BICYCLE WORKSTATION
20200353611 ยท 2020-11-12
Inventors
Cpc classification
B62H3/00
PERFORMING OPERATIONS; TRANSPORTING
A63B21/1636
HUMAN NECESSITIES
B62H3/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A bicycle workstation that is removably suspended in a doorway when in use includes several elongate members that collectively provide at least three contact surfaces, and an additional elongate member that, in the illustrative embodiment, couples to a clamp suitable for clamping to a part of a bicycle. The contact surfaces are arranged such that the weight of the bicycle forces them against a wall, door frame, and moulding on both sides of the doorway, thereby securely suspending the bicycle workstation, and the bicycle clamped to it.
Claims
1. A bicycle workstation, comprising: a plurality of elongate members, wherein: (a) at least some of a first group of the elongate members in the plurality are configurable, collectively, and when in use, to abut surfaces that are proximal to a doorway at a total of at least three locations on two wall-sides thereof, thereby collectively providing at least three contact surfaces of the bicycle workstation; and (b) one elongate member of the plurality not included in the first group, wherein the one elongate member is physically adapted to couple to or otherwise support a bicycle, wherein, when the bicycle workstation is in use supporting the bicycle, the weight of the bicycle forces the contact surfaces against the surfaces proximal to the doorway, thereby securely suspending the bicycle workstation proximal to the doorway above an underlying surface.
2. The bicycle workstation of claim 1 comprising a coupler, wherein the coupler facilitates two configurations of the bicycle workstation: an operational configuration providing a first arrangement of the elongate members and a stow configuration providing a second arrangement of the elongate members, wherein, when the bicycle workstation is proximal to the doorway, the first arrangement orients the elongate members such that: (a) a first contact surface of the at least three contact surfaces is positioned above a door frame or moulding to rest thereon, on a first one of the two wall-sides of the doorway; (b) a second contact surface and third contact surface of the at least three contact surfaces are positioned on a second one of the two wall-sides of the doorway and against surfaces proximal to respective right and left sides of the doorway; and (c) the elongate member not included in the first group extends away from the doorway.
3. The bicycle workstation of claim 2 wherein the elongate members are removably coupled to the coupler.
4. The bicycle workstation of claim 2 wherein the coupler comprises a first plurality of openings for receiving the elongate members.
5. The bicycle workstation of claim 4 wherein the first plurality openings includes a first group thereof, each opening in the first group thereof having an orientation, the orientations collectively defining the first arrangement of the elongate members, and, thereby, the operational configuration.
6. The bicycle workstation of claim 5 wherein the first plurality of openings includes a second group thereof, each opening in the second group thereof having an orientation, the orientations collectively defining the second arrangement of the elongate members, and, thereby, the stow configuration, wherein the elongate members are oriented substantially parallel to one another.
7. The bicycle workstation of claim 5 wherein the coupler includes a second plurality of openings, wherein the second plurality of openings receives pins for locking the elongate members in the first plurality of openings.
8. The bicycle workstation of claim 7 wherein the second plurality of openings comprise countersunk holes.
9. The bicycle workstation of claim 2 wherein the elongate members are non-removably coupled to the coupler.
10. The bicycle workstation of claim 9 wherein the elongate members are rotationally coupled to the coupler.
11. The bicycle workstation of claim 2 wherein for each elongate member that provides one of the at least three contact surfaces, an orientation of each such elongate member differs by ninety degrees between the first arrangement and the second arrangement.
12. The bicycle workstation of claim 2 wherein, in the operational configuration: a second elongate member that provides the second contact surface and a third elongate member that provides the third contact surface are co-linear with respect to one another; and a first elongate member that provides the first contact surface includes a portion that is orthogonal to the second and third elongate members.
13. The bicycle workstation of claim 11 wherein the second and third elongate members and the portion of the first elongate member are co-planar within a first plane.
14. The bicycle workstation of claim 13 wherein the elongate member not included in the first group is not co-planar with the first plane.
15. The bicycle workstation of claim 14 wherein the elongate member not included in the first group and the second and third elongate members are co-planar within a second plane.
16. The bicycle workstation of claim 15 wherein the first plane and the second plane are orthogonal to one another.
17. The bicycle workstation of claim 1 wherein the elongate member not included in the first group couples, at a free-end thereof, to a clamp that is dimensioned and arranged to clamp to any of a seat post, seat tube, or top tube of the bicycle.
18. A bicycle workstation, comprising: a plurality of elongate members extending from a coupler; the coupler, wherein the coupler is physically configured to orient the elongate members in a first arrangement in which: a first one of the elongate members and a second one of the elongate members are collinear with respect to one another and extend in opposite directions from the coupler; a third one of the elongate members couples to a device that is suitable for coupling to a bicycle, wherein the third elongate member extends from the coupler in a direction that is orthogonal to that of the first and second elongate members; a fourth one of the elongate members extends from the coupler in a direction that is orthogonal to that of the first and second elongate members, and orthogonal to that of third elongate member.
19. The bicycle workstation of claim 18 wherein the coupler is physically configured to orient the elongate members in a second arrangement in which each of the first, second, third, and fourth elongate members extend from the coupler and are mutually parallel.
20. The bicycle workstation of claim 19 wherein the coupler comprises a first plurality of openings dimensioned to receive the plurality of elongate members, wherein the elongate members removably couple to the coupler in the openings.
21. The bicycle workstation of claim 20 wherein there are a greater number of openings in the first plurality thereof than there are elongate members.
22. The bicycle workstation of claim 21 wherein the first plurality of openings comprises a first group and a second group, wherein when the plurality of elongate members are received by openings: (a) in the first group, the elongate members are oriented in the first arrangement; (b) in the second group, the elongate members are oriented in the second arrangement.
23. The bicycle workstation of claim 19 wherein the elongate members are rotatably coupled to the coupler, and wherein the coupler is configured so that each of the first, second, and fourth elongate members are rotated ninety degrees between the first arrangement and the second arrangement.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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[0054] As described in further detail in conjunction with
[0055] A few specific embodiments of bicycle workstation 100 are depicted in the accompanying drawings and described in this disclosure. It is within the capabilities of those skilled in the art, based on this disclosure, to design and build embodiments of bicycle workstation 100 that are not presented herein but are otherwise consistent with the principles of the invention.
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[0057] Coupler 202, which is one specific embodiment of coupler 102 of
[0058] In coupler 202, certain of the openings are used to position the elongate members for operational use of bicycle workstation 100, whereas some other of the openings position the elongate members for stowage. In particular, and with reference to
[0059] In some other embodiments, the coupler has a form factor similar to that of coupler 202, but it does not include openings for storing elongate members 101 when bicycle workstation 100 is not in use. In some such embodiments, the elongate members are simply removed from the coupler for storing the bicycle workstation.
[0060] In some further embodiments, the coupler has a form factor similar to that of coupler 202, but elongate members 101 are permanently attached to it; in such embodiments, additional openings for storing the elongate members are not required. For such embodiments, bicycle workstation 100 has only a single configuration or statethe operational configuration. In some embodiments of a non-reconfigurable bicycle workstation in accordance with the present teachings, a coupler, as a discrete element, is not required. Rather, the elongate members can be attached directly to one another, or, as appropriate, two or more of the elongate members can be formed as a unitary whole; in other words, two (or more) members can be replaced by a single, appropriately shaped member.
[0061] With continuing reference to
[0062] In some other embodiments not depicted herein, the physical adaptation is u- shaped grabber comprising a resilient material that deforms to receive and hold any shape/size seat post or bicycle-frame tube (e.g., seat tube, top tube, etc.). In some other embodiments, the physical adaptation is a double pronged receiver that receives the rails of the bicycle's saddle in a gap between the two prongs. In some embodiments, the bicycle's saddle simply rests near the free-end of the elongate member. In conjunction with the present disclosure, it is within the capabilities of those skilled in the art to specify or design a means by which bicycle support-tube 208 can couple to a part of a bicycle to facilitate suspending the bicycle via bicycle workstation 100.
[0063] Returning to the discussion of the embodiment depicted in
[0064] Upright tube 214 is received by upper opening 432 in coupler 202. S tube 216 couples to the free end of upright tube 214. In the illustrative embodiment, an end of s-tube 216 has reduced-diameter region 422 (
[0065] Referring again to
[0066] The surface of region 424 that faces grip bar 218 has a contour suitable for abutment with the grip bar. For example, in the illustrative embodiment, the surface of grip bar 218 is flat and vertical at the location at which it couples to region 424 of s-tube 216. Consequently, the surface of region 424 that is intended to abut the grip bar should be flat and vertical, etc. In some embodiments, grip bar 218 includes holes 418A and 418B (the latter is obscured in
[0067] It is notable that, in the illustrative embodiment, the horizontal cross section of region 424 is smaller than that of the adjacent portion of s-tube 216, resulting in lip 426. The lip aids in supporting grip bar 218 and prevents it from rotating about the threaded member (not depicted) that couples s-tube 216 to grip bar 218 if the threaded member were to loosen.
[0068] To facilitate rapid assembly and disassembly, in the illustrative embodiment, cross tubes 210A and 210B, and upright tube 214 fasten to coupler 202 via spring-loaded pins that pass through respective holes in coupler 202. In particular, cross tube 210A includes spring-loaded pin 410A, which is received by hole 436A of the coupler. Cross tube 210B includes spring-loaded pin 410B, which is received by hole 436B of coupler 202. And upright tube 214 includes spring-loaded pin 414A, which is received by hole 436C of the coupler.
[0069] Upright tube 214 and s-tube 216 can be fastened in the same manner; that is, spring-loaded pin 416A of reduced-diameter region 422 of s-tube 216 is received by hole 414B in upright tube 214. In some other embodiments, other types of fasteners, such as pull pins (non-spring loaded), bolts, etc., are used to couple the various tubes to coupler 202 and to couple upright tube 214 and s-tube 216.
[0070] As discussed further below, in some embodiments, bicycle support-tube 208 does not include a spring-loaded pin or other fastener for attachment to coupler 202. Bicycle support-tube 208 remains tight to coupler 202 via the action of fastener 206, which couples via a rod (not depicted) to clamp 204 that passes through the bicycle support-tube.
[0071] Moreover, it is notable that in operation (i.e., when supporting the weight of the bicycle), the relatively tight tolerance between the outer diameter of the tubes and the diameter of the openings in coupler 202 is such that the tubes will remain securely in place without the use of fasteners. At a minimum, the fasteners assist in keeping the tubes in place in coupler 202 when workstation 100 is not loaded by the weight of a bicycle.
[0072] In yet some further embodiments, openings 428, 430A and 430B, 432, and optionally, 434A, 434B, and 434C are internally threaded and at least one end of tubes 208, 210A, 210B, and 214 are externally threaded. In such embodiments, the tubes couple to coupler 202 via threaded engagement. It will be appreciated that, in embodiments in which the tubes and coupler 202 couple via threaded engagement, holes 436A through 436C are not required.
[0073] As seen for example in
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[0075] With continuing reference to
[0076] Another adaptation that facilitates the use of spring-loaded pins is that the wall thickness of coupler 202 is relatively uniform and there are no sharp transitions on the interior surfaces thereof. Consequently, once a pin is depressed and moving along an interior surface of the coupler, it will not expand until it exits therefrom. Or if it does expand, it will not encounter any sharp transitions after such expansion that would prevent continued movement. This prevents the spring-loaded pins from getting stuck within coupler 202 during insertion or removal operations.
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[0079] Curved pad 648 is adjacent to camming surface 646. As lever 644 is rotated (towards the vertical in
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[0081] Clamp 204 includes female portion 760, male portion 766, and actuator 774. The male and female portions of clamp 204 are coupled to one another at a spring-loaded hinge (not depicted) that permits the male portion to partially rotate towards or away from the female portion, thereby engaging or disengaging clamping action. Actuator 774 causes such partial rotation.
[0082] Female portion 760 includes tube-receiving region 762, which in the illustrative embodiment is v shaped. Resilient (e.g., rubber, etc.) padding 764 is disposed on the surface of tube-receiving region 762 to prevent damage to the finish of the clamped tube of a bicycle.
[0083] Male portion 766 includes tube-gripping region 768. Resilient (e.g., rubber, etc.) padding 770 is disposed on the surface of tube-gripping region 768 to prevent damage to the bicycle's tubes. Padding 764 and 770 have a textured surface to improve the clamp's grip on a clamped tube. Male portion 766 also includes camming surface 772.
[0084] Actuator 774 includes lever 776 and integral pedestal 778. The actuator is coupled (e.g., by a threaded member, etc., not depicted) to male portion 766 of clamp 104. Rotating lever 776 in one direction or the other about axis A causes pedestal 778 to raise or lower. As pedestal 778 raises, camming surface 772 rotates in the direction indicated by the arrow (i.e., to the right in
[0085] Long, threaded rod 754 (only a portion of which is shown) couples to the back surface of female portion 760 of clamp 204. As previously noted, rod 754 passes through bicycle support-tube 208 and through opening 542 in coupler 202 to couple to fastener 206.
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[0087] As previously noted, and with the exception of opening 428, one group of openings in coupler 202 are used to position the elongate members in their operational positions, and another group of openings are used for stowage of the elongate members. By virtue of the dimensions/symmetry of coupler 202, the spring-loaded pins that locked the elongate members to coupler 202 when in the operational state align with the requisite openings to lock the members to coupler 202 in the stow state.
[0088] As previously noted, bicycle support-tube 208 is not moved for storage; it remains in opening 428. However, cross tubes 210A and 210B are moved from their operational openings to respective stowage openings 434A and 434B. Upright tube 214 is moved from its operational opening to stowage opening 434C. As depicted in
[0089] Typical dimensions for bicycle workstation 100 and elements thereof are provided below: [0090] Cross tubes 210A/B: Length: 16-18 in.; O.D.: 1 in. [0091] Upright tube 214: Length: 11-13 in.; O.D.: 1 in. [0092] Bicycle support-tube 208: Length: 11-14 in.; O.D.: 1 in. [0093] S-tube 216: Length: 11-13 in.; O.D.: 0.9 in. [0094] Grip bar 218: Length: 9-12 in.; xsect: 1 to 2 in., square [0095] Coupler 202: Length: 3.5-5.5 in.; height: 3-4 in. [0096] All dimensions are approximate and can vary by about +/20 percent. [0097] Lateral offset between wall-facing surface of grip bar 218 and centerline of upright tube 214: 5-6 in. [0098] Vertical offset between centerline of grip bar 218 and centerline of cross tubes 210A/B: 21-23 in. [0099] Lateral extent of installed cross tubes 110A/B: 36-37 in. [0100] The overall dimensions of bicycle workstation 100A in its stow state is about 21 inches in length by about 6 inches across.
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[0102] The primary difference between these embodiments is the design of the coupler. Coupler 902 of bicycle workstation 100B is depicted in isolation in
[0103] In particular, the cross tubes and upright tube are each rotatably coupled, via pins 982, to coupler 902. In the embodiment depicted, tubes 910A, 910B, and 914 are capable of greater than 180 degrees of rotation about pins 982 (i.e., 90+ degrees in the positive direction and 90+ degrees in the negative direction with respect to the operational orientation). Since rotation of those tubes other than to align with bicycle support-tube 908 is not required, rotation in the negative direction (i.e., towards the back of coupler 902) can be prevented in other embodiments in any number of ways. For example, a stop (such as a plate, etc.) can be placed on the back of coupler 902, pins 982 can be designed to prevent negative rotation, etc.
[0104] Thus, to reconfigure bicycle workstation 100B from an operational state to the stow state depicted in
[0105] To maintain cross tubes 910A and 910B and upright tube 914 in their operational position, these tubes each include two spring-loaded pins 986. These pins are received by openings 984 in coupler 902. These pins are simply depressed to release the tubes for rotation. Like coupler 902, openings 984 for receiving the spring-loaded pins can be countersunk to facilitate depressing the pins. Coupler 902 additionally includes support shroud 980, which receives and supports bicycle support-tube 908.
[0106] Like bicycle workstation 100A, the s-tube (not depicted) is removable from upright tube 914 and can be bundled with the other tubes by placing it in the clamp (not depicted) when present, which couples to bicycle support-tube 908.
[0107] In an alternative embodiment of coupler 902coupler 1002 depicted in
[0108] In bicycle workstation 100A, the elongate members were embodied as cylindrical tubes. In bicycle workstation 1008, the elongate members were embodied as square tubes. It is to be understood that elongate members 101 of the various embodiments can have any convenient cross-sectional shape, including circular, oval, square, rectangular, or the like.
[0109] In the illustrative embodiments, all of the elongate members (tubes), as well as couplers 202, 902, and 1002 are made from aluminum, because it is lightweight, possesses high strength, is corrosion resistant, resists attack from most chemicals, is relatively inexpensive, and relatively easy to machine. Other materials that are light and strong, such as other metals, alloys, or fiber-composite materials could alternatively be used, as appropriate. Clamp 204 comprises a lightweight cast alloy.
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[0115] For this disclosure and the appended claims, unless otherwise indicated, all numbers expressing dimensions or weight are to be understood as being modified in all instances by the term about or substantially. In this context, these terms mean a variation of at least +/20%. Accordingly, unless indicated to the contrary, the numerical parameters set forth in the following specification and attached claims are understood to be approximations that may vary depending upon the desired properties to be obtained in ways that will be understood by those skilled in the art.
[0116] Also, it is to be understood that any numerical range recited herein is intended to include all sub-ranges encompassed therein. For example, a range of 1 to 10 is intended to include all sub-ranges between (and including) the recited minimum value of about 1 and the recited maximum value of about 10, that is, having a minimum value equal to or greater than about 1 and a maximum value of equal to or less than about 10.
[0117] For use in this disclosure and the appended claims, the term elongate member means an element in which length is the longest dimension, typically, but not necessarily, by a factor of at least 10, for the major portion thereof. Examples of elongate members include tubes, shafts, rods, sticks, bar, poles, and the like having the aforementioned aspect ratio. Thus, for example, a tube having a length of 11 inches and a diameter of 1 inch is consistent with the definition of elongate member. Moreover, an elongate member can comprise one or more elements. For example, when attached to one another, upright tube 214 and s-tube 216 are considered, collectively, to be an elongate member. Furthermore, when attached to one another, upright tube 214, s-tube 216, and grip bar 218 are considered, collectively, to be an elongate member.
[0118] It is to be understood that the disclosure describes a few embodiments and that many variations of the invention can easily be devised by those skilled in the art after reading this disclosure and that the scope of the present invention is to be determined by the following claims.