The invention relates to a mobile storage device, and more particularly, to a mobile storage device having a rear extending storage bin.
Workers often find that providing materials for replacement of a building roof is very time consuming, considering the task involves using different mechanical units or manual labor to lift building materials from a truck and position them on a roof. Furthermore, stripping old material from the building roof in order to put on a new roof is also time consuming and a dirty job. Generally, old material is thrown from the roof to the ground around the building and then workers manually pick up debris to deposit it into a disposal container. Even if the material can be thrown directly into a container there remain the problems of getting the disposal container in proximity to the roof and removal from the work site. The most common solution to the disposal problem is to move a dump truck adjacent to the building and to attempt to throw the material directly from the roof into the truck bin. Furthermore, the problem is not limited to roofing material. Any building remodeling generates significant construction trash, and the most convenient method of removing it from the building is to throw it out a window.
As a result, it is not always possible to move a large truck into a location adjacent to a building. Fences, lawns, and shrubs can be damaged by any size truck, especially a large transport truck.
There is a need for a vehicle that can move around the typical landscaped yard surrounding a building and position a storage bin into an extended position near workers.
In view of the foregoing, a mobile storage device is provided. The mobile storage device includes a frame, an extension device, a storage bin, and a control system. The extension device is rotatably connected to the frame. The storage bin is secured to the extension device. The control system is rotatably connected to the frame.
The invention is explained in greater detail below with reference to embodiments and the appended drawings, of which:
The invention is explained in greater detail below with reference to embodiments of a mobile storage device. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete and still fully convey the scope of the invention to those skilled in the art.
A mobile storage device 1 according to the invention is shown generally in
Now with reference to
As shown in
Each support beam 12 includes a first extension receiving bracket 122 positioned between a leading end and a trailing end of the frame 10, and a second extension receiving bracket 124 positioned along the trailing end. In the shown embodiment, the first extension receiving bracket 122 is positioned approximately centrally between the leading edge and trailing edge of the frame 10. Each first extension receiving bracket 122 includes first support arm receiving space 122-1 and a first fastener receiving through-hole 122-2 extending completely there through. Each second extension receiving bracket 124 includes second support arm receiving space 124-1 and a second fastener receiving through-hole 124-2 extending completely there through.
Each connecting beam 142-146 runs substantially perpendicular to and connects the plurality of support beams 12 to form an undercarriage chassis 22. Each connection is provided, for instance, using a mechanical weld. However, one skilled in the art should appreciate that fasteners, such as bolts, nuts, screws, and adhesives could be used.
First connecting beam 142 is positioned along the trailing edge of the frame 10, while second connecting beam 144 is positioned between the leading edge and the trailing edge to connect the plurality of support beams 12. In the shown embodiment, the second connecting beam 144 is positioned offset from the trailing edge. The third connecting beam 146 is positioned along the leading edge of the frame to connect the plurality of support beams 12. As shown in
The power system support 16, shown in
Both the drive wheels 18 and the steerable wheels 20 are positioned under the undercarriage chassis 22. In the embodiment shown in
The steerable wheels 20 are pivotably attached to the frame 10 via the steering pivot assembly 24. The steering pivot assembly 24, as shown in
The stabilizer 30 will now be discussed with reference to
The stabilizer 30 includes a pair of outriggers 32 and a pair of stabilizing actuators 38. As shown in
The power system 40 will now be discussed with reference to
The engine 42, such as an internal combustion engine, as shown, powers the power system 40. However, the power system 40 could be powered by other known mechanisms including an electric motor powered by a battery or other sources. In the shown embodiment, the power system 40 is interconnected with drive wheels 18 by a hydraulic motor (not shown) installed adjacent to the drive wheels 18 and interconnected to the hydraulic pump (not shown) by hydraulic lines.
One skilled in art should appreciate that other designs are possible. For instance, the power system 40 may include other methods to move the drive wheels 18, including chains, belts, or a drive shaft and a transmission connected to the engine 42, so that the mobile storage device 1 can be moved around a work site under its own power.
The control system 50 will now be described with reference to
The operator input interface 52, as shown in
The storage bin 60 will now be described with reference to
The platform 62, as shown in
The cutout section 64 extends from an end of the platform 62, and is shaped to accommodate other elements of the mobile storage device 1 exterior of the storage bin 60, including the power system 40 and, more particularly, the. As shown in
The plurality of retaining walls 66 includes a pair of side retaining walls 662 and a retaining end wall 664. In the shown embodiment, each retaining wall 66 is metal plate. However, one skilled in the art should appreciate that each retaining wall 66 could be manufactured using other materials, such as lumber, composite, and other metals. For instance, each retaining wall 66 may include a framed metal structure on which a plurality of wood planks is disposed along the framed metal structure.
The retaining walls 66 are positioned and secured along outer edges of the platform 62 and cutout section 64 and, in particular, along a top planar surface thereof. The retaining walls 66 are firmly secured to the platform 62 and cutout section 64 using mechanical welds. In the shown embodiment, the side retaining walls 662 are positioned along opposite longitudinal sides of the platform 62 and cutout section 64, while the retaining end wall 664 is positioned around a leading end of the cutout section 64. Each retaining wall 66 extends substantially perpendicular with respect to the top planar surface of the platform 62 and cutout section 64. Each retaining wall 66 is mechanically secured to the platform 62 and cutout section 64, for instance, using a weld or a plurality of known mechanical fasteners. In addition, the retaining end wall 664 is secured to a pair of common ends of the side retaining walls 662. In the embodiment shown, the retaining end wall 664 is mechanically secured to the pair of side retaining walls 662, for instance, using a weld or other known mechanical fasteners or adhesives.
As shown, each side retaining walls 662 includes a plurality of wall supports 662-2. The wall supports 662-2 provide reinforcement for the planar surfaces of each of the side retaining walls 662. In the shown embodiment, each wall support 662-2 is a tubular structure of metal that is mechanically secured to an outer surface of the side retaining wall 662, for instance, using a weld. However, one skilled in the art should appreciate that other known fastening means are possible, including but not limited to screws, nuts and bolts, and adhesives.
As shown, the retaining end wall 664 includes a link securing member 668 positioned along a top end thereof. The link securing member 668 includes a link securing passageway 668-1 extending through a portion of the retaining end wall 664 and a link fastener 668-2 capable of removably enclosing the link securing passageway 668-1. The link fastener 668-2 may be a pin as shown in the embodiment of
The tailgate 68, as shown in
The tailgate 68 also includes a pair of tailgate latches 684, each tailgate latch 684 removably securing an opposite second side of the tailgate 68 to a top of a side retaining wall 662. As shown in
The extension device 70 will now be described with reference to
With reference to
The second base extension section 74 generally includes a pair of second lower supports 742, a second base extension cross member 744, a pair of braces 746, and a lifting actuator 748.
Each second lower support 742 is an elongated structural beam and, in the shown embodiment, a rectangular metal beam. Each second lower support 742 includes a first fastener receiving through-hole 742-1 positioned at a trailing end thereof and extending completely there through, and a second fastener receiving through-hole 742-2 positioned at a leading end thereof and extending completely there through. The pair of second lower supports 742 are positioned parallel to each other.
The second base extension cross member 744 is positioned proximate the leading edge of each of the second lower supports 742, and as shown in
The second base extension cross member 744 includes a first actuator receiving bracket 744-1 disposed on and mechanically secured to a side thereof In the shown embodiment, each first actuator receiving bracket 744-1 is an eye bracket. However, one skilled in the art should appreciate that other known brackets could be used. In addition, one skilled in the can appreciate that one or more actuator receiving brackets 744-1 can be used and positioned at different locations along the second base extension cross member 744.
Each brace 746 is positioned at opposite ends of second base extension cross member 744 and along inner surfaces of the pair of second lower supports 742. Each brace 746 is mechanically secured to the second base extension cross member 744 and the one of the pair of second lower supports 742, for instance, using a weld or other known mechanical fasteners. Each brace 746 is a metal structural brace, and as in the shown embodiment, may be approximately triangularly shaped.
As shown in
Each fastener section 748-2 is positioned at an opposite end of the actuator section 748-1. A fastener section 748-2 connects the actuator section 748-1 to the actuator receiving bracket 744-1, and another fastener section 748-2 connects an opposite end of the actuator section 748-1 to the base frame bracket 748-3. In the shown embodiment, each fastener section 748-2 is a rod clevis. One skilled in the art should appreciate that other known fasteners may be used that are capable of connecting between the frame 10 and the second base extension section 74 through the lifting actuator 748.
A first end of the base frame bracket 748-3 is connected to a fastener section 748-2. The opposite second end of the base frame bracket 748-3 is formed to fixedly receive an elongated structural member, as shown in
With reference to
The pair of intermediate supports 762 are elongated structural beams and, in the shown embodiment, a pair of rectangular metal beams. Each intermediate support 762 includes a first fastener receiving through-hole 762-1 positioned at a leading end thereof and extending completely there through, a second fastener receiving through-hole 762-2 positioned between a leading end and a trailing end thereof and extending completely there through, and a third fastener receiving through-hole 762-3 positioned at a trailing end thereof and extending completely there through. The pair of intermediate supports 762 are positioned parallel to each other and connected to each other by the first intermediate cross member 764 and the second intermediate cross member 766.
The first intermediate cross member 764 is positioned between the leading end and the trailing end of the intermediate supports 762. The first intermediate cross member 764 is a metal structural support extending between and secured to the pair of intermediate supports 762. The first intermediate cross member 764 is mechanically secured to facing inner surfaces of the pair of intermediate supports 762, for instance, using a weld or other known mechanical fasteners. One skilled in the art should appreciate that other shapes and design are possible.
The second intermediate cross member 766 is positioned proximate the trailing end of the intermediate supports 762. The second intermediate cross member 766 is a metal structural support extending between and secured to the pair of intermediate supports 762. As especially shown in
With reference to
The pair of platform beams 782 are elongated structural beams and, as in the shown embodiment, are I-shaped metal beams. However, one skilled in the art should appreciate that other mechanically supports are possible, including tubular beams and various shaped metal supports. Each platform beam 782 includes a fastener receiving through-hole 782-1 positioned at a trailing end thereof and extending completely there through. The pair of platform beams 782 are positioned parallel to each other and connected to each other by the platform cross member 784.
The platform cross member 784 is a metal structural support extending between and secured to the pair of platform beams 782, positioned proximate a leading end of the pair of platform beams 782. In particular, the platform cross member 784 is mechanically secured to facing inner surfaces of the pair of platform beams 782, for instance, using a weld or other known mechanical fasteners. One skilled in the art should appreciate that other shapes and design are possible.
The platform cross member 784 includes a tilting actuator bracket 784-1 disposed on and mechanically secured to the platform cross member 784. In the shown embodiment, the tilting actuator bracket 784-1 is an eye bracket, however, one skilled in the art should appreciate other known brackets could be used. In addition, one skilled in the can appreciate that one or more tilting actuator brackets 784-1 can be used and positioned at different locations along the platform cross member 784.
As shown in
Each fastener section 786-2 is positioned at an opposite end of the actuator section 786-1. A fastener section 786-2 connects the actuator section 786-1 to the tilting actuator bracket 784-1, and another fastener section 786-2 connects an opposite end of the actuator section 786-1 to the intermediate frame bracket 786-3. In the shown embodiment, each fastener section 786-2 is a rod clevis. One skilled in the art should appreciate that other known fasteners may be used that are capable of connecting between the intermediate extension section 76 and the storage bin platform section 78 through the tilting actuator 786.
A first end of the intermediate frame bracket 786-3 is connected to a fastener section 786-2. An opposite second end of the intermediate frame bracket 786-3 is formed to fixedly receive the second intermediate cross member 766, as shown in
With reference to the drawings, assembly of the mobile storage device 1 according to the invention will now be described.
The drive wheels 18 and the steerable wheels 20 are positioned under the undercarriage chassis 22, with the drive wheels 18 fixed to the chassis 22 and the steerable wheels 20 pivotably attached to the chassis 22 via the steering pivot assembly 24. In the embodiment shown in
The stabilizer 30 is securely positioned and attached within the chassis 22 between the first connecting beam 142 and the second connecting beam 144. The stabilizer 30 is positioned such that the pair of stabilizing actuators 38 and the pair of outriggers 32 extend diagonally downward with respect to the chassis 22.
The power system 40 is at least partially positioned on the power system support 16, and the remainder of the power system 40 is supported by the frame 10. The power system 40 is connected to the drive wheels 18 using a known transmission (not shown) and a hydraulic motor (not shown). Likewise, the power system 40 is also connected to the steerable wheels 20 and the stabilizer 30.
The control system 50, as shown in
The extension device 70, as shown in
The trailing end of the second base extension section 74 is secured to the trailing end of the frame 10. The pair of second lower supports 742 are positioned within the pair of second support arm receiving spaces 124-1, such that the first fastener receiving through-holes 742-1 align with the second fastener receiving through-holes 124-2. A fastener, such as a locking pin, is positioned through the first fastener receiving through-holes 742-1 and the second fastener receiving through-holes 124-2. The fastener is then secured and the second lower supports 742 are rotatably mounted to the frame 10. One skilled in the art should appreciate that other fasteners could be used, including, nuts and bolts, screws, and pins.
Furthermore, the lifting actuator 748 also secures the second base extension section 74 to the frame 10, as shown in
As shown in
As also shown in
A trailing end of the intermediate extension section 76 is secured to a trailing end of the storage bin platform section 78, as shown in
Furthermore, the tilting actuator 786 also secures the intermediate extension section 76 to the storage bin platform section 78. In particular, the fastener section 786-2 at one end of the tilting actuator 786 is secured to the tilting actuator bracket 784-1, while the intermediate frame bracket 786-3 at the opposite end of the tilting actuator 786 fixedly receives the second intermediate cross member 766. The tilting actuator 786 is connected to the power system 40 using hoses and the hydraulic motor (not shown). The tilting actuator 786 is also connected to the control system 50.
As shown in
Now, with reference to
Building materials can be loaded and secured in the storage bin 60 at a location different than the work site. When the mobile storage device 1 is in a lowered position shown in
As shown in
Once the operator has determined that the mobile storage device 1 is in position to, for example, unload building materials from the storage bin 60, the user can control the stabilizers 30 using the control system 50 to extend the stabilizers 30 to support and level the mobile storage device 1. The operator then uses the control system 50 to control the extension device 70 and position of the storage bin 60.
When the user has finished using the extended storage bin 60, the user may implement the control system 50 to tilt and lower the storage bin 60, and raise the stabilizers 30. The user may then again re-locate the mobile storage device 1 using the control system 50.
Additionally, in the embodiment shown in
The foregoing illustrates some of the possibilities for practicing the invention. Many other embodiments and fields of use for the mobile storage device 1 are possible and within the scope and spirit of the invention. It is therefore intended that the foregoing description be regarded as illustrative rather than limiting.
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Number | Date | Country | |
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20180043811 A1 | Feb 2018 | US |