Torsional spring tensioning system for a power transmission chain
10774904 ยท 2020-09-15
Inventors
- Hasanen Mohammed Hussen (Baghdad, IQ)
- Mahmoud A. Mashkour (Baghdad, IQ)
- Salman H. Omran (Baghdad, IQ)
- Laith Jaafer Habeeb (Baghdad, IQ)
- Nabeh Natik Alderoubi (Lincoln, NE, US)
Cpc classification
F16H2007/185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2238/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2236/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0842
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A torsional spring tensioning system for a power transmission chain is disclosed. In embodiments, the torsional spring tensioning system includes at least one torsion spring coupled to a pair of links (e.g., an inner link and an outer link) of the power transmission chain. The torsional spring includes a first spring leg and a second spring leg flexibly coupled by at least one winding. The winding is coupled to a pivot that connects the inner and outer links together. Meanwhile, the first spring leg is coupled to the inner link, and the second spring leg is coupled to the outer link. As a result of this configuration, the torsional spring biases the inner link toward the outer link, or vice versa, to produce/maintain tension in the power transmission chain.
Claims
1. A torsional spring tensioning system for a power transmission chain, comprising: an outer link of the power transmission chain; an inner link of the power transmission chain; a pivot connecting the inner link to the outer link; and a torsional spring including a first spring leg and a second spring leg flexibly coupled by at least one winding, wherein the at least one winding is coupled to the pivot, the first spring leg is coupled to the inner link, and the second spring leg is coupled to the outer link.
2. The torsional spring tensioning system of claim 1, wherein the first spring leg, the second spring leg, and the at least one winding are part of a common structure.
3. The torsional spring tensioning system of claim 1, wherein the torsional spring is formed from a metal or a metal alloy.
4. The torsional spring tensioning system of claim 1, wherein the inner link includes a first connection point configured to receive a first end portion of the first spring leg, and the outer link includes a second connection point configured to receive a second end portion of the second spring leg.
5. The torsional spring tensioning system of claim 4, wherein the first connection point is located at or past a midpoint of the inner link, and the second connection point is located at or past a midpoint of the outer link.
6. The torsional spring tensioning system of claim 4, wherein the first and second connection points comprise notches, slots, indentations, projections, openings, or holes on the inner and outer links.
7. The torsional spring tensioning system of claim 4, wherein the first spring leg includes at least one bend between the at least one winding and the first end portion based on surface height or depth differences between the pivot and the first connection point on the inner link.
8. The torsional spring tensioning system of claim 4, wherein the second spring leg includes at least one bend between the at least one winding and the second end portion based on surface height or depth differences between the pivot and the second connection point on the outer link.
9. The torsional spring tensioning system of claim 1, wherein the pivot comprises a pin configured to hold the inner link, the outer link, and the torsional spring together, wherein the pin is configured to extend through the at least one winding of the torsional spring.
10. The torsional spring tensioning system of claim 1, further comprising: a second torsional spring coupled to the inner and outer links, wherein the torsional spring and the second torsional spring are disposed on opposite sides of the power transmission chain.
11. A power transmission chain, comprising: a plurality of links pivotally coupled to one another; and a torsional spring tensioning system for the plurality of links, the torsional spring tensioning system including a plurality of torsion springs, wherein each of the torsion springs includes a first spring leg and a second spring leg flexibly coupled by at least one winding, wherein the at least one winding is coupled to a pivot that connects a pair of links, the first spring leg is coupled to an inner link of the pair of links, and the second spring leg is coupled to an outer link of the pair of links.
12. The power transmission chain of claim 11, wherein the first spring leg, the second spring leg, and the at least one winding are part of a common structure.
13. The power transmission chain of claim 11, wherein each of the torsional springs is formed from a metal or a metal alloy.
14. The power transmission chain of claim 11, wherein the inner link includes a first connection point configured to receive a first end portion of the first spring leg, and the outer link includes a second connection point configured to receive a second end portion of the second spring leg.
15. The power transmission chain of claim 14, wherein the first connection point is located at or past a midpoint of the inner link, and the second connection point is located at or past a midpoint of the outer link.
16. The power transmission chain of claim 14, wherein the first and second connection points comprise notches, slots, indentations, projections, openings, or holes on the inner and outer links.
17. The power transmission chain of claim 14, wherein the first spring leg includes at least one bend between the at least one winding and the first end portion based on surface height or depth differences between the pivot and the first connection point on the inner link.
18. The power transmission chain of claim 14, wherein the second spring leg includes at least one bend between the at least one winding and the second end portion based on surface height or depth differences between the pivot and the second connection point on the outer link.
19. The power transmission chain of claim 11, wherein the torsional springs are disposed at every other pivot or less frequently along the power transmission chain.
20. The power transmission chain of claim 11, wherein the plurality of torsional springs includes a first plurality of torsional springs and a second plurality of torsional springs disposed on opposite sides of the power transmission chain.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The detailed description is described with reference to the accompanying figures. The use of the same reference numbers in different instances in the description and the figures may indicate similar or identical items. Various embodiments or examples (examples) of the present disclosure are disclosed in the following detailed description and the accompanying drawings. The drawings are not necessarily to scale. In general, operations of disclosed processes may be performed in an arbitrary order, unless otherwise provided in the claims.
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DETAILED DESCRIPTION
(8) Reference will now be made in detail to the subject matter disclosed, which is illustrated in the accompanying drawings. Referring generally to
(9) As noted above, many tensioning devices are externally attached to a power transmission chain system to keep it in working condition. This requires the addition of external add-on devices that tend to increase size and complexity of the system. To avoid increased size and complexity of a power transmission chain system, there is a need for tensioning systems that can be integrated within the power transmission chain itself, rather than requiring the addition of external add-on devices.
(10) The torsional spring tensioning system described in this disclosure is integrated within the power transmission chain itself and can therefore be implemented without increasing the size or complexity of a power transmission chain system. In addition to its reduced footprint, some advantages of the torsional spring tensioning system include, but are not limited to, its simplicity, low manufacturing cost, low maintenance cost, and ease of installation and replacement.
(11) In embodiments, the torsional spring tensioning system includes one or more torsional springs (e.g., pivot arm torsional springs) integrated within the power transmission chain. For example, a torsional spring may be pivoted at a pin that connects a successive pair of links. The spring legs (i.e., the free ends) of the torsional spring may be mounted to links themselves. As a result, the torsional spring biases the links toward each other to some degree, thus maintaining tension in the power transmission chain. The number of torsional springs and their physical characteristics (e.g., size, nominal angle, strength, flexibility, etc.) can be adjusted to achieve the required tension.
(12)
(13) As shown in
(14) Referring again to
(15) The spring legs 204 (i.e., the free ends) of the torsional spring 200 are connected to the links 102 themselves. For example, in the embodiment illustrated in
(16) In embodiments, the links 102 include connection points 108 (e.g., notches, slots, indentations, projections, openings, holes, or the like) configured to receive end portions (e.g., distal ends) of the spring legs 204. For example,
(17) As shown in
(18) In some embodiments, the spring legs 204 include bends based on the surface profiles of the links 102. For example, the first spring leg 204A may include at least one bend between the winding 202 and an end portion of the first spring leg 204A, where the bend (or bends) are based on surface height or depth differences between the pivot 106 and the first connection point 108A on the inner link 102A. Similarly, the second spring leg 204B may include at least one bend between the winding 202 and an end portion of the second spring leg 204B, where the bend (or bends) are based on surface height or depth differences between the pivot 106 and the second connection point 108B on the inner link 102B.
(19) As shown in
(20) Furthermore, to add stability, torsional springs 200 may be disposed on both sides of the power transmission chain 100. For example, in the embodiment illustrated in
(21) Various embodiments of a power transmission chain 100 that includes a torsional spring tensioning system have been described with reference to
(22) Although the technology has been described with reference to the embodiments illustrated in the attached drawing figures, equivalents may be employed and substitutions made herein without departing from the scope of the technology as recited in the claims. Components illustrated and described herein are merely examples of a device and components that may be used to implement the embodiments of the present invention and may be replaced with other devices and components without departing from the scope of the invention. Furthermore, any dimensions, degrees, and/or numerical ranges provided herein are to be understood as non-limiting examples unless otherwise specified in the claims.