This invention relates to mechanical scissor lifts which are adapted for raising and lowering heavy equipment such as heating and air conditioning units from, for example, ground levels to commercial building rooftops.
Conventionally configured scissor lift mechanisms are commonly mechanically complex, are unduly bulky, and commonly lack a capacity for configuration for compact storage.
The instant inventive scissor lift solves or ameliorates problems and challenges discussed above by incorporating within a scissor lift mechanism specialized trolley, jack screw assembly, and chassis elements which facilitate smooth and reliable powered scissor lifting action while protecting screw threads from damage, enabling a compact storage configuration, and reducing mechanical complexity, weight and bulk of the machine.
A first structural component of the instant inventive scissor lift comprises a longitudinally movable trolley having lateral and oppositely lateral sides (or right and left sides) and having longitudinal and oppositely longitudinal ends. In a preferred embodiment, the invention's trolley component is composed of aluminum plate or sheet metal and is substantially rectangular or square.
Further structural components of the instant inventive scissor lift comprise pair of or lateral and oppositely lateral rollers. Mounting means for respectively positioning the lateral and oppositely lateral rollers at the trolley's lateral and oppositely lateral sides are preferably provided. In a preferred embodiment, the rollers' mounting means comprise lateral and oppositely lateral journal axles which are fixedly attached to and respectively extend laterally and oppositely laterally from the trolley's lateral and oppositely lateral sides. Suitably, the roller mounting means may alternatively comprise a single transverse axle which spans laterally across the trolley. Where the invention's rollers alternatively comprise ball bearings or cylindrical bearings, the mounting means may suitably alternatively comprise a capture cavity or channel which retains such rollable members for longitudinal movement along bearing races. In the preferred embodiment, journal axle mounting means position wheel configured rollers at longitudinal ends of the trolley's lateral and oppositely lateral sides.
Further structural components of the instant inventive scissor lift comprise lateral and oppositely lateral “C” brackets which, like the lateral and oppositely lateral rollers, are respectively mounted upon the trolley's lateral and oppositely lateral sides. Where the rollers' mounting means position the rollers at the longitudinal end of the trolley, the lateral and oppositely lateral “C” brackets are preferably oppositely longitudinally positioned upon the trolley.
A further structural component of the instant inventive scissor lift comprises a jack screw assembly which incorporates a helically threaded shaft and helically threaded nut combination. In the preferred embodiment, such jack screw assembly is compactly mounted for operation within a lower chassis component of the scissor lift. Within such chassis, the jack screw assembly preferably connects operatively to the trolley for alternatively longitudinally and oppositely longitudinally driving and drawing the trolley. In a preferred embodiment, the jack screw assembly's helically threaded shaft is fixed against longitudinal movement within the chassis frame. Correspondingly, the preferably provided helically threaded nut component of such assembly is non-rotatably mounted upon the trolley for concurrent longitudinal movement along the helically threaded shaft.
In a suitable, though less desirable, structural alternative, the jack screw assembly's helically threaded shaft component may be non-rotatably mounted to the trolley for concurrent longitudinal movement while a rotatable and longitudinally fixed internally helically threaded coupling nut or sleeve receives such shaft. Turning and counter-turning of such coupling nut may similarly longitudinally drive and draw the shaft and attached trolley within the chassis.
The base frame or chassis component of the instant inventive scissor lift preferably forms a longitudinally oblongated rectangle, and comprises lateral and oppositely lateral track surfaces which rollably support the trolley's lateral and oppositely lateral rollers. In a preferred embodiment, each of the roller tracks presents a longitudinally extending edge which is positioned inwardly with respect to the chassis. In operation, such longitudinally extending edges act as slide ridges which nestingly extend into the “C” brackets' openings for which slidably guiding and restricting the motions of the “C” brackets and the trolley with respect to the chassis. Suitably, the roller tracks' longitudinally extending edges may present at other surfaces and locations on and about the roller tracks, the “C” brackets being consonantly re-oriented for sliding engagements with such alternative edges.
Further structural components of the instant inventive scissor lift comprise a vertical matrix of scissor arms or pivoting “X” configured arms, such matrix having upper and lower ends. Scissor arm leg ends at a lower and preferably longitudinal end of such matrix are pivotally mounted for motion with the trolley, while the matrix's longitudinally opposite scissor arm lower leg ends are pivotally and longitudinally immovably attached to the chassis' oppositely longitudinal end.
A further structural component of the instant inventive scissor lift comprises a load platform which is fixedly attached to the scissor arm matrix's upper end. In a preferred embodiment, the load platform component is rectangular; is composed of lightweight aluminum; and is sized for raising and lowering heavy equipment such as commercial heating and air conditioning units.
A further structural component of the instant inventive scissor lift comprises turning means which are connected operatively for rotating a preferably longitudinally fixed element of the jack screw assembly. Where, as is preferred, the jack screw assembly's helically threaded nut moves longitudinally with the trolley component, the turning means are connected operatively to the assembly's helically threaded shaft component. Suitably, the turning means may comprise a hand turnable crank, a pneumatic motor, or a hydraulic motor. However, the turning means preferably comprise a reversible electric motor which is rigidly mounted by motor support brackets within the oppositely longitudinal end of the scissor lift's chassis.
In operation of the inventive scissor lift, turning and counter-turning actuations of the preferably provided electric motor turning means rotate the jack screw assembly's jack screw, such rotations simultaneously driving or drawing helically threaded nut and trolley assembly longitudinally along the chassis. During such screw actuated trolley motion, load imbalances, or imbalances in pivot joint frictional forces existing between the lift's lateral and oppositely lateral sides may be experienced. Without the protective structures of the instant invention, such imbalances may be translated by the scissor arm matrix to lower leg ends and to the rollably guided trolley, causing such forces to undesirably produce screw thread jamming torsional moments at the helically threaded nut. However, according to the operation of the instant invention, one of the trolley's specially provided lateral and oppositely lateral “C” brackets will simultaneously engage one of the roller track longitudinal edges to produce a counter-torque moment about the vertical axis, such “C” bracket contact advantageously nullifying such screw damaging torsional forces. Undesirable and potentially screw thread jamming torsional forces about the trolley's lateral axis are also advantageously cancelled by the engagements of the “C” brackets with the roller tracks' longitudinal edges.
Accordingly, objects of the instant invention include the provision of a scissor lift mechanism which incorporates structures, as described above, and which arranges such structures in relation to each other in manners described above, for the achievement of the beneficial functions described above.
Other and further objects, benefits, and advantages of the instant invention will become known to those skilled in the art upon review of the Detailed Description which follows, and upon review of the appended drawings.
Referring now to the drawings and in particular to Drawing
The trolley 3 preferably comprises a square or rectangularly configured aluminum plate 2 having a “U” configured oppositely longitudinal end, the multiple functions of which are further discussed below. In forming its “U” configuration, the plate 2 of the trolley 3 preferably incorporates lateral and oppositely lateral arms 4 and 6, each such arm having a distal or oppositely longitudinal end. The traverse longitudinal portion 31 of plate 2 in combination with the arms 4 and 6 peripherally defines an oppositely longitudinally opening motor support bracket receiving space 12.
The trolley 3 preferably further comprises an upper retainer plate 14 which interstitially captures and securely holds lateral and oppositely lateral axle mounting blocks 18 and 20, and a substantially centrally positioned helically threaded coupling nut 16. A plurality of helically threaded bolts 39 which extend through the nut 16 and through the axle mount blocks 18 and 20, and securely capture those structures between plates 2 and 14.
Further structural components of the instant inventive scissor lift comprise lateral and oppositely lateral rollers 24 and 28. The rollers are rotatably secured upon the trolley 3 by rotatable mounting means which respectively position the rollers at the trolley's lateral and oppositely lateral sides. The invention's rotatable mounting means preferably comprise lateral and oppositely lateral journal or stub axles 22 and 26 which are respectively secured within axle ports within the axle mount blocks 18 and 20. The axles 22 and 26 are intended as being representative of other commonly known means for mounting rollers such as the wheel configured rollers 24 and 28, such means including an alternative solid transverse axle (not depicted within views). Where the invention's rollers alternatively comprise ball bearings or cylindrical bearings (not depicted within views), the mounting means may correspondingly comprise capture cavities or channels which rollably receive and guide such bearings along longitudinal bearing races.
Referring in particular to Drawing
A further structural component of the instant inventive scissor lift comprises a jack screw assembly which incorporates an externally helically threaded shaft 62 and the helically threaded coupling nut 16 which receives such threaded shaft. The helically threaded shaft 62 and nut 16 combination depicted in
As is shown in
The chassis 49 preferably comprises lateral and oppositely lateral “L” beams which are referred to generally by Reference Arrows 30 and 40. Each of the “L” beams 30 and 40 preferably comprises a horizontal web section (i.e., sections 32 and 42), and a vertically extending flange section (i.e., sections 34 and 35). Upper surfaces of the “L” beams' web sections 32 and 42 advantageously serve as tracks which rollably support the trolley's rollers 24 and 28.
The lateral and oppositely lateral “L” beams' webs 32 and 42 preferably present longitudinally extending and inwardly facing edges 36 and 46, such edges being respectively received within the laterally and oppositely laterally opening “C” brackets 7,8,9, and 10,11,13. Accordingly, such edges and brackets function as motion guiding and pivot restricting slide ridge and slide channel combinations.
The longitudinally extending edges 36 and 46 depicted in
Referring in particular to
The instant inventive scissor lift 1 preferably further comprises a scissor arm matrix which is referred to generally by Reference Arrow 84. As depicted in
Each of the pivot joints which interconnect the scissor arm pairs preferably includes a laterally extending axle bar of which bars 91, 94, 98, and 109 are examples. Such lateral axle bars dually serve as hinge pins and as stiffening members which lessen sway and matrix deformation upon full upward extension of the scissor lift.
As shown in
In operation of the scissor arm matrix 84, the lowermost lateral and oppositely lateral “X” pairs of scissor arms (i.e., scissor arm pairs 86, 90 and 88, and 92) are capable of pivoting flexion and extension motions.
In order to resist excess longitudinally directed strain exerted by the helically threaded coupling nut 16 against the threads of shaft 62 upon a placement of a heavy load (including, for example, a heating or air conditioning unit) upon the lowered platform 116 (i.e., the
In addition to serving as scissor arm extension stops, the travel slots 38 and 48 within “L” beam flanges 34 and 35 advantageously allow the lower longitudinal ends of arms 86 and 88 to be supported upon axles 22 and 26 in stable “double shear” fashions.
A further structural component of the instant inventive scissor lift 1 comprises turning means which are connected operatively to the jack screw assembly 16,62. The turning means preferably comprises a reversible electric motor 72 whose output shaft 74 supplies rotary power to the helically threaded shaft 62 by means of a rotary connector 76. The two way electric motor 72 is intended as being representative of other suitably substituted turning means, such as a manually turnable crank, a pneumatic motor, or a hydraulic motor (not depicted within views). Upon clockwise turning of the helically threaded shaft 62, and upon resultant oppositely longitudinal travel of the trolley 3 and corresponding flexion of “X” scissor arms 86 and 90, and 88 and 92, motor support bracket member 70 compactly enters and nests within the “U” space 12 formed between trolley's arms 4 and 6. A stop sleeve 63, which is mounted upon the oppositely longitudinal end of the helically threaded nut 16 and which extends concentrically along the screw shaft 62, has an oppositely longitudinal end which is positioned slightly oppositely longitudinally from the transverse edge 31 of the “U” bracket. Such excess oppositely longitudinal extension of the stop sleeve with respect to the transverse edge 31 advantageously assures that oppositely longitudinal travel of the trolley 3 is stopped by contact of the stop sleeve 63 with bearing 66 and/or bracket member 70. The instant invention's specialized “U” configuration of the trolley 3 dually and simultaneously functions as an oppositely longitudinally extended torque cancelling component (whose function is further discussed below) and as spatially compact non-extended component.
To further enhance stability of the inventive scissor lift 1 upon its full upward extension, longitudinal and oppositely longitudinal outriggers 120 and 122 are provided, the longitudinal outrigger 120 being mounted to chassis crossbar 50 via bolts extending through bolt eyes 52, and the oppositely longitudinal outrigger 122 being similarly mounted upon chassis cross-member 54 by bolts 126 which extend through bolt eyes 56. Vertically adjustable feet 124 at the extreme lateral and oppositely lateral ends of the outriggers are preferably provided, such feet securely bearing against ground or floor surface 130 during load lifting and lowering uses of the lift.
For purposes of enhanced maneuverability of the scissor lift 1, lockable castor wheels 58 are preferably provided at the longitudinal end of the chassis frame 49, and fixed lockable wheels 60 are provided at the oppositely longitudinal end of the such chassis frame.
In the scissor lift example of
While the principles of the invention have been made clear in the above illustrative embodiment, those skilled in the art may make modifications in the structure, arrangement, portions and components of the invention without departing from those principles. Accordingly, it is intended that the description and drawings be interpreted as illustrative and not in the limiting sense, and that the invention be given a scope at least commensurate with the appended claims.
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Number | Date | Country | |
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20160176688 A1 | Jun 2016 | US |