 takes precedence;} by sticking together F16B11/00; dowel connections F16B13/00; pins, including deformable elements F16B19/00; covering of walls E04F13/00; fastening signs, plates, panels or boards to a supporting structure, fastening readily-detachable elements, e.g. letters to signs, plates, panels, or boards, G09F7/00) · CPC title
Mechanical Engineering · mapped topic
by separate parts ({F16B21/06 takes precedence}; key-type connection F16B3/00; locking screws or nuts against rotation by such means F16B39/04) · CPC title
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