Agile mobile scissor lift equipment

The mobile lift device addresses the challenge of precise positioning and stabilization of heavy loads by incorporating a base frame, tilt actuator, and powered lift mechanism, enhancing stability and maneuverability for efficient battery replacement in electric vehicles.

JP7796147B2Active Publication Date: 2026-01-08BENDPAK INC
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Patent Information

Application Number
JP2023579022
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-05-18
Filing Date
2022-06-21
Publication Date
2026-01-08
Estimated Expiration
2042-06-21

AI Technical Summary

Technical Problem

Existing mobile lift devices struggle to precisely position and stabilize heavy loads, such as electric vehicle batteries, during lifting and lowering operations, especially when maneuvering on uneven surfaces, and lack the agility needed for precise alignment with vehicle components.

Method used

A mobile lift device equipped with a base frame, rear wheels, adjustable legs, a front wheel unit, and a tilt actuator, allowing it to be parked for stability and released for mobility, combined with a powered lift mechanism and scissor links for precise positioning, along with caster units and floor brakes for stability and maneuverability.

Benefits of technology

Enables precise positioning and stable lifting of heavy loads, facilitating alignment with vehicle components, even on uneven surfaces, while ensuring safe and controlled movement.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The mobile lift device includes a mobile base frame having multiple sets of three height adjustable caster units, a floor brake attached to the frame, a luggage deck, a scissor link engaged between the base frame and the luggage deck, and a luggage table movable on the luggage deck. An actuator engages the scissor link to extend and retract the scissor link.
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Description

[Technical Field]

[0001] This application claims priority to U.S. Provisional Patent Application No. 63 / 213,039, entitled "MOBILE SCISSOR LIFT APPARATUS," filed June 21, 2021, and U.S. Patent Application No. 17 / 664,042, entitled "AGILE MOBILE SCISSOR LIFT APPARATUS," filed May 18, 2022, the disclosures of which are incorporated herein by reference in their entireties.

[0002] The present invention relates to a mobile lift device, and more particularly to a mobile lift device that can be accurately and conveniently positioned to lift or lower a load and that can be parked for stability while the load is being lifted or lowered. [Background technology]

[0003] When maintaining and repairing a vehicle, it may be necessary to remove and reinstall relatively large and heavy components, such as transmissions, transaxles, motors, etc., for repair or replacement. It may be necessary to access such components from underneath the vehicle in an elevated position.

[0004] Electric vehicles, such as automobiles, employ very large rechargeable battery packs to power their propulsion motors. Such vehicles are called electric vehicles (EVs) when propelled solely by batteries, or hybrids when an internal combustion engine is incorporated into the vehicle. While EV batteries generally have a long lifespan, they may eventually require replacement. Manufacturing defects and other factors can cause premature replacement. EV batteries weigh approximately 200–500 kilograms (400–1200 lb) or more for passenger cars and are typically accessible from underneath the vehicle for replacement.

[0005] Numerous mechanisms exist for raising and lowering automotive components during vehicle maintenance. Such lift mechanisms are often mobile, allowing optimal positioning beneath the components being worked on, facilitating their use on a wide range of automotive components. Desirably, the mobile lift mechanism is parked in a stationary position for stability while the components are being raised and lowered, and is then released from the parked position to move the components supported by the lift mechanism. It is often more convenient to raise and lower automotive components beneath a vehicle when the vehicle is supported by a two-post lift rather than a single-post lift. An exemplary two-post lift configuration is disclosed in U.S. Pat. No. 9,150,395, the disclosure of which is incorporated herein in its entirety.

[0006] An electric vehicle battery pack, or battery, is typically a large, relatively flat assembly secured in a large, shallow recess or well under the vehicle by removable fasteners. The battery is electrically connected to the vehicle's electric motor and systems by a separable connector. During removal, the battery is supported from below while the fasteners are removed. The battery is then lowered, allowing the electrical connector components to be separated. Installation of a new battery is the reverse of the removal procedure. However, battery installation requires precise alignment of the mechanical fasteners and electrical connector components before the battery is raised into the battery recess. Therefore, there is a need for a mobile lifting device with agile mobility to precisely position such batteries under a vehicle before lifting them into position underneath the vehicle. Summary of the Invention

[0007] The present invention provides an embodiment of a mobile lift device that can be conveniently parked for stability while lifting or lowering a load, and can be released from the parked state to move the lift device with or without the load.

[0008] One embodiment of a mobile lift device comprises a horizontal base frame having front and rear frame ends and opposite lateral frame sides; an electric lift mechanism mounted on the base frame and operable to raise and lower a load; a pair of rear wheels mounted in laterally spaced relationship at the rear frame end; a pair of legs extending downwardly from the base frame in laterally spaced relationship near the front frame end, the legs being of a length such that they can contact a support surface for the device; a front wheel unit including a front wheel; a pull lever connected to the front end of the frame to enable movement of the device; and a tilt actuator engaged between the front wheel unit and the base frame, the tilt actuator selectively operable to enable tilting of the front end of the frame to thereby raise the legs away from a support surface for movement of the device and to lower the legs into contact with a support surface to stabilize the device for operation of the electric lift mechanism.

[0009] In one embodiment of the device, the front wheel unit is connected to the front end of the frame, thereby enabling the front wheel to be driven relative to the base frame about a substantially vertical steering axis. The pull lever may be connected to the front end of the frame by the front wheel unit and engaged with the front wheel unit. The pull lever may also engage the tilt actuator to operate the tilt actuator to raise and lower the legs. Each leg may include an adjustably extendable surface contact pad at its lower end.

[0010] In one embodiment of the device, the powered lift mechanism includes a lift deck supporting a load to be raised or lowered, a scissor link engaged between the deck and the base frame, the scissor link extending and retracting to raise and lower the deck, respectively, and a linear lift motor engaged with the scissor link to selectively extend and retract the scissor link. In one embodiment of the lift mechanism, the lift deck includes a plurality of support arms extending outwardly from the deck and having outer ends, with load support pads upstanding from the outer ends, and the support pads cooperating to support a load on the lift mechanism.

[0011] The lift deck may engage with the lift mechanism to allow selective fixation of the deck in an angled position relative to the base frame. To this end, the lift mechanism may include a tilt frame, which may engage with the lift deck to allow selective fixation of the tilt frame relative to the lift deck about a tilt frame axis. In combination with the tilt frame, the lift mechanism may include a load support table, which may pivotally engage with the tilt frame to allow selective fixation of the table at an angle relative to the tilt frame about a table axis substantially perpendicular to the tilt frame axis.

[0012] The legs may extend above the base frame to form front deck supports, and a pair of laterally spaced rear deck supports may extend above the base frame near the rear frame ends, the front and rear deck supports engaging and thereby supporting the lift deck in the lowered position.

[0013] One embodiment of an agile mobile lift device includes a base frame having front and rear frame ends and opposite lateral frame sides; a lift mechanism attached to the base frame and operable to raise and lower a load; caster units located at intersections of the frame ends and frame sides, the caster units cooperating with one another to allow the base frame to move relative to a support surface of the device; and a floor brake mechanism secured to the base frame, the floor brake mechanism including brake pads that selectively extend the brake pads to a braking position to bring the brake pads into braking contact with the support surface to secure the position of the device and retract the brake pads to a release position to allow the device to move across the support surface. The floor brake may be latched to the braking position and released to retract the brake pads and disengage the brake pads from the support surface. The device may include brake mechanisms secured to each of the frame sides in laterally spaced relationship. The device may include a steering handle engaged with the base frame to facilitate controlling the direction of movement of the device.

[0014] In one embodiment of the device, each caster unit includes a swivel caster that is height adjustable, thereby allowing the device to be leveled on an uneven support surface. In one embodiment, the caster unit includes a caster plate pivotally engaged with the base frame to pivot about a substantially vertical plate axis, and a plurality of swivel casters pivotally engaged with the caster plate in spaced-apart relationship to each other to enable pivoting about respective substantially vertical pivot axes. Such a caster unit may include a substantially vertical caster unit shaft that engages with the base frame such that the vertical position of the shaft can be selectively adjusted relative to the base frame; a triangular caster plate that is pivotally engaged with the caster unit shaft, thereby enabling it to pivot about a substantially vertical plate axis extending through the caster unit shaft; and three swivel casters that are pivotally engaged with the caster plate in a spaced triangular relationship, thereby enabling it to pivot about respective substantially vertical pivot axes.

[0015] In one embodiment of the device, the lift mechanism may include a substantially planar luggage deck adapted to support luggage to be lifted by the device; a scissor link connecting the luggage deck to the base frame, the scissor link enabling the luggage plate to be raised or lowered by extension or contraction of the scissor link, respectively; and an actuator engaging the scissor link to enable selective extension and contraction of the scissor link. The lift mechanism may also include a substantially planar luggage table supported on the luggage deck, the luggage table enabling limited movement of the luggage table relative to the luggage deck, thereby adjusting the position of luggage placed on the luggage table. The lift mechanism may include an array of bearings engaging between the luggage deck and the luggage table, thereby facilitating movement of the luggage table relative to the luggage deck. The luggage table may have a limiting member engaging the luggage deck to limit movement of the luggage table relative to the luggage deck. In one embodiment of the lift mechanism, the luggage table may include a suspended limiting member engaging an outer periphery of the luggage deck, thereby limiting movement of the luggage table.

[0016] Various objects and advantages of this invention will become apparent from the following description taken in conjunction with the accompanying drawings, which illustrate and illustrate certain embodiments of the invention.

[0017] The drawings constitute a part of this specification and include exemplary embodiments of the present invention and illustrate various objects and features of the present invention. [Brief explanation of the drawings]

[0018] [Figure 1] FIG. 1 is a perspective view of the mobile scissor lift apparatus of the present invention shown with the lift deck in a raised position by a powered lift mechanism.

[0019] [Figure 2]FIG. 2 is a somewhat enlarged side view showing the lift deck supporting the load in a raised position.

[0020] [Figure 3] FIG. 3 is a somewhat reduced side view with the lift deck, scissor mechanism and portions of the base frame removed to illustrate the components of the powered lift mechanism of the device.

[0021] [Figure 4] FIG. 4 is an enlarged fragmented side view, with the lift deck and lift mechanism removed, illustrating the tilt actuator in an extended position to raise the lower ends of the front legs off the support surface to allow movement of the apparatus.

[0022] [Figure 5] FIG. 5 is a view similar to FIG. 4 illustrating the tilt actuator in a retracted position with the lower ends of the front legs in contact with a support surface to facilitate lifting and lowering of loads by the device.

[0023] [Figure 6] FIG. 6 is a perspective view of an alternative embodiment of the lift device having a first alternative lift deck in a lowered position.

[0024] [Figure 7] FIG. 7 is a side view of the alternative embodiment in a lowered position.

[0025] [Figure 8] FIG. 8 is a perspective view of a first modified lift deck showing support blocks used to support irregularly shaped loads to be worked on by the apparatus.

[0026] [Figure 9] FIG. 9 is a perspective view of a second modified lift deck having load support arms that extend beyond the perimeter of the deck with load support pads upstanding from the outer ends of the arms.

[0027] [Figure 10] FIG. 10 is a perspective view of a second modified lift deck having a tilt table supported on the second modified lift deck and capable of tilting the table relative to the lift deck.

[0028] [Figure 11] FIG. 11 is a view similar to FIG. 10 showing the tilt frame supported on a second modified lift deck in which the tilt table is removed to allow it to pivot about a first axis relative to the lift deck and the tilt table to pivot about a second axis relative to the tilt frame.

[0029] [Figure 12] FIG. 12 is a left side view of the second modified lift deck and tilt table.

[0030] [Figure 13] FIG. 13 is a rear side view of the second modified lift deck and tilt table.

[0031] [Figure 14] FIG. 14 is a schematic block diagram of the components of the lift control system that controls the operation of the powered lift system.

[0032] [Figure 15] FIG. 15 is a perspective view of one embodiment of an agile mobile scissor lift apparatus in accordance with the present invention.

[0033] [Figure 16] FIG. 16 is a side view of an agile mobile scissor lift device.

[0034] [Figure 17] FIG. 17 is an enlarged perspective view of one embodiment of a height-adjustable swivel caster unit employed in a lift device.

[0035] [Figure 18]FIG. 18 is an enlarged perspective view of a movable luggage table according to the present invention shown separated from the luggage deck of a lift device.

[0036] [Figure 19] FIG. 19 is an enlarged perspective view of one embodiment of a latch type floor brake employed in a lift device. DETAILED DESCRIPTION OF THE INVENTION

[0037] While specific embodiments of the present invention are disclosed herein in accordance with the requirements, it should be understood that the disclosed embodiments are merely exemplary of the present invention, and that the present invention may be embodied in various forms. Accordingly, the specific structural and functional details disclosed herein should not be construed as limiting, but merely as a basis for the claims and as a representative basis for teaching the various employment of the present invention in structures having substantially any suitable details.

[0038] Referring more particularly to the drawings, reference numeral 1 generally designates one embodiment of a mobile scissor lift apparatus in accordance with the present invention. Lift apparatus 1 generally includes a jackable and steerable mobile base 4, a motor-driven or powered lift assembly 6 supported by the base 4, and a lift platform assembly 8 engaged for raising and lowering by the lift assembly 6. The jackable mobile base 4 enables the lift apparatus 1 to be selectively moved between a lowered position, as shown schematically in FIG. 5, in which a portion of the base frictionally engages the garage floor to resist movement of the lift apparatus 1 relative to a support surface 12, such as a shop floor, and an elevated position, as shown schematically in FIG. 4, in which the lift apparatus 1 is free to roll relative to the support surface 12. The lift platform 8 supports a load 10 (FIG. 2) that is raised or lowered by operation of the lift assembly 6.

[0039] The illustrated mobile base 4 includes a base frame 16 formed by laterally spaced left and right side members 18 connected by longitudinally (or lengthwise) spaced front and rear end members 20. The base frame members 18 and 20 may be formed of elongated angle sections or the like joined by welding or the like. The base frame 16 may include a lower wall 22 for supporting components of a hydraulic power and control assembly 24 (FIG. 14), as described below.

[0040] The base frame 16 includes a pair of laterally spaced rear wheels 28 mounted to a rear end 30 of the base frame near the junction of the rear end member 20 and the rear ends of the side members 18. The rear wheels 28 may be configured as casters swivelable about vertical axes or may be fixed in orientation. It is envisioned that the wheels 28 may be equipped with brakes (not shown) that can be applied during raising and lowering of the lift platform assembly 8 for increased stability. Laterally spaced supports or legs 34 are joined to the side members 18 of the base frame 16 and extend downwardly therefrom with their lower ends 38 for selectively contacting the support surface 12. The lower ends 38 may include surface contact pads 40 ( FIG. 7 ), which are adjustably extendable to contact the support surface 12 and horizontally position the lift platform assembly 8. In the illustrated base frame 16, the upper ends 42 of the legs 34 extend upwardly to form front deck support members which cooperate with upstanding rear deck support members 44 joined to the side frame members 18 near the rear frame ends 30 to support the lift platform assembly 8 in its lowered position. The front and rear deck support members 42 and 44 also form stops or floor heights for lowering the lift platform assembly 8.

[0041] A tongue structure, or tongue 46, centered about the forward end 36 of the base frame 16 extends forward from the front end member 20 and is supported on a steerable frame lift assembly 48. The steerable frame lift assembly 48 includes a wheel assembly 50 attached to the lower end of a jack 52, and a handle 54, as described below. Generally, the jack 52 can be operated to raise the tongue 46, base frame 16, and wheel assembly 50 relative to the rear wheels 28, tilting the base frame 16 about the rear wheels 28 and raising the lower ends 38 of the legs 34 off the support surface 12, thereby facilitating steering of the lift apparatus 1, or conversely, to retract the tongue 46 and base frame 16 relative to the wheel assembly 50 to lower the legs 34 into contact with or engagement with the support surface for stability during operation of the powered lift assembly 6, such as during raising and lowering of the lift platform assembly 8.

[0042] 1-5, the illustrated tongue structure 46 includes a pair of laterally spaced lower tongue members 58 extending forwardly from the leading end member 20 and having a rising member 60 extending upwardly from each end thereof. The rising members 60 support a cross member 62 extending between the upper ends of the rising members 60.

[0043] The jack 52 is rotatably supported on a jack base 63, which is connected to the front frame end member 20 by tie links 64 connected to the lateral sides of the jack base 63. The upper end of the jack 52 is connected to the middle part of the cross member 62.

[0044] The wheel assembly 50 of the illustrated embodiment includes a pair of front wheels or rollers 65 rotatably mounted on an axle 66 connected to the lower end of a wheel support shaft 67 that is connected to the bottom of the jack 52. The wheel support shaft 67 extends downwardly through the jack base 63 and is rotatable with the jack 52 relative to the jack base 63 (see FIG. 4).

[0045] The jack 52 in the illustrated embodiment may be configured as a conventional hydraulic canister jack 52 having a piston mounted within a canister containing hydraulic fluid and extendable relative to the canister. A pump mounted outside the canister is operable to pump hydraulic fluid from an outer chamber of the canister to the bottom of a cylinder surrounding the piston, causing the piston to extend relative to the canister and raise the tongue 46 and base frame 16 relative to the wheel assembly 50. A release valve is operable to allow hydraulic fluid to flow from the cylinder back into the canister, selectively lowering the piston.

[0046] A handle or lever 54 is pivotally connected at its lower end to the jack 52 so that pivoting the handle 54 downward engages or activates a pump to pump hydraulic fluid from a chamber into a cylinder containing a piston. The lower end of the handle is connected to the jack 52 so as to manually rotate or steer the front wheels 65 of the wheel assembly 50 about a substantially vertical steering axis. A cylinder release lever 70 may be provided on the handle 54 and can be operated to operate a release valve to retract the piston.

[0047] When the pistons of the jacks 52 are extended, the base frame 16 is tilted upward about the wheels 28, lifting the lower ends 38 of the legs 34 away from the support surface 12 and thereby facilitating movement of the apparatus 1 over the surface 12. Typically, the base frame 16 is raised to the transport position shown in FIG. 4 only when the lift platform assembly 8 is in the lowered position. Conversely, the motorized lift assembly 6 operates to raise and lower the lift platform assembly 8 only when the base frame 16 is in the more stable parked position shown in FIG. 5, with the lower ends 38 of the legs 34 in contact with the support surface 12. The frame lift assembly 48 is comparable to components employed in pallet jacks and skid jacks. Further details of such jacking units are described in U.S. Pat. Nos. 2,399,043 and 3,462,167, the disclosures of which are incorporated herein in their entireties.

[0048] 1-3, the illustrated lift platform assembly 8 includes a rectangular load-supporting platform or deck 76 formed as a shallow, downwardly opening box structure by an upper deck plate 78, left and right side plates 80, and front and rear end plates 82, joined by welding. The side plates 80 may include tool grooves 84 extending therealong to receive a mechanic's tools while working on the vehicle. It is envisioned that the end plates 82 will also include such tool grooves. The underside of the upper deck plate 78 includes laterally spaced pairs of upper scissor clevises 86 (FIG. 3) that are joined to the upper deck plate 78 and are vertically aligned with pairs of lower scissor clevises 88, which are shown joined to the front end member 20 of the base frame 16, as described further below. The underside of the deck 78 may also include front and rear pairs of height stops 90 that align with and engage the upper ends of the front and rear deck supports 42 and 44. Height stops 90 limit downward movement of the lift platform assembly by engaging the front and rear deck supports 42 and 44. The underside of the upper deck plate 78 may also be provided with left and right upper scissor roller plates 92, as will be described below. Similar lower scissor roller plates 94 may also be provided on the side members 18 of the base frame 16.

[0049] A layer 96 (FIGS. 6 and 7) of ultra-high molecular weight polyethylene (UHMW-PE) or other low-friction polymer or material can be secured to the upper surface of the upper deck plate 78 to facilitate moving a heavy component or load 10, such as a heavy battery pack, across the surface to align the component 10 with the portion of the vehicle to which it is secured, e.g., aligning bolts or bolt holes on the component with bolt holes or bolts on the vehicle frame. The low-friction layer 96 also minimizes surface damage to the battery pack or other component, protecting the surface of the deck plate 78 from chemical spills and scratches and damage when heavy drivetrain components or battery packs are slid across the surface of the deck plate. Surface contact pads 40 can also be used to adjust the orientation of the upper deck plate 78 and the component 10 supported thereon, front to back, side to side, and to orient the component 10 with the portion of the vehicle to which it is attached.

[0050] 2 and 3, the powered lift assembly 6 supports a lift platform assembly 8 on the mobile jack assembly 4 and is operable to raise and lower the lift platform assembly 8, along with any load 10 disposed thereon, relative thereto. The lift assembly 6 includes left and right scissor lift mechanisms 100 supported on left and right side members 18 of the base frame 16. Each of the illustrated scissor mechanisms 100 includes left and right, vertically connected pairs of scissor links 102, laterally spaced apart, with links 104 and 106 pivotally connected intermediate each link. Each scissor pair 102 has a link end scissor link 104 pivotally connected at its end to one of the scissor clevises 86 or 88, and a roller end scissor link 106 having a scissor roller mounted thereon. Each upper link end link 104 is pivotally connected at both ends to a corresponding lower link end link 104. Similarly, each of the upper roller end links 106 is pivotally connected at an opposite end to a corresponding lower roller end link 106 .

[0051] Lateral scissor spacers 110 extend between corresponding upper and lower links 104 and 106. Left and right linear motors 112, such as hydraulic cylinders, extend between the lateral spacers 110 between sets of links, such as roller end links 106. When the motors 112 extend, the scissor mechanism 100 extends and raises the lift platform assembly 8, while when the motors 112 retract, the scissor mechanism 100 retracts and lowers the assembly 8. As the scissor mechanism 100 raises or lowers, rollers 108 at the ends of the roller end links 106 roll forward or backward along the upper and lower roller plates 92 and 94, respectively.

[0052] Referring to FIG. 14 , the illustrated hydraulic control system or assembly 24 includes a hydraulic fluid tank or reservoir 118, a hydraulic pump 120, a hydraulic valve 122, and a hydraulic cylinder or linear motor 112. The pump 120 is driven by a hydraulic pump / motor 124 controlled by a hydraulic control unit 126 ( FIGS. 6 and 14 ), which pumps hydraulic fluid from the tank 118 through the valve 122 as controlled by the control unit 126. The control unit 126 includes an up / down switch 128 for causing the system 24 to selectively raise or lower the lift platform assembly 8. The system 24 may also include limit switches 130 ( FIGS. 7 and 14 ) that operate near desired upper and lower limits of travel of the lift platform assembly 8. The system 24 may be configured to operate the valve 122 to allow fluid to drain from the cylinder 112, through the pump 120, and into the tank 119 when the assembly 8 is to be lowered. Alternatively, the motor 124 , pump 120 and valve 122 may actively pump fluid from the cylinder 112 back to the tank 118 .

[0053] 6, 7, and 8, a modified embodiment 140 of the mobile scissor lift apparatus 1 is shown. The illustrated apparatus 140 includes a modified lift platform assembly 142 having a pair of separated tool grooves 144 on each of a pair of side members 146 of the assembly 142. The assembly 142 includes a plurality of tie-down rings 148 that can be removably threaded into threaded holes formed in the side members 146. The rings 148 allow the load 10 to be secured to the assembly 142 during lifting and lowering of the assembly 142 and during maneuvering of the apparatus 140. The apparatus 140 may also include packaging eyebolts 149 that secure the lift platform assembly 142 in a lowered position, such as when placed within a packing crate (not shown). The eyebolts 149 can pass through an upper deck plate 150 and through the upper ends of front and rear deck support members 151, as well as through the upper ends 42 and rear support 44 of the legs 34 of the apparatus 1. Additionally, eyebolts 149 may be used to facilitate lifting the device 140 out of such a packing crate, and may be removed for use with the device 140.

[0054] The illustrated apparatus 140 includes a modified tongue structure 152 with a simplified structure. The tongue structure 152 includes a pair of tongue members 154 extending diagonally from a forward base frame member 156 to a jack unit 158, which may be substantially similar to jack unit 48. In other respects, the modified apparatus 140 is substantially similar to apparatus 1. FIG. 8 shows an assembly 8 having a plurality of spacer blocks 160 of different sizes. The blocks 160 can be used, for example, to support an irregularly shaped load 10 in a desired orientation on the deck plate 150 during lifting or lowering of the load 10.

[0055] The embodiment of the mobile scissor lift apparatus 140 shown in Figures 6 and 7 also includes a modified handle 254 adapted to facilitate movement and steering of the scissor lift apparatus 140. The handle 254 includes a stem 256 and a grip 258. The lower end of the handle 254 is pivotally connected to the jack unit 48 for operating the pump contained therein. The upper segment or portion 258 of the handle 254 is angled at an acute angle (18 degrees in the illustrated embodiment) relative to the lower segment or portion 260 so that the upper portion 258 is angled away from the upper deck plate 150 and base frame 16 when the lower portion 260 of the handle 254 extends vertically. The angle of the upper portion 258 of the handle 254 relative to the lower portion 260 of the handle 254 may be between 15 and 20 degrees, and it is envisioned that this will provide improved steering and maneuverability of the lift apparatus 140 by a user. Grip 258 is formed from left and right curved grip segments 263 and 264, each of which extends outward from the upper end of handle 254 and curves downward and inward to contact upper portion 258 of handle 254 in spaced relation below its upper end.

[0056] FIG. 9 illustrates a modified lift platform assembly 164 including multiple angled load support arm assemblies 162. Each assembly 162 includes an outwardly extending arm 166, each arm having a load contact pad 168 on a contact pad post 170 upstanding from the end of the arm 166. The arms 166 may be telescopic to adjust their length. Additionally, the posts 170 may be length-adjustable to adjust the vertical position of the contact pads 168 thereon. The arm assemblies 162 may be configured to support loads 10 that are longer or wider than the platform assembly 164. The lengths of the arms 166 and posts 170 may be adjusted to support irregularly shaped loads 10 in a desired orientation.

[0057] 10-13 illustrate one embodiment of a lift platform assembly 180, similar to lift platform assemblies 142 and 164 but modified to include the addition of a tilt table 182 to a lift deck 184, which can tilt fore-aft, side-to-side, or a combination thereof through a limited angular range. The tilting capability of the tilt table 182 allows the table to engage loads 10 with irregular underside shapes without dropping any part of the load 10 during pickup or manually lifting any part during unloading. The tilting capability of the tilt table 182 also allows a user to reorient the load 10 to align fasteners, such as bolts and bolt holes, on the load and vehicle frame. The illustrated platform assembly 180 includes tilt frames 186 pivotally mounted to the front and rear ends 188 of the lift deck 184 for tilting the tilt frames 186 laterally relative to a longitudinal or fore-aft axis 190 (FIG. 11) of the assembly 180. The tilt table 182 is pivotally mounted to a tilt frame 186 which allows the tilt table 182 to tilt back and forth about a lateral axis 192 .

[0058] More specifically, the illustrated tilt frame 186 is cruciform and formed by an elongated longitudinal tilt frame member 194 having a pair of tilt frame arms 196 extending laterally from either side thereof. End brackets 197 attached to the outer ends of the longitudinal members 194 are pivotally connected to front and rear tilt frame end brackets 198 fixed to the front and rear ends 188 of the lift deck 184, thereby enabling the tilt frame 186 to tilt about its longitudinal axis 190 relative to the lift deck 184. The outer ends of the arms 196 have upwardly extending brackets 200 to which downwardly extending brackets 201 on side members 202 of the tilt table 182 are pivotally connected, thereby enabling the tilt table 182 to tilt about its lateral axis 192 relative to the tilt frame 186.

[0059] To fix the side tilt angle of the tilt frame 186 relative to the lift deck 184, a side tilt adjustment assembly or side tilt assembly 204 is engaged between a side member 204 of the lift deck 184 and one of the side brackets 200 of the tilt frame 186. Similarly, to fix the end tilt angle of the tilt table 182 relative to the tilt frame 186, an end tilt adjustment assembly or end tilt assembly 208 is engaged between an end bracket 198 of the lift deck 184 and an end bracket 197 of the longitudinal member 194 of the tilt frame 186. The side tilt assembly 204 and the end tilt assembly 208 are substantially similar in structure and operation. Each of the tilt assemblies 204 and 208 includes a relatively stationary base clevis 210 and a relatively movable tilt clevis 212. The side tilt assembly 204 includes a base clevis 210 secured to a side member 206 of the lift deck 184 and a tilt clevis 212 secured to a side bracket 200 of the arm 196 of the tilt frame 186. A threaded rod 214 extends through a tilt pin 216 in the clevises 210 and 212 and can be rotated to move the tilt clevis 212 toward or away from the base clevis 210. Similarly, the end tilt assembly 208 includes a base clevis 210 secured to an end bracket 197 of the tilt frame 186 and a tilt clevis 212 secured to an end member 218 ( FIG. 10 ) of the tilt table 182. A threaded rod 214 extends through tilt pins 216 in clevises 210 and 212 and can be rotated to move tilt clevis 212 toward or away from base clevis 210. It is envisioned that differently configured tilt mechanisms can be employed to adjustably tilt tilt table 182 relative to lift deck 184.

[0060] 15-19, there is shown one embodiment of an agile mobile scissor lift apparatus 250. Apparatus 250 is functionally similar to apparatus 1, but has numerous improvements that provide highly precise movement of the apparatus and its components to facilitate lifting loads 10 (FIG. 2), such as electric vehicle battery units (not shown), for vehicle maintenance.

[0061] The illustrated apparatus 250 includes a rectangular base frame 254 formed by elongated front and rear end members 258 and left and right lateral or side members 260, which are joined by welding to form base corner joints or intersections 262. Caster units 265 are secured to the base frame 254 at each corner joint 262. The caster units 265 cooperate to support the base frame 265 above a support surface 267, such as a concrete floor of a vehicle maintenance facility. A steering handle 270 is coupled to the front end member 258 of the base frame 254 and controls the direction of movement of the apparatus 250 above the floor 267. It is envisioned that the steering handle 270 may be pivotally coupled to the base frame 254.

[0062] Apparatus 250 includes a motor-driven lift mechanism 275 for supporting, raising, and lowering loads 10 (FIG. 2), such as electric vehicle battery units, for vehicle maintenance. Generally, lift mechanism 275 includes a load platform assembly 277, a scissor link 280, and a lift actuator 282. Scissor link 280 connects load platform assembly 275 to base frame 254, and lift actuator 282 functions to extend and retract scissor link 280 to raise and lower loads 10 supported by load platform assembly 275.

[0063] Scissor linkage 280 may be substantially similar in structure and operation to scissor mechanism 100 (FIG. 1). Actuator 282 may be similar to hydraulic actuator or cylinder 112 (FIG. 1) and may be controlled by hydraulic components 24 similar to that illustrated schematically in FIG. 14 to extend and retract scissor linkage 280 and raise and lower load platform assembly 275. Hydraulic control components 24 may be housed within hydraulic housing 284 (FIG. 15). Control components 24 may include a hydraulic control pendant or unit 287 connected by a control cable (not shown) and having up / down switch 128 (FIG. 14). The illustrated control pendant 287 includes a magnet for retention in a recess in steering handle 270.

[0064] The valve for the hydraulic actuator 282 is typically closed unless the cylinder is actively extending or retracting. Thus, as the load platform assembly 277 and the load 10 thereon are raised, the actuator 282 holds the platform assembly 277 in place. To more actively limit undesired lowering of the load platform assembly 277, such as due to a malfunction of the actuator 282, the illustrated scissor linkage 280 includes a latch mechanism 286 ( FIG. 15 ) that engages the same scissor linkage 280 component as the actuator 282. The latch mechanism 290 includes a pawl-ratchet mechanism (details omitted) in which the pawl overcomes a number of spaced stops during extension of the actuator 282. If the actuator 282 were to fail, the platform assembly 277 would lower by the maximum distance between two adjacent stops. To lower the platform without being impeded by the latch mechanism 290, the platform assembly 277 must be raised until the pawl engages the next stop, causing the pawl to retract. At that point, the platform assembly 277 can be lowered without interference from the pawl. A ratchet-type latching device having a similar function is described in U.S. Patent No. 10,745,259, which is incorporated herein by reference in its entirety.

[0065] Referring to FIG. 17 , the illustrated device 250 includes a swivel caster unit 265 for mobility. Generally, the swivel caster assembly 290 includes a caster wheel 292 mounted on a caster axle 294 extending across the end of a swivel fork 296, which is rotatably mounted on a swivel mounting shaft 298 from which a generally vertical pivot axis 300 extends. Friction of the caster wheel 292 with the surface 267 tends to cause the caster fork 296 to follow the direction of travel of the structure on which it is placed, due to misalignment between the pivot axis 300, which forms the axis of rotation of the caster wheel 292, and the swivel axle 294. However, any change in the direction of movement of the structure can cause the caster 290 to pivot about its point of contact with the floor, potentially causing an undesirable wobble or "throw" of the structure on which the caster is mounted in an undesirable direction. To overcome this tendency, so-called anti-throw caster units have been developed. Anti-slow caster units are also known as triple caster units or theater casters (due to their use for moving scenery on sets). A typical anti-slow caster unit contains three caster wheels attached to a caster plate that is rotatably mounted to the structure on which it is used. The free rotation of the caster plate, combined with the free pivoting of the individual casters on the plate, overcomes the tendency of the structure to wobble when attempting to change direction of travel.

[0066] The illustrated caster unit 265 is an anti-slow type caster assembly and includes a triangular caster plate 303 rotatably engaged with a caster unit shaft 307 that extends along a caster shaft axis 308 in perpendicular relationship to the caster plate 303. The caster plate 303 has three swivel caster assemblies 290 mounted in a triangular pattern like the corners of the triangular caster plate 303. The illustrated caster unit 265 is height adjustable to allow the apparatus 250 to be leveled for possible irregularities in the support surface 267. The illustrated caster unit shaft 307 is a threaded jack screw that passes through a caster height adjustment gear unit 310 having a gearing (not shown) therein, and a handwheel or crank 312 can be turned to rotate the shaft 307 via a threaded nut (not shown) in the gear unit 310, thereby moving the caster plate 303 vertically relative to the base frame 254. The gear unit 310, along with the swivel caster assembly 290, is secured to the base frame 254 at one of its corners 262. In the illustrated apparatus 250, the handwheel 312 has a shaft that passes through an upstanding flange on one of the side members 260. In the illustrated apparatus 250, the components of the front caster unit 265 are mounted on a suitable bracket to the front side of the front end member 258 of the base frame 254. Alternatively, it is envisioned that the base frame 254 may be configured such that the caster unit 265 is mounted inside the base frame 254.

[0067] For stability and safety reasons, it is desirable to lock the position of the apparatus 250 while the load 10 is being raised or lowered. While some caster assemblies are provided with individual brakes to lock their position, it is impractical to lock and unlock all 12 caster assemblies 290 on the apparatus 250. For this reason, the illustrated apparatus 250 is provided with a pair of floor lock or brake units 315 extending downwardly from each side member 260. Referring to FIG. 19 , each floor brake unit 315 includes a brake pad 317 mounted on a shaft that can be lowered to make resilient frictional contact with the support surface 267, thereby locking the position of the apparatus 250 relative to the surface 267. The illustrated brake unit 315 includes a mounting plate 319 that can be secured to the side member 260 or a bracket attached thereto. The unit 315 has a lock or brake pedal 321 that latches the brake pad 317 into contact with the surface 267. The brake unit 315 has a release pedal 323 operable to release and retract the brake pads 317. The floor brake unit 315 may be functionally similar to the floor engaging "legs" disclosed in U.S. Patent No. 4,655,466, the entire disclosure of which is incorporated herein by reference.

[0068] Referring to FIG. 18, the illustrated luggage platform assembly 277 includes a planar luggage deck 325 upon which a luggage table or slip plate 327 is slidably disposed. Structurally, the luggage deck 325 is substantially similar to the lift platform assemblies 78 (FIG. 1) and 142 (FIG. 6). The luggage deck 325 includes a rectangular luggage deck frame 330 formed by laterally spaced side frame members or plates 332 joined to longitudinally spaced end frame members or plates 334. A top deck plate 336 is joined to the upper surfaces of the luggage deck frame members 332 and 334. The illustrated luggage deck 325 includes a tool groove or pan 338 attached to the side frame member 332. Additionally, the side frame members 332 and end members 334 may include handles 340 for stabilizing the apparatus 250 during its use. The upper surface of the illustrated deck plate 336 may be covered by a polymer or plastic plate 342 on which an array of regularly spaced ball bearings 342 is provided.

[0069] Luggage table 327 is constructed similarly to luggage deck 325 and includes a luggage table frame 345 formed by side frame members or plates 348 joined with end frame members or plates 350. Frame 345 is closed by a luggage table plate 352 covered with a polymer or plastic plate 355. Plate 355 has an array of rubber or elastomeric bumpers or pads 357 regularly spaced on plate 355. Side members 348 and end members 350 may be provided with handles 360.

[0070] The dimensions of the luggage table 327 are such that the length and width of the luggage table frame 346 are greater than the length and width of the luggage deck frame 330, thereby allowing a portion of the luggage table 327 to overlap the luggage deck 325. The luggage table 327 need not be attached to the luggage deck 325 and may be temporarily placed on the luggage deck 325 if necessary. When the luggage table 327 is placed on the luggage deck 325, the luggage table plate 352 rests on ball bearings 342, allowing the luggage table 327 to move relative to the luggage deck 325. Movement of the luggage table 327 is limited by contact between the overhanging side and end frame members 348 and 350 and the outer periphery 362 of the luggage deck 325 formed by the side and end frame members 346 and 348. The handle 340 of the luggage deck 325 can be used to stabilize the apparatus 250 when the handle 360 ​​of the luggage table 327 is used to position the luggage table 327 to support luggage 10.

[0071] The mobility of the luggage table 327 relative to the luggage deck 325, combined with the ease of movement of the base frame 254 provided by the caster units 265, provides for precise positioning of luggage supported on the apparatus 250. The luggage deck 325, excluding the movable luggage table 327, may be used with the luggage support assembly 162 (FIG. 9) or with the tilt table 182 as shown in FIGS. 10-13.

[0072] Although particular forms of the invention have been described and illustrated herein, it is to be understood that the invention is not limited to the specific forms or arrangements of parts so described and illustrated.

Claims

1. A mobile lift device comprising: A base frame; a lift mechanism mounted on the base frame and operable to raise and lower a load; a plurality of caster units coupled to and extending below the base frame, the plurality of caster units cooperating with one another to allow the base frame to move relative to a support surface of the apparatus; a floor brake mechanism fixed to the base frame, the floor brake mechanism including brake pads that selectively extend the brake pads to a braking position of the brake pads to bring them into braking contact with the support surface to fix the position of the device, and retract the brake pads to a released position to allow movement of the device over the support surface; Each of the plurality of caster units is a caster plate pivotally engaged with the base frame for pivotal movement about a substantially vertical plate axis; a plurality of swivel casters in spaced relation to one another and pivotally engaged with said caster plate to permit pivotal movement about respective substantially vertical pivot axes.

2. 10. The apparatus of claim 1, Each of the plurality of caster units is positioned at a corner of the base frame and is height adjustable relative to the base frame, thereby allowing the base frame to be leveled on an uneven support surface.

3. 2. The apparatus of claim 1, wherein each of the plurality of caster units comprises: a substantially vertical caster unit shaft that engages the base frame such that the vertical position of the shaft can be selectively adjusted relative to the base frame; Each of the plurality of caster units includes a caster plate having a triangular shape and pivotally engaged with the caster unit shaft so as to be pivotable about a substantially vertical plate axis extending through the caster unit shaft; Each of the plurality of caster units includes three of the swivel casters, the three swivel casters pivotally engaging the caster plate in a spaced apart triangular relationship.

4. 10. The apparatus of claim 1, Respective brake mechanisms are secured to the base frame on opposite sides thereof in laterally aligned relationship to one another.

5. 2. The apparatus of claim 1, wherein the lift mechanism comprises: a substantially planar load deck adapted to support loads to be lifted by said device; a scissor link connecting the luggage deck to the base frame, the scissor link enabling the luggage deck to be raised or lowered by extension or contraction of the scissor link; and an actuator engaging the scissor linkage to enable selective extension and contraction of the scissor linkage.

6. 2. The apparatus of claim 1, wherein the lift mechanism comprises: a substantially planar load deck adapted to support loads to be lifted by said device; a substantially planar luggage table supported on the luggage deck, the luggage table allowing limited movement of the luggage table relative to the luggage deck to thereby adjust the position of luggage placed on the luggage table; a scissor link connecting the luggage deck to the base frame, the scissor link enabling the luggage deck to be raised or lowered by extension or contraction of the scissor link; and an actuator engaging the scissor linkage to enable selective extension and contraction of the scissor linkage.

7. 7. The apparatus of claim 6, An array of bearings is included that engages between the luggage deck and the luggage table, thereby facilitating movement of the luggage table relative to the luggage deck.

8. 7. The apparatus of claim 6, The luggage table has a limiting member that engages the luggage deck to limit movement of the luggage table relative to the luggage deck.

9. A mobile lift device comprising: a base frame having first and second lateral frame sides; a lift mechanism attached to the base frame and operable to raise and lower a load; a plurality of caster units, each of which is positioned proximate a respective corner of the base frame, the plurality of caster units cooperating with one another to thereby enable the base frame to move relative to a support surface of the apparatus; Each of the plurality of caster units is a caster plate pivotally engaged with the base frame, thereby allowing pivotal movement about a substantially vertical plate axis; a plurality of swivel casters pivotally engaged with said caster plate in spaced relation to one another for pivotal movement about respective substantially vertical pivot axes; The device comprises: a respective floor brake mechanism secured to each of the first and second lateral frame sides of the base frame, each floor brake mechanism including a brake pad that selectively extends and latches the brake pad into braking contact with the support surface in a braking position to secure the position of the device, and releases and retracts the brake pad to a released position to allow movement of the device over the support surface.

10. 10. The apparatus of claim 9, Each of the plurality of caster units is height adjustable relative to the base frame, thereby allowing the base frame to be leveled on an uneven support surface.

11. 10. The apparatus of claim 9, wherein each of the plurality of caster units comprises: a substantially vertical caster unit shaft that engages the base frame such that the vertical position of the shaft can be selectively adjusted relative to the base frame; Each of the plurality of caster units includes a caster plate having a triangular shape and pivotally engaged with the caster unit shaft, thereby pivotable about a substantially vertical plate axis extending through the caster unit shaft; Each of the plurality of caster units includes three of the swivel casters, the three swivel casters pivotally engaging the caster plate in a spaced apart triangular relationship.

12. 10. The apparatus of claim 9, wherein the lift mechanism comprises: a substantially planar load deck adapted to support loads to be lifted by said device; a substantially planar luggage table supported on the luggage deck, the luggage table allowing limited movement of the luggage table relative to the luggage deck to thereby adjust the position of luggage placed on the luggage table; a scissor link connecting the luggage deck to the base frame, the scissor link enabling the luggage deck to be raised or lowered by extension or contraction of the scissor link; and an actuator engaging the scissor linkage to enable selective extension and contraction of the scissor linkage.

13. 13. The apparatus of claim 12, an array of bearings disposed on the luggage deck in spaced relation, the array of bearings engaging the luggage table, thereby facilitating movement of the luggage table relative to the luggage deck; The luggage table includes a suspended limiting member that engages the outer periphery of the luggage deck, thereby limiting movement of the luggage table relative to the luggage deck.

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