SHOCK ABSORBING FOOT PIECE FOR SMALL APPARATUS
20210078697 ยท 2021-03-18
Inventors
Cpc classification
F16F2224/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C2025/325
PERFORMING OPERATIONS; TRANSPORTING
F16F1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64U10/14
PERFORMING OPERATIONS; TRANSPORTING
F16M7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M2200/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C39/024
PERFORMING OPERATIONS; TRANSPORTING
F16F2226/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B64C25/62
PERFORMING OPERATIONS; TRANSPORTING
F16F1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed herein are shock absorbing foot pieces configured to be attached to an apparatus and to absorb the weight of the attached apparatus and any impact caused by the normal usage of the apparatus. In one or more embodiments, the shock absorbing foot pieces comprise multiple elements including a biasing spring and that are configured as a unitary piece.
Claims
1. A shock absorbing foot piece comprising: a hollow cylindrical body member extending along a longitudinal axis having a top end and a bottom end and enclosing a body member interior space; a top cap element having an outer portion and an inner portion opposite the outer portion, wherein the outer portion is affixed to the top end of the cylindrical body member along the circumference of the cylindrical body member and wherein the top cap extends inwardly from the outer portion to the inner portion and toward the longitudinal axis a distance that is less than the radius of the cylindrical body member, forming a top throughhole; a bottom cap element having an outer portion and an inner portion opposite the outer portion, wherein the outer portion is affixed to the bottom end of the cylindrical body member along the circumference of the cylindrical body member and wherein the bottom cap extends inwardly from the outer portion to the inner portion and toward the longitudinal axis a distance that is less than the radius of the cylindrical body member, forming a bottom throughhole; a biasing spring element located in the body member interior space having a top end and a bottom end; a cylindrical plunging rod having a top end and a bottom end and extending through the top throughhole along the longitudinal axis; and a plunging rod flange affixed to the bottom end of the cylindrical plunging rod and extending approximately orthogonally to the longitudinal axis, wherein the plunging rod flange is dimensioned so as to have a larger diameter than the top throughhole, wherein the plunging rod flange is located between the top cap element and the bottom cap element, wherein the bottom end of the biasing spring element is seated against the bottom cap element and the top end of the biasing spring element is seated against the plunging rod flange, wherein the biasing spring element is normally biased so as to cause the plunging rod flange to abut the top cap element with a biasing force, and wherein the top end of the cylindrical plunging rod comprises an attachment element for attaching the shock absorbing foot piece to an apparatus.
2. The shock absorbing foot piece of claim 1, further comprising a cylindrical collar element having a top end and a bottom end opposite the top end, wherein the bottom end of the cylindrical collar element is affixed to the top cap element along the circumference of the top throughhole.
3. The shock absorbing foot piece of claim 1, wherein the top end of the biasing spring element is affixed to the plunging rod flange and the bottom end of the biasing spring element is affixed to the bottom cap.
4. The shock absorbing foot piece of claim 2, wherein all the elements are configured as a unitary piece.
5. The shock absorbing foot piece of claim 3, wherein the biasing spring element is configured so as to be capable of absorbing the weight of an attached apparatus and the force of any impact with the ground caused by the normal usage of the apparatus by a user.
6. The shock absorbing foot piece of claim 4, wherein the shock absorbing foot piece is manufactured by an additive manufacturing process.
7. The shock absorbing foot piece of claim 5, wherein the shock absorbing foot piece is manufactured by an additive manufacturing process.
8. The shock absorbing foot piece of claim 5, wherein the attached apparatus is a UAV.
9. A UAV having a UAV body, a plurality of armatures, each having a first end attached to the UAV body and a second end opposite the first end, a plurality of leg members, each having a first end attached to an armature and a second end opposite the first end, and a plurality of shock absorbing foot pieces, each foot piece attached to the second end of a leg member, wherein each shock absorbing foot piece comprises: a hollow cylindrical body member extending along a longitudinal axis having a top end and a bottom end and enclosing a body member interior space; a top cap element having an outer portion and an inner portion opposite the outer portion, wherein the outer portion is affixed to the top end of the cylindrical body member along the circumference of the cylindrical body member and wherein the top cap extends inwardly from the outer portion to the inner portion and toward the longitudinal axis a distance that is less than the radius of the cylindrical body member, forming a top throughhole; a bottom cap element having an outer portion and an inner portion opposite the outer portion, wherein the outer portion is affixed to the bottom end of the cylindrical body member along the circumference of the cylindrical body member and wherein the bottom cap extends inwardly from the outer portion to the inner portion and toward the longitudinal axis a distance that is less than the radius of the cylindrical body member, forming a bottom throughhole; a biasing spring element located in the body member interior space having a top end and a bottom end; a cylindrical plunging rod having a top end and a bottom end and extending through the top throughhole along the longitudinal axis; and a plunging rod flange affixed to the bottom end of the cylindrical plunging rod and extending approximately orthogonally to the longitudinal axis, wherein the plunging rod flange is dimensioned so as to have a larger diameter than the top throughhole, wherein the plunging rod flange is located between the top cap element and the bottom cap element, wherein the bottom end of the biasing spring element is seated against the bottom cap element and the top end of the biasing spring element is seated against the plunging rod flange, wherein the biasing spring element is normally biased so as to cause the plunging rod flange to abut the top cap element with a biasing force, and wherein the top end of the cylindrical plunging rod comprises an attachment element for attaching the shock absorbing foot piece to the leg member.
10. The UAV of claim 9, further comprising a cylindrical collar element having a top end and a bottom end opposite the top end, wherein the bottom end of the cylindrical collar element is affixed to the top cap element along the circumference of the top throughhole.
11. The UAV of claim 9, wherein the top end of the biasing spring element is affixed to the plunging rod flange and the bottom end of the biasing spring element is affixed to the bottom cap.
12. The UAV of claim 10, wherein all the elements are configured as a unitary piece.
13. The UAV of claim 12, wherein the biasing spring element is configured so as to be capable of absorbing the weight of the UAV and the force of any impact with the ground caused by the normal usage of the UAV by a user.
14. The UAV of claim 12, wherein the shock absorbing foot piece is manufactured by an additive manufacturing process.
15. The UAV of claim 13, wherein the shock absorbing foot piece is manufactured by an additive manufacturing process.
16. The UAV of claim 15, wherein the shock absorbing foot pieces are each comprised of a nylon resin material and are dimensioned to be from about 4 to about 24 in length.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0004] The present disclosure, in accordance with one or more various embodiments, is described in detail with reference to the following drawings. The drawings are provided for purpose of illustration only and merely depict aspects of typical or example embodiments. These drawings are provided to facilitate the reader's understanding of the disclosure and shall not be considered limiting of the breadth, scope, or applicability of the disclosure.
[0005] The components in the drawing are not necessarily drawn to scale. In the drawings, like reference numerals designate corresponding parts throughout the several views. One of ordinary skill in the art will appreciate that a component may be designed as multiple components or that multiple components may be designed as a single component.
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DETAILED DESCRIPTION
[0014] The novel apparatus of the embodiments described herein allow users to operate certain apparatus, including UAVs (e.g., drones) in a manner that lessens the force of impact with the ground on these apparatuses. In particular, in one or more embodiments described herein, the footers of the present disclosure are configured to attach to landing armatures (e.g., legs) attached to UAVs (e.g., drones) to lessen the impact of landing on the UAVs. In one or more embodiments, the apparatus comprises a boot/footer configured as a unitary/single piece items having a compression spring included in a cover.
[0015] It should be understood that aspects, features or functions that are described in relation to an embodiment are not necessarily limited to the embodiment described, but rather may be applicable to one or more embodiments, unless expressly described otherwise. Also, the description set forth herein is not to be construed as limited to the embodiments shown. Rather, it is appreciated that various modifications may occur to those skilled in the art that, while not specifically set forth herein, are nevertheless within the spirit and scope of the description. When an embodiment is described as exemplary (or similarly) herein, it is to be understood as one non-limiting example embodiment, and does not preclude other embodiments that may not include the limitations described in the exemplary embodiment
[0016] With reference to
[0017] With continuing reference to
[0018] Continuing still with reference to
[0019] In one or more embodiments, cylindrical member 104 is capped (fully or partially) at its distal end (lower end, with reference to
[0020] Referring to
[0021] With reference to
[0022] With reference to
[0023] In one or more non-limiting embodiments, shock absorbing foot 100 is 3D printed as a single, unitary piece using a suitable plastic resin, such as, e.g., a nylon resin.
[0024] With reference to
[0025] With reference to
[0026] The various embodiments described above are provided by way of illustration only and should not be construed to limit the scope of the disclosure. Those skilled in the art will readily recognize various modifications and changes that may be made to the principles described herein without following the example embodiments and applications illustrated and described herein, and without departing from the spirit and scope of the disclosure. We therefore claim as our invention all that comes within the scope of these claims.