The present invention is directed to lift devices. In particular, portable devices that provide controlled lifting of decking or other structures.
Known lift systems utilize a variety of force generating devices, including, for example, mechanical scissor lifts, which utilize a large number mechanical linkages, and single cylinder hydraulic lifts having limited reach and lack lift control.
In theatrical or concert performances, it is frequently desirable to provide lift components to actuate or otherwise lift portions of stages or platforms to enhance the theatrical or concert display. In such lifting applications, smooth, controlled lifting is important to provide sufficient stability for personnel or performers on the lifted structures. In addition, in theatrical or concert performances, it is desirable to utilize portable structures, wherein the lifting mechanisms can be disassembled into sufficiently small components or modules that allow storage and/or transportation of the individual components. Existing lift systems lack portability, lift control and smooth lifting motion.
Portable structures, such as stages or platforms, must be capable of being disassembled into relatively small units that can be loaded onto trucks, airplanes or other vehicles for transport and/or storage. In addition, the structures must be capable of assembly in a short amount of time, by personnel having little or no technical skill. The above benefits must be provided while providing a platform that is capable of holding and/or lifting a large amount of weight and does not sway or bend during use.
What is needed is a lifting device that provides movable lift support to platforms or other stage-like devices, wherein the lifting mechanism is portable and provides a lifting motion that is smooth and controlled.
One aspect of the present invention includes a lift device having a lift structure and a control structure. The lift structure includes a plurality of hydraulic cylinders concentrically arranged. Each cylinder includes a first chamber and a second chamber. At least one of the cylinders includes the second chamber being in fluid communication with the first chamber of an adjacent cylinder. The cylinders are operably disposed to extend or retract in response to fluid pressure applied to a first chamber of at least one of the cylinders. The control structure is arranged and disposed to apply a control force to at least one of the cylinders to controllably extend or retract the plurality of cylinders.
Another aspect of the present invention includes a portable lift system having at least one lift module comprising a pressure vessel containing a fluid, a lift structure, a control structure and a frame. The lift structure includes a plurality of hydraulic cylinders concentrically arranged. Each cylinder includes a first chamber and a second chamber. At least one of the cylinders includes the second chamber being in fluid communication with the first chamber of an adjacent cylinder. The cylinders are operably disposed to extend or retract in response to fluid pressure applied to a first chamber of at least one of the cylinders. The control structure is arranged and disposed to apply a control force to at least one of the cylinders to controllably extend or retract the plurality of cylinders. The frame is configured to support the lift structure and control structure. The lift module is configured to be portable.
Still another aspect of the present invention includes a method for elevating a platform. The method includes providing a lift device having a lift structure and a control structure. The lift structure includes a plurality of hydraulic cylinders concentrically arranged. Each cylinder includes a first chamber and a second chamber. At least one of the cylinders includes the second chamber being in fluid communication with the first chamber of an adjacent cylinder. The cylinders are operably disposed to extend or retract in response to fluid pressure applied to a first chamber of at least one of the cylinders. The control structure is arranged and disposed to apply a control force to at least one of the cylinders to controllably extend or retract the plurality of cylinders. Fluid pressure is applied to a first chamber of at least one of the cylinders. A control force is applied to at least one of the cylinders.
Other features and advantages of the present invention will be apparent from the following more detailed description of the preferred embodiment, taken in conjunction with the accompanying drawings which illustrate, by way of example, the principles of the invention.
Wherever possible, the same reference numbers are used throughout the drawings to refer to the same or like parts.
One embodiment of the present invention includes a portable hydraulic lift device having a controlled extension, retraction and lifting. Portable, as used herein, includes the ability of components, structures, devices or other assemblies to be detached, broken down (disassembled) or retracted sufficiently to permit transportation and/or storage of the assemblies in conventionally available storage and/or transportation equipment and/or vehicles, such as tractor trailers, aircraft, trains or other storage/transportation vehicles or structures.
To extend the lift device 100 and/or lift the platform 115, a fluid pressure is provided to the lift structure 101. A constant fluid pressure is preferably provided to the lift structure 101 to provide extension of the cylinder stages. Although a constant pressure may be applied, a variable pressure may also be provided and may be in response to a variable load being lifted or to provide additional lift control. Control devices, such as solenoid valves, control valves or other fluid pressure or metering devices may be utilized to provide control during lifting. In addition, safety systems, including emergency relief valves, fail-close and fail-open valves may be installed. The fluid pressure in the lift structure 101 provides a force applied against lift control frame 113. When in the retracted position (see e.g.,
The upward motion of the lift structure 101 ceases when the motor 107 is deactivated (i.e., the upward force of lift structure 101 equals the reactive force of the lift control frame 113) or the tensile force provided by the cables 109 equals the reactive force of the lift control frame 113. To retract the lift device 100, the motor 107 is activated to rotate the winches 105 in the opposite direction and increase the magnitude of the force applied to the lift structure 101. The motor 107 continues to generate the increased downward force applied to the lift structure 101 until the desired amount of retraction of the structure has been achieved or if the lift structure 101 has been fully retracted.
As shown in
The upward motion 317 of piston 319 causes fluid 302 from second chamber 307 of the first stage 309 to be forced into the first chamber 305 of the second stage 311. Piston 321 (i.e., the plate disposed beneath and supporting cylinder 303 of the third stage 313) is urged in an upward direction 317 by fluid pressure in the first chamber 305 of the second stage 311.
The upward motion 317 of piston 321 upward forces fluid 302 from the second chamber 307 of the second stage 311 into the first chamber 305 of the third stage 313. Piston 323 (i.e., the plate disposed beneath and supporting cylinder 303 of the fourth stage 315) is urged in an upward direction 317 by fluid pressure in the first chamber 305 of the third stage 313.
The upward motion 317 of the cylinder 303 of the third stage 313 upward forces fluid 302 from the second chamber 307 of the third stage 313 into the first chamber 305 of the fourth stage 315. The fluid pressure in the first chamber 305 of the further stage urges piston 325 in an upward direction 317. Piston 325 extends and applies force to control structure 103. Piston 325 may be of hollow or solid construction and provides contact and a lifting force that is applied to the control structure 103. While the invention has been shown with four stages any number of stages may be utilized. Preferably, the extension of the cylinders in the manner described results in a substantially uniform extension of each of the stages 309, 311, 313 and 315, providing an aesthetically pleasing motion. The extension of the telescoping cylinders is thereby substantially uniform, providing a smooth and powerful lifting motion.
As shown in
One embodiment of the present invention includes a lift system 500 utilized for lifting stage elements (see e.g.,
While the invention has been described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims.