Load-bearing assembly
10543862 ยท 2020-01-28
Inventors
Cpc classification
B62B2206/04
PERFORMING OPERATIONS; TRANSPORTING
B62B2301/044
PERFORMING OPERATIONS; TRANSPORTING
B62B5/06
PERFORMING OPERATIONS; TRANSPORTING
B62B2206/02
PERFORMING OPERATIONS; TRANSPORTING
B62B3/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62B3/04
PERFORMING OPERATIONS; TRANSPORTING
B62B3/02
PERFORMING OPERATIONS; TRANSPORTING
B62B5/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention is generally a load-bearing assembly that may be expanded so as to increase a surface area on which to support different sized loads. The load-bearing assembly may be constructed with multiple T-shaped frames or housings that register with each other forming a unique H-shaped frame design. The two T-shaped housings register with each other in a manner that facilitates the adjustment of the width of the load-bearing assembly. Extensions enclosed within each housing and extendable at terminal ends of each T-shaped housing extend outwardly from their respective terminal ends to adjust a length of the load-bearing assembly. The load-bearing assembly may be constructed of a light, sturdy metal alloy that is lightweight. Applications include moving inventory inside warehouses or moving furniture or appliances from one location to another.
Claims
1. A load-bearing assembly, comprising: a first planar T-shaped housing, including: a first longitudinal rectangular channel below a first longitudinal planar surface; a first set of adjacent planar extensions that slidably register inside the first longitudinal rectangular channel, each of the first set of adjacent planar extensions situated at respective terminal ends of the first longitudinal rectangular channel and configured to adjust a length of the first planar T-shaped housing; and a first lateral rectangular channel below a first lateral planar surface extending perpendicularly from a middle section of the first longitudinal planar surface to form a first planar T-shaped surface; and a second planar T-shaped housing including: a second longitudinal rectangular channel below a second longitudinal planar surface, the second longitudinal planar surface parallel to the first longitudinal planar surface; a second set of adjacent planar extensions that slidably register inside the second longitudinal rectangular channel, each of the second set of adjacent planar extensions situated at respective terminal ends of the second longitudinal rectangular channel and configured to adjust a length of the second planar T-shaped housing; a second lateral planar surface extending perpendicularly from a middle section of the second longitudinal planar surface to form a second planar T-shaped surface, wherein the second lateral planar surface slidably registers within the first lateral rectangular channel of the first planar T-shaped housing for adjusting a width of the load-bearing assembly; and a plurality of wheels rotatably coupled to the first and second T-shaped housings, wherein the plurality of wheels rotatably coupled to the first and second T-shaped housings comprise: a first set of wheels coupled to the terminal ends of each of the first set of adjacent planar extensions; a second set of wheels coupled to the terminal ends of each of the second set of adjacent planar extensions; and a first mid-section wheel positioned below the middle section of the first longitudinal planar surface.
2. The load-bearing assembly of claim 1, wherein the first longitudinal planar surface is flush with the first lateral planar surface.
3. The load-bearing assembly of claim 1, wherein the second longitudinal planar surface is flush with the second lateral planar surface.
4. The load-bearing assembly of claim 1, further comprising: a handle swivably mounted on the first longitudinal planar surface of the first T-shaped housing.
5. The load-bearing assembly of claim 1, wherein the plurality of wheels rotatably coupled to the first and second T-shaped housings include: a second mid-section wheel positioned below the middle portion of the second longitudinal planar surface.
6. The load-bearing assembly of claim 5, wherein the plurality of wheels rotatably coupled to the first and second T-shaped housings include: a third mid-section wheel positioned below a terminal end of the first lateral planar surface, wherein the third mid-section wheel optionally includes a motor for driving the third mid-section wheel.
7. The load-bearing assembly of claim 1, further comprising: a first retention member extending along the first longitudinal planar surface; and a second retention member extending along the second longitudinal planar surface to prevent a load from slipping off the assembly.
8. A load-bearing assembly, comprising: a first planar T-shaped housing having a first planar T-shaped surface, including a first longitudinal rectangular channel below a first longitudinal planar surface that is positioned perpendicular to a first lateral rectangular channel below a first lateral planar surface extending perpendicularly from a middle section of the first longitudinal planar surface; a second planar T-shaped housing having a second planar T-shaped surface that slidably registers within a portion of the first planar T-shaped housing, the second planar T-shaped housing including a second longitudinal rectangular channel below a second longitudinal planar surface, and a second lateral planar surface that extends perpendicularly from a middle section of the second longitudinal planar surface; and a handle swivably mounted on the first longitudinal planar surface of the first T-shaped housing, wherein: the second longitudinal planar surface is parallel to the first longitudinal planar surface; the second lateral planar surface slidably registers within the first lateral rectangular channel of the first planar T-shaped housing for adjusting a width of the load-bearing assembly; the first longitudinal planar surface is flush with the first lateral planar surface to form the first planar T-shaped surface; the second longitudinal planar surface is flush with the second lateral planar surface to form the second planar T-shaped surface that slidably registers within a portion of the first planar T-shaped housing; and a plurality of wheels are rotatably coupled to the first and second T-shaped housings.
9. The load-bearing assembly of claim 8, further comprising: a first set of adjacent planar extensions that slidably register inside the first longitudinal rectangular channel, each of the first set of adjacent planar extensions situated at respective terminal ends of the first longitudinal rectangular channel and configured to adjust a length of the first planar T-shaped housing.
10. The load-bearing assembly of claim 9, further comprising: a second set of adjacent planar extensions that slidably register inside the second longitudinal rectangular channel, each of the second set of adjacent planar extensions situated at respective terminal ends of the second longitudinal rectangular channel and configured to adjust a length of the second planar T-shaped housing.
11. The assembly of claim 10, wherein the plurality of wheels rotatably coupled to the first and second T-shape frames comprise: a first set of wheels coupled to the terminal ends of each of the first set of adjacent extensions; a second set of wheels coupled to the terminal ends of each of the second set of adjacent extensions; a first mid-section wheel positioned at the middle portion of the first longitudinal planar surface; a second mid-section wheel positioned at the middle portion of the second longitudinal planar surface; and a third mid-section wheel positioned at a terminal end of the first lateral planar surface.
12. The load-bearing assembly of claim 8, further comprising: a first retention member extending along the first longitudinal planar surface; and a second retention member extending along the second longitudinal planar surface to prevent a load from slipping off the assembly to prevent a load from slipping off the assembly.
13. The load-bearing assembly of claim 8, further comprising: a motor coupled to at least one of the plurality of wheels rotatably coupled to the first and second T-shaped housings; and a controller coupled to a portion of the handle and in communication with the motor configured to control actuation of the at least one of the plurality of wheels.
14. A load-bearing assembly, comprising: a first planar T-shaped housing having a first planar T-shaped surface, including a first longitudinal rectangular channel below a first longitudinal planar surface that is positioned perpendicular to a first lateral rectangular channel below a first lateral planar surface extending perpendicularly from a middle section of the first longitudinal planar surface; a second planar T-shaped housing having a second planar T-shaped surface that slidably registers within a portion of the first planar T-shaped housing, the second planar T-shaped housing including a second longitudinal rectangular channel below a second longitudinal planar surface, and a second lateral planar surface that extends perpendicularly from a middle section of the second longitudinal planar surface, wherein the first longitudinal planar surface is flush with the first lateral planar surface to form the first planar T-shaped surface and the second longitudinal planar surface is flush with the second lateral planar surface to form the second planar T-shaped surface that slidably registers within a portion of the first planar T-shaped housing; a plurality of wheels are rotatably coupled to the first and second T-shaped housings; and a handle swivably mounted on the first longitudinal planar surface of the first T-shaped housing.
15. The load-bearing assembly of claim 14, further comprising: a motor coupled to at least one of the plurality of wheels rotatably coupled to the first and second T-shaped housings; and a controller coupled to a portion of the handle and in communication with the motor configured to control actuation of the at least one of the plurality of wheels.
16. The load-bearing assembly of claim 14, further comprising: a first set of adjacent planar extensions that slidably register inside the first longitudinal rectangular channel, each of the first set of adjacent planar extensions situated at respective terminal ends of the first longitudinal rectangular channel and configured to adjust a length of the first planar T-shaped housing.
17. The load-bearing assembly of claim 14, further comprising: a second set of adjacent planar extensions that slidably register inside the second longitudinal rectangular channel, each of the second set of adjacent planar extensions situated at respective terminal ends of the second longitudinal rectangular channel and configured to adjust a length of the second planar T-shaped housing.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) Elements in the figures have not necessarily been drawn to scale in order to enhance their clarity and improve understanding of these various elements and embodiments of the present invention. Furthermore, elements that are known to be common and well understood to those in the industry are not depicted in order to provide a clear view of the various embodiments of the invention.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
DESCRIPTION OF THE INVENTION
(12) In the following discussion that addresses a number of embodiments and applications of the present invention, reference is made to the accompanying drawings that form a part thereof, where depictions are made, by way of illustration, of specific embodiments in which the invention may be practiced. It is to be understood that other embodiments may be utilized and changes may be made without departing from the scope of the invention. Wherever possible, the same reference numbers are used in the drawings and the following description to refer to the same or similar elements. While embodiments of the disclosure may be described, modifications, adaptations, and other implementations are possible. For example, substitutions, additions, or modifications may be made to the elements illustrated in the drawings, and the methods described herein may be modified by substituting, reordering, or adding stages to the disclosed methods. Accordingly, the following detailed description does not limit the disclosure.
(13) Generally, the present invention involves a load-bearing assembly that may be expanded so as to increase a surface area on which to support different sized loads. The load-bearing assembly may be constructed with multiple T-shaped frames or housings that register with each other forming a unique H-shape frame design. The two T-shaped frames or housings register with each other in a manner that facilitates the adjustment of the width of the load-bearing assembly. Extensions at terminal ends of each T-shaped housing extend outwardly from their respective terminal ends to adjust a length of the load-bearing assembly. The load-bearing assembly may be constructed of a light, sturdy metal alloy or any other suitable material that is lightweight but strong enough for loads such as large packages, boxes, crates, and or large products such as appliances including but not limited to washers, dryers and the like. Applications include moving inventory inside warehouses or moving furniture or appliances from one location to another.
(14) Turning now to the figures,
(15) As depicted in
(16) Each adjustable housing 101 and 102 typically include flat or planar surfaces in order to easily accommodate a load that may be placed on assembly 100. Loads may comprise furniture, appliancessuch as dryers and washersor any other number of items including boxes, pallets containing packages, or the like. Moreover, in exemplary embodiments, as will be discussed further below, a top surface of each adjustable housing 101 and 102 may include thin walls or retention members 115a and 115b vertically extending from the surface of each frame so as to provide support for loads, which may be further reinforced with similar reinforcements such as supports 134 that are perpendicular to the retention member (see
(17) Accordingly, in some exemplary embodiments, load-bearing assembly 100 may comprise a first planar T-shaped housing 101 having a first planar T-shaped surface, including a first a first longitudinal rectangular channel below a first longitudinal planar surface that is positioned perpendicular to a first lateral rectangular channel below a first lateral planar surface extending perpendicularly from a middle section of the first longitudinal planar surface; a second planar T-shaped housing 102 having a second planar T-shaped surface that slidably registers within a portion of the first planar T-shaped housing 101, the second planar T-shaped housing including a second longitudinal rectangular channel below a second longitudinal planar surface, and a second lateral planar surface that extends perpendicularly from a middle section of the second longitudinal planar surface, wherein the first longitudinal planar surface is flush with the first lateral planar surface to form the first planar T-shaped surface and the second longitudinal planar surface is flush with the second lateral planar surface to form the second planar T-shaped surface that slidably registers within a portion of the first planar T-shaped housing 101; a plurality of wheels 112 are rotatably coupled to the first and second T-shaped housings; and a handle 121 swivably mounted on the first longitudinal planar surface of the first T-shaped housing 101.
(18) In exemplary embodiments, as shown, load-bearing assembly 100, further comprises a set of adjacent planar extensions 103 and 104 that slidably register inside a longitudinal rectangular channel of housing 101, each of the set of adjacent planar extensions 103 and 104 situated at respective terminal ends of the first longitudinal rectangular channel and configured to adjust a length of the first longitudinal planar surface of T-shaped housing 101. Similarly, load-bearing assembly 100, may further comprise a set of adjacent planar extensions 105 and 106 that slidably register inside the second longitudinal rectangular channel of T-shaped hosing 102, each of the set of adjacent planar extensions 105 and 106 situated at respective terminal ends of the second longitudinal rectangular channel of the T-shaped housing 102 and configured to adjust a length of the second longitudinal planar surface T-shaped housing 102.
(19) In some exemplary embodiments, as will be discussed further immediately below, load-bearing assembly 100 may include: a motor coupled to at least one of the plurality of wheels rotatably coupled to the first and second T-shaped housings; and a controller coupled to a portion of the handle and in communication with the motor configured to control actuation of the at least one of the plurality of wheels.
(20)
(21) Turning now to the next figure,
(22) Housing 101 is depicted comprising: a set of adjacent extensions 103 and 104, which are each configured to slidably register inside a longitudinal channel 107a (see
(23) Housings 102 is depicted comprising another set of adjacent extensions 105 and 106 configured to slidably register inside a longitudinal channel 108a (see
(24) Housing 101 and housings 102 are similarly constructed; each housing 101 and 102 includes a longitudinal planar surface (107 and 108, respectively) running along a length of each adjustable frame. Moreover, housing 101 and housings 102 each include a lateral planar surface (109 and 110, respectively) extending from a middle portion of, and perpendicular to, the longitudinal planar surface of each frame. However, because housings 102 is configured to register inside housing 101, their construction differs in various respects as will be detailed below.
(25) In the shown embodiment of
(26) As such, while the longitudinal portions of each frame are similar in construction, the lateral portions differ in that they complement each other so that the two frames may be coupled together or register to form the H-shape frame, which may be appreciated from this top view or the following view illustrated in
(27) Accordingly, in some exemplary embodiments of the present invention, load-bearing assembly 100 may comprise a first planar T-shaped housing 101 having a first planar T-shaped surface (107 and 109 combined), including a first a first longitudinal rectangular channel 107a below a first longitudinal planar surface 107 that is positioned perpendicular to a first lateral rectangular channel 109a below a first lateral planar surface 109 extending perpendicularly from a middle section of the first longitudinal planar surface 107; a second planar T-shaped housing 102 having a second planar T-shaped surface (108 and 110 combined) that slidably registers within a portion of the first planar T-shaped housing 101, the second planar T-shaped housing 102 including a second longitudinal rectangular channel 108a below a second longitudinal planar surface 108, and a second lateral planar surface 110 that extends perpendicularly from a middle section of the second longitudinal planar surface 108; and a handle 121 swivably mounted on the first longitudinal planar surface 107 of the first T-shaped housing 101.
(28) In exemplary embodiments, the second longitudinal planar surface 108 is parallel to the first longitudinal planar surface 107. In exemplary embodiments, the second lateral planar surface 110 slidably registers within the first lateral rectangular channel 109a of the first planar T-shaped housing 101 for adjusting a width W of the load-bearing assembly. In exemplary embodiments, the first longitudinal planar surface 107 is flush with the first lateral planar surface 109 to form the first planar T-shaped surface (107 and 109 combined). In exemplary embodiments, the second longitudinal planar surface 108 is flush with the second lateral planar 110 surface to form the second planar T-shaped surface (108 and 110 combined) that slidably registers within a portion of the first planar T-shaped housing 101. Moreover, in exemplary embodiments generally, a plurality of wheels 112 are rotatably coupled to the first and second T-shaped housings 101 and 102.
(29) Now turning to the next figure,
(30) Channel 107a typically resides below longitudinal planar surface 107, and is configured with two terminal ends at the exterior portions of the adjustable support member or housing 101. At a first terminal end, channel 107a receives extension 103, while at the other terminal end, channel 107a receives extension 104. Channel 107a is typically constructed below longitudinal planar surface 107 by implementing parallel track retaining members 122 and 123 on opposite sides of a bottom surface 124 (i.e. underneath longitudinal planar surface 107).
(31) In addition to channel 107a, housing 101 further includes channel 109a, which resides below lateral planar surface 109 of housing 101 running a width of assembly 100 and perpendicular to channel 107a. In the shown embodiment, channel 109a is a separate cavity from channel 107a. Channel 109a is typically constructed below lateral planar surface 109 by implementing parallel track retaining members 125 and 126 on opposite sides of a bottom surface 127 (i.e. underneath lateral planar surface 109). As mentioned above, channel 109a is configured to receive a portion of housings 102, and more specificallyin the shown embodimentchannel 109a is configured to receive or register with lateral surface 110 of housings 102.
(32) Channel 108a may be similar to channel 107a. For example, in the shown embodiment, channel 108a typically resides below longitudinal planar surface 108, and is also configured with two terminal ends at the exterior portions of the adjustable support member or housings 102. At a first terminal end, channel 108a receives a portion of extension 105, while at the other (or second) terminal end, channel 108a receives a portion of extension 106. Channel 108a is typically constructed below the longitudinal planar surface 108 by implementing parallel track retaining members 128 and 129 on opposite sides of a bottom surface 130 (i.e. underneath longitudinal planar surface 108).
(33) Each housing 101 and 102 typically includes a plurality of wheels at several positions. The plurality of wheels 112 help support heavy loads, especially at a junction between housings 101 and 102 (i.e. terminal end 131 of housing 101). Accordingly, in exemplary embodiments, wheels may be placed at terminal ends of extensions 103, 104, 105, and 106 (as shown), as well as below the surface and at a middle portion of both longitudinal planar surface 107 and longitudinal planar surface 108 (i.e. each wheel 112 positioned below or even within channel 107a and 108a respectively). In some exemplary embodiments, a first set of wheels may be coupled to the terminal ends of each of the first set of adjacent planar extensions and a second set of wheels coupled to the terminal ends of each of the second set of adjacent planar extensions. As mentioned above with reference to
(34) As may further be appreciated from this bottom view of
(35) Accordingly, in some exemplary embodiments, load-bearing assembly 100 may include a first planar T-shaped housing 101, comprising a first longitudinal rectangular channel 107a below a first longitudinal planar surface 107; a first set of adjacent planar extensions 103 and 104 that slidably register inside the first longitudinal rectangular channel 107a, each of the first set of adjacent planar extensions 103 and 104 situated at respective terminal ends of the first longitudinal rectangular channel 107a and configured to adjust a length L of the first longitudinal planar surface 107; and a first lateral rectangular channel 109a below a first lateral planar surface 109 extending perpendicularly from a middle section of the first longitudinal planar surface 107 to form a first planar T-shaped surface (107 and 109 combined); and a second planar T-shaped housing 102 including: a second longitudinal rectangular channel 108a below a second longitudinal planar surface 108, the second longitudinal planar surface 108 parallel to the first longitudinal planar surface 107; a second set of adjacent planar extensions 105 and 106 that slidably register inside the second longitudinal rectangular channel 108a, each of the second set of adjacent planar extensions 105 and 106 situated at respective terminal ends of the second longitudinal rectangular channel 108a and configured to adjust a length L of the second longitudinal planar surface 108; and a second lateral planar surface 110 extending perpendicularly from a middle section of the second longitudinal planar surface 108 to form a second planar T-shaped surface (108 and 110 combined), wherein the second lateral planar surface 110 slidably registers within the first lateral rectangular channel 109a of the first planar T-shaped housing 101 for adjusting a width W of the load-bearing assembly.
(36) Turning now to the next several figures,
(37) Furthermore,
(38) Turning now to
(39) Turning to the last figures,
(40) A load-bearing assembly has been described. The foregoing description of the various exemplary embodiments of the invention has been presented for the purposes of illustration and disclosure. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of the above teaching without departing from the spirit of the invention.