Bicycle derailleur
The bicycle derailleur incorporates a compact rotational resistance structure and a one-way clutch to enhance shifting performance by providing controlled rotational resistance, addressing the lack of a compact connection in existing designs.
Patent Information
- Application Number
- DE102014009070
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2013-06-18
- Filing Date
- 2014-06-18
- Publication Date
- 2025-06-12
- Estimated Expiration
- 2034-06-18
AI Technical Summary
Existing bicycle derailleurs lack a compact and efficient connection between the movable member and the chain guide, which affects the rotational resistance and shifting performance.
A bicycle derailleur with a compact rotational resistance structure and a one-way clutch, providing rotational resistance in one direction and allowing free rotation in the other, while maintaining a compact connection between the movable member and the chain guide.
The solution enhances the shifting performance by providing controlled rotational resistance, improving the operational efficiency of the derailleur and the bicycle's overall performance.
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Abstract
Description
background
[0001] This application claims priority to U.S. Patent Application No. 13 / 920,318, filed June 18, 2013. The entire disclosure of U.S. Patent Application No. 13 / 920,318 is hereby incorporated by reference. Field of the invention
[0002] This invention generally relates to a bicycle derailleur. More specifically, the present invention relates to a bicycle derailleur having a chain guide used for shifting a bicycle chain. Background information
[0003] A bicycle typically uses a chain drive transmission to transmit pedal power to a rear wheel. A bicycle's chain drive transmission often uses derailleurs to selectively move a chain from one of a plurality of sprockets to another to change the bicycle's speed. A typical derailleur includes a base link, a movable link supporting a chain guide, and a linkage assembly (e.g., a moving mechanism) coupled between the base link and the movable link so that the chain guide moves laterally relative to the base link.
[0004] DE 34 17 146 A1 shows a bicycle derailleur provided with a base part, a movable part which is axially movable to a multi-stage chain wheel arrangement which is attached to the bicycle, a switching device which has a handlebar part which is actuated to move the movable part in the axial direction of the chain wheel arrangement, a guide mechanism which is carried on the movable part and serves to guide the drive chain onto a chain wheel on the multi-stage chain wheel arrangement, and a spiral spring or helical spring or coil spring which has a first and second end portion.The return spring is mounted on a support shaft provided at a middle portion of the handlebar part in the switching device between the base part and the movable part, supported on the support shaft at its helical portion, and held at its first end portion on the handlebar part and movably engaged at its second end portion with the base part or movable part moving relative to the handlebar part.
[0005] From the document DE 10 2007 040 156 A1 a rear bicycle derailleur is known, essentially comprising a base part configured to be mounted on a bicycle, a movable part movably coupled to the base part via a coupling structure, a chain guide pivotably coupled to the movable part about an axis of a pivot shaft, and an urging element configured to apply a rotational urging force to the chain guide about the axis in a predetermined direction.
[0006] The object of the present invention is to provide an improved bicycle derailleur that enables a compact connection between a movable member of the bicycle derailleur and the chain guide of the bicycle derailleur. This object is achieved according to the appended independent patent claims. Advantageous embodiments can be found in the appended dependent patent claims. Summary
[0007] Essentially, the present disclosure discloses various features of a bicycle derailleur. One feature presented in this disclosure is to provide a bicycle derailleur that includes a compact rotational resistance structure between the movable member and the chain guide for frictionally providing rotational resistance to the chain guide about a rotational axis in one direction. Another feature shown in this disclosure is to provide a bicycle derailleur that includes a compact connection between the movable member and the chain guide.
[0008] In view of the state of the known technology and with reference to one aspect of the present invention, a bicycle derailleur is provided, which essentially comprises a base member, a movable member, a chain guide, a biasing member, a rotational resistance structure, and a one-way clutch. The base member is configured to be attached to a bicycle. The movable member is movably coupled to the base member. The chain guide is pivotally coupled to the movable member for rotation about a rotational axis with respect to the movable member. The biasing member biases the chain guide in a first rotational direction about the rotational axis with respect to the movable member. The rotational resistance structure is operatively disposed between the movable member and the chain guide for frictionally providing rotational resistance to the chain guide about the rotational axis in a second rotational direction.The second rotational direction is opposite to the first rotational direction. The rotational resistance structure applies the rotational resistance to a region located radially outward from the biasing element with respect to the rotational axis.
[0009] Preferably, the bicycle derailleur is configured such that the region of the rotational resistance structure and the preload element overlap as viewed from a radial direction with respect to the rotational axis.
[0010] Preferably, the bicycle derailleur further comprises a one-way clutch operatively arranged between the rotational resistance structure and the chain guide. Furthermore, the one-way clutch rotationally locks the chain guide relative to the first friction section when the one-way clutch is locked, and allows rotational movement of the chain guide relative to the first friction section when the one-way clutch is unlocked.
[0011] Preferably, the bicycle derailleur is designed so that the one-way clutch rotates freely as soon as the chain guide pivots about the axis of rotation in the first direction of rotation.
[0012] Preferably, the bicycle derailleur is designed so that the one-way clutch is arranged radially outward from the base element with respect to the axis of rotation.
[0013] Preferably, the bicycle derailleur is configured such that the preload element includes a torsion spring having a coiled portion extending spirally around the rotation axis, a first end operatively coupled to the chain guide, and a second end operatively coupled to the movable member.
[0014] Preferably, the bicycle derailleur further comprises a shaft fixed to the movable member, and wherein the second end of the torsion spring engages the shaft defining the rotation axis.
[0015] Preferably, the bicycle derailleur further comprises an inner link fixed to the chain guide and receiving the coiled portion of the torsion spring. The first end of the torsion spring engages the inner link.
[0016] Preferably, the bicycle derailleur further comprises an inner link fixed to the chain guide and receiving the coiled portion of the torsion spring. The second end of the torsion spring engages the inner link.
[0017] Preferably, the bicycle derailleur is designed so that the one-way clutch includes the inner link, which is fixed to the chain guide, and at least partially accommodates the preload element.
[0018] Preferably, the bicycle derailleur is configured such that the biasing element comprises a torsion spring having a wound portion extending spirally around the rotational axis and disposed within the inner member, including a first end operatively coupled to the inner member and a second end operatively coupled to the movable member.
[0019] Preferably, the bicycle derailleur is configured such that the rotational resistance structure includes a first friction portion of an outer member of the one-way clutch and a second friction portion of the movable member. The first and second friction portions are in frictional contact.
[0020] In one embodiment, a bicycle derailleur is provided, essentially comprising a base member, a movable member, a chain guide, an inner link, and a preloading member. The base member is configured to be attached to a bicycle. The movable member is movably coupled to the base member. The chain guide is pivotally coupled to the movable member for rotation about a rotational axis with respect to the movable member. The chain guide includes a guide pulley disposed on the rotational axis. The preloading member preloads the chain guide in a first rotational direction about the rotational axis. The preloading member is at least partially disposed within the guide pulley. The one-piece inner link is fixed to the chain guide and configured to rotatably support the guide pulley, wherein the inner link at least partially receives the preloading member.The inner member comprises a tubular inner portion, a tubular outer portion radially spaced from the tubular inner portion, and an end wall non-rotatably connecting the tubular inner portion to the tubular outer portion. The biasing element is provided between the tubular inner portion and the tubular outer portion.
[0021] Preferably, the bicycle derailleur is configured such that the preload element includes a torsion spring having a wound portion extending spirally around the rotation axis, a first end operatively coupled to the chain guide, and a second end operatively coupled to the movable member.
[0022] Preferably, the bicycle derailleur is designed so that the wound portion of the torsion spring is arranged at least partially within the guide roller.
[0023] Preferably, the bicycle derailleur further comprises a shaft fixed to the movable member, and wherein the second end of the torsion spring engages the shaft defining the rotation axis.
[0024] Preferably, the bicycle derailleur further comprises an inner link fixed to the chain guide and pivotally mounted on the shaft to pivot about the rotation axis. The inner link rotatably supports the guide pulley and accommodates the coiled portion of the torsion spring. The second end of the torsion spring engages the inner link.
[0025] Preferably, the bicycle derailleur further comprises a rotational resistance structure. The rotational resistance structure is operatively disposed between the movable member and the chain guide to frictionally provide rotational resistance to the chain guide about the rotational axis in a second rotational direction. The second rotational direction is opposite to the first rotational direction. The rotational resistance structure applies the rotational resistance to a region disposed radially outward from the biasing member with respect to the rotational axis.
[0026] Preferably, the bicycle derailleur is configured such that the region of the rotational resistance structure and the preload element overlap as viewed from a radial direction with respect to the rotational axis.
[0027] Preferably, the bicycle derailleur further comprises a one-way clutch operatively arranged between the rotational resistance structure and the chain guide.
[0028] Preferably, the bicycle derailleur is designed so that the one-way clutch rotates freely as soon as the chain guide pivots about the axis of rotation in the first direction of rotation.
[0029] Preferably, the bicycle derailleur is designed so that the one-way clutch is arranged radially outward from the preloading element with respect to the axis of rotation.
[0030] Preferably, the bicycle derailleur is configured such that the one-way clutch includes an inner link, an outer link, and at least one roller. The at least one roller is arranged between the inner link and the outer link. The inner link is fixed to the chain guide and at least partially accommodates the preload element. The rotational resistance structure includes a first friction portion of the outer link of the one-way clutch and a second friction portion of the movable member. The first and second friction portions are in frictional contact.
[0031] Preferably, the bicycle derailleur is configured such that the biasing element includes a torsion spring having a wound portion extending spirally around the rotational axis and disposed within the inner member, a first end operatively coupled to the inner member, and a second end operatively coupled to the movable member.
[0032] Further objects, features, aspects and advantages of the disclosed bicycle derailleur will become apparent to those skilled in the art from the following detailed description, which, taken in conjunction with the attached drawings, discloses an embodiment of the bicycle derailleur. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Referring now to the accompanying drawings which form a part of this original disclosure: Fig. 1 is a partial side elevational view of a rear frame portion of a bicycle with a rear bicycle derailleur in a top gear position; Fig. 2 is a non-frame facing side elevational view of a movable portion of a rear derailleur illustrated in Fig. 1, illustrated with only an upper section of the chain guide; Fig. 3 is a frame facing side elevation view of the movable illustrated in Fig. 1 and Fig. 2 with only the upper section of the chain guide illustrated; Fig. 4 is a front facing side elevation view of the movable illustrated in the Fig. 1 to 3, with the upper section of the chain guide and the guide roller illustrated in a cross-section; Fig. 5 is a non-frame side elevation view, similar to Fig. 2, the movable part of the rear derailleur, illustrated in the Fig. 1 to 4, with a cover member, a roller holder, a friction spring, and a shaft removed to illustrate a relationship between a biasing element, a one-way clutch, and a rotational resistance structure; and Fig. 6 is a cross-sectional view of the movable part of the rear derailleur illustrated in the Fig. 1 to 5, as along section line 6-6 in Fig. 2 can be seen. Detailed description of the embodiments
[0034] Selected embodiments will now be explained with reference to the drawings. It will be apparent to those skilled in the art from this disclosure that the following descriptions of the embodiments are provided for illustrative purposes only, and not for the purpose of limiting the invention as defined by the appended claims and their equivalents.
[0035] Firstly, referring to Fig. 1, therein is illustrated a rear portion of a bicycle 10 including, among other things, a rear bicycle derailleur 12 according to an illustrated embodiment. The rear bicycle derailleur 12 will hereinafter be referred to simply as "the rear derailleur 12." The rear derailleur 12 is secured to a rear portion of a bicycle frame 14 in a conventional manner as explained below. The rear derailleur 12 shifts a bicycle chain 16 in a lateral direction with respect to the bicycle frame 14 between a plurality of rear sprockets S.
[0036] In particular, the rear derailleur 12 is operated by a switch or shift lever (not shown), which is a shift operating device. The switch operates the rear derailleur 12 between a plurality of shift stages (gear) positions, so that the bicycle chain 16 is moved by the rear derailleur 12 in a lateral direction between a plurality of rear sprockets S. The rear derailleur 12 is in Fig. 1 in a top gear position. As used herein, the term "top gear position" refers to the rear derailleur 12 in an operating position corresponding to the chain 16 being routed to the rear sprocket S with the smallest number of teeth. As used herein, the term "low gear position" refers to the rear derailleur 12 in an operating position corresponding to the chain 16 being routed to the rear sprocket S with the largest number of teeth.
[0037] Still referring to Fig. 1, the bicycle derailleur 12 essentially includes a base member 18, a movable member 20, and a chain guide 22. The base member 18 is configured to be attached to the bicycle 10. For example, in the illustrated embodiment, a fixing bolt 26 is used to attach the base member 18 to the bicycle frame 14. The movable member 20 is movably coupled to the base member 18. For example, in the illustrated embodiment, a linkage 28 is used to movably couple the movable member 20 to the base member 18. Here, in the illustrated embodiment, the linkage 28 includes a first or inner connector 30 and a second or outer connector 32. The connectors 30 and 32 are pivotally connected to the base member 18 and the movable member 20 to define a four-linkage linkage arrangement.
[0038] Here, in the illustrated embodiment, the base member 18 includes an electric motor unit 34, as in Fig. 1. Thus, in the illustrated embodiment, the rear derailleur 12 represents an electric or motorized rear derailleur. However, the rear derailleur 12 may be configured as a cable-operated bicycle derailleur as needed and / or desired.
[0039] In the illustrated embodiment, the base member 18 includes a first yoke member 36 and a second yoke member 38. The first and second yoke members 36 and 38 are preferably constructed of a hard, rigid material such as lightweight metal (e.g., an aluminum alloy). The second yoke member 38 is coupled to the first yoke member 36 by means of a fastener 40 (e.g., a bolt). Preferably, the first member 36 and the second member 38 are pivotally coupled together by the fastener 40 about a pivot axis B defined by the central longitudinal axis of the fastener 40. The pivot axis B is sometimes referred to as the B-axis of the rear derailleur.While the base member 18 is attached to the rear portion of a bicycle frame 14 using the first bracket member 36, it will be appreciated from this disclosure that the second bracket member 38 may be directly attached to the rear portion of the bicycle frame 14 using the fixing bolt 26 or other fixing means. The second bracket member 38 further includes a pair of gear adjustment screws for adjusting a range of motion of the movable member 20 with respect to the base member 18.
[0040] How best in Fig. 1, the chain guide 22 essentially includes an outer chain cage plate 42a, an inner chain cage plate 42b, a tension roller 44, and a guide roller 46. The rollers 44 and 46 are both rotatably disposed between the chain cage plates 42a and 42b. The chain guide 22 is pivotally coupled to the movable member 20 for rotation about a pivot axis P with respect to the movable member 20. The pivot axis P is sometimes referred to as the P-axis of the rear derailleur. In the illustrated embodiment, the guide roller 46 is rotatably disposed about the pivot axis P.
[0041] As in the Fig. 2 to 6, the bicycle derailleur 12 further comprises a preloading element 50. The preloading element 50 is operatively provided between the movable member 20 and the chain guide 22 to preload the chain guide 22 with respect to the movable member 20. More specifically, the preloading element 50 preloads the chain guide 22 in a first rotational direction D1 about the rotational axis P with respect to the movable member 20. Consequently, as shown in Fig. 2, the first rotational direction D1 is a clockwise rotational direction of the chain guide 22 about the rotational axis P, viewed along the rotational axis P from the non-frame-facing side of the movable member 20. In the illustrated embodiment, the biasing element 50 preferably includes a torsion spring having a coiled portion 50a, a first end 50b, and a second end 50c. The coiled portion 50a extends spirally around the rotational axis P. The biasing element 50 is at least partially disposed within the guide pulley 46. In particular, one end of the coiled portion 50a of the torsion spring is at least partially disposed within the guide pulley 46. The first end 50b is operatively coupled to the chain guide 22, while the second end 50c is operatively coupled to the movable member 20.In this way, the pretensioning element 50 pretensions the chain guide 22 in the first rotational direction D1 around the rotational axis P with respect to the movable member 20.
[0042] As in Fig. 6, the bicycle derailleur 12 further includes a shaft 52 fixed to the movable member 20. Specifically, for example, the shaft 52 is fixed to the movable member 20 by means of a cover member 54. The cover member 54 is preferably screwed into the movable member 20. Specifically, the cover 54 has an external thread 54a, a threaded bore 54b, and a pair of tool engagement portions 54c. The tool engagement portions 54c are disposed at the outer side end for rotating the cover 54. By rotating the cover 54, the external thread 54a of the cover member 54 engages an internal thread 20a of the movable member 20 to secure the cover 54 to the movable member 20. The threaded bore 54b of the cover member 54 receives the shaft 52 to secure the movable member 20 via the cover member 54.In particular, the shaft 52 has an external thread 52a that is screwed into the threaded bore 54b to fix the shaft 52 to the movable member 20 via the cover member 54. In this way, the shaft 52 is attached to the cover member 54 by means of a screw connection. The shaft 52 has a tool engagement portion 52b at the outer end for rotating the shaft 52. The shaft 52 defines the rotation axis P about which the chain guide 22 pivots. Thus, the chain guide 22 is pivotally coupled to the shaft 52 to pivot relative to the movable member 20. Here, the chain guide 22 is pivotally attached to the movable member 20 by means of a pair of bolts 56 and 58, as explained below, or by means of other suitable fastening means.
[0043] As in the Fig. 5 and Fig. 6, the bicycle derailleur 12 further includes a one-way clutch 60. The one-way clutch 60 rotates freely as the chain guide 22 pivots about the rotational axis P in the first rotational direction D1. The one-way clutch 60 is disposed radially outward from the biasing member 50 with respect to the rotational axis P. Essentially, the one-way clutch 60 includes an inner member 62, an outer member 64, and at least one roller 66. Preferably, the one-way clutch 60 is a roller clutch having a plurality of rollers 66 (e.g., four rollers, as shown). The rollers 66 are spaced apart and held in position by a roller retainer 68. The roller retainer 68 holds the rollers 66 in a disengaged position when the shaft 52 is rotated in the first rotational direction D1.The rollers 66 are arranged between the inner link 62 and the outer link 64, so that the inner link 62 moves relative to the outer link 64 as soon as the chain guide 22 pivots about the rotation axis P with respect to the movable link 20.
[0044] As in Fig. 6, the inner link 62 is fixed to the chain guide 22 so that the pivoting movement of the chain guide 22 rotates or folds the inner link 62. Specifically, for example, the bolt 56 firmly fixes the inner link 62 to the chain guide 22, while the bolt 58 passes through a center hole of the bolt 56 and is screwed into the inner end of the shaft 52. The bolt 58 prevents relative axial movement between the inner link 62 and the shaft 52. In this embodiment, the outer chain cage plate 42a is pressed into the outer surface of the inner link 62, and the inner chain cage plate 42b is fixed to the inner end portion of the inner link 62 by means of the bolt 56.
[0045] Preferably, the inner member 62 at least partially receives the biasing element 50. The coiled portion 50a is disposed within the inner member 62. In other words, the inner member 62 receives the coiled portion 50a of the torsion spring. Also, the first end 50b of the biasing element 50 is engaged with the inner member 62. Here, in the illustrated embodiment, the inner member 62 includes a tubular inner portion 62a and a tubular outer portion 62b. The tubular inner portion 62a is connected to the tubular outer portion 62b by an end wall 62c. The tubular inner portion 62a of the inner member 62 is pivotally mounted to the shaft 52 for pivoting about the rotational axis P. The tubular outer portion 62b of the inner member 62 rotatably supports the guide roller 46. A bearing member may be disposed between the inner member 62 and the guide roller 46 as needed and / or desired.
[0046] The first end 50b of the biasing element 50 (i.e., the torsion spring) is coupled to the inner member 62, while the second end 50c of the biasing element 50 (i.e., the torsion spring) engages the shaft 52. More specifically, the first end 50b of the biasing element 50 is disposed in an opening of the end wall 62c of the inner member 62, and the second end 50c of the biasing element 50 is disposed in an opening of an end wall of the shaft 52. While the first end 50b of the biasing element 50 directly engages the inner member 62, it will be appreciated from this disclosure that the first end 50b may be operatively coupled to the inner member 62 via an intermediate member as needed and / or desired. Similarly, while the second end 50c of the biasing member 50 is in direct engagement with the shaft 52, it will be appreciated from this disclosure that the second end 50c may be directly engaged with the movable member 20.In any case, the first end 50b is operatively coupled to the inner member 62 and the second end 50b is operatively coupled to the movable member 20.
[0047] As in Fig. 6, in the illustrated embodiment, the bicycle derailleur 12 further includes a rotational resistance structure 70. The rotational resistance structure 70 is operatively disposed between the movable member 20 and the chain guide 22 to frictionally provide rotational resistance to the chain guide 22 about the rotational axis P in a second rotational direction D2. In other words, the rotational resistance structure 70 applies resistance to the rotational movement of the chain guide 22 in the second rotational direction D2 with respect to the movable member 20. In particular, the rotational resistance structure 70 applies frictional resistance to the rotational movement of the chain guide 22 to apply frictional resistance to the rotation of the one-way clutch 60. As mentioned above, the one-way clutch 60 allows the chain guide 22 to pivot freely about the rotational axis P in the first rotational direction D1, but locks or blocks it when rotating in the second rotational direction D2.The second rotational direction D2 is opposite to the first rotational direction D1, in which the chain guide 22 is biased by the biasing element 50. Thus, in the illustrated embodiment, the one-way clutch 60 is operatively disposed between the rotational resistance structure 70 and the chain guide 22.
[0048] Now, the special structure of the rotary resistance structure 70 will be described with reference to the Fig. 5 and Fig.6. In the illustrated embodiment, the rotational resistance structure 70 includes a first friction portion 72 that is part of the outer member 64 of the one-way clutch 60 and a second friction portion 74 that is part of the movable member 20. The first and second friction portions 72 and 74 are in frictional contact. In the illustrated embodiment, the biasing member 80 is disposed between the cover member 54 of the movable member 20 and an axial end of the outer member 64. The biasing member 80 urges the first friction portion 72 (i.e., the opposite axial side) of the outer member 64 into frictional contact with the second friction portion 74 of the movable member 20. Preferably, as in the illustrated embodiment, the rotational resistance structure 70 is adjustable to vary the rotational resistance between the first and second friction portions 72 and 74.Specifically, the rotational resistance is varied by screwing the cover member 54 into or out of the movable member 20. The second friction portion 74 may be made of resin or other material such as a brake shoe for a brake disc. The biasing element 80 may be formed by a coil spring or a plate spring. The cover 54 may directly contact the outer member 64 without the biasing element 80.
[0049] While the outer member 64 and the first friction portion 72 are formed as a single, unitary member in the illustrated embodiment, it will be appreciated from this disclosure that the first friction portion 72 may be a detached member fixed to the outer member 64. Also, while the friction portion 74 is illustrated as a detached member from the movable member 20, it will be appreciated from this disclosure that the second friction portion 74 may be formed from a surface of the movable member 20. In other words, the second friction portion 74 need not be a detached member fixed to the movable member 20.
[0050] Essentially, the rotational resistance structure 70 applies rotational resistance to a region A located radially outward from the biasing member 50 with respect to the rotational axis P. In one illustrated embodiment, the rotational resistance region A is an annular region located about the rotational axis P. The rotational resistance region A is where the first and second friction portions 72 and 74 are in frictional contact. In the illustrated embodiment, the rotational resistance region A and the biasing member 50 overlap when viewed in a radial direction with respect to the rotational axis P.
[0051] Essentially, the rotational resistance structure 70 increases operating power of the electric motor unit 34 once the electric motor unit 34 moves the movable member 20 toward the low shift position with respect to the base member 18. Since resistance applying elements and one-way clutches are similar to the rotational resistance structure 70 and the one-way clutch 60 as described in US patent application US 2012 / 0 083 371 A1, the rotational resistance structure 70 and the one-way clutch 60 will not be discussed in further detail herein.
[0052] Furthermore, the rotation resistance structure 70 is not limited to the illustrated embodiment. For example, the rotation resistance region A may be provided along the outer peripheral surface of the outer member 64, instead of or in addition to being provided on the axial end side of the outer member 64 as illustrated. Furthermore, when the rotation resistance region A is provided along the outer peripheral surface of the outer member, the outer peripheral surface may be tapered to mate with a corresponding tapered surface formed on the inner surface of the movable member 20. In this way, the rotation resistance can be varied by screwing the cover member 54 into or out of the movable member 20.
[0053] The term "connect" or "connected" as used herein includes embodiments in which one element is directly secured to another element by attaching the element directly to the other element; embodiments in which the element is indirectly secured to the other element by attaching the element to the intermediate link, which in turn is attached to other elements; and embodiments in which one element is integrally formed with another element, i.e., one element is substantially the other element. For example, the magnetized part may be directly secured to the crank arm attachment part, or may be indirectly secured to the crank arm attachment part, or may be indirectly secured to the crank arm attachment part through intermediate links, or may be integrally formed with the crank arm attachment part.This definition applies to terms with similar meaning, for example the terms “fasten”, “fastened”, “connect”, “connected”, “fix”, “fixed”, “glue”, “glued”, “couple”, “coupled” and their derivatives.
[0054] While only selected embodiments have been chosen to illustrate the present invention, it will be apparent to those skilled in the art from this disclosure that various changes and modifications can be made herein without departing from the scope of the invention as defined in the appended claims. For example, the size, shape, location, or orientation of the various components can be changed as desired and / or required. Components shown directly connected to one another may have intermediate structures between them. The functions of one element may be performed by two, and vice versa. The structures and functions of one embodiment may be adapted for another. It is not necessary that all advantages be present in one embodiment.Any feature that differs from the prior art, alone or in combination with other features, should be considered a separate description of applicant's further invention, including the structures and / or functional concepts embodied by such invention. Furthermore, the foregoing descriptions of embodiments according to the present invention are presented for illustration only and not for the purpose of limiting the invention as defined by the appended claims and their equivalents.
Claims
[1] Bicycle derailleur (12) comprising: a base member (18) configured to be attached to a bicycle (10); a movable member (20) movably coupled to the base member (18), a chain guide (22) pivotally coupled to the movable member (20) for rotation about a rotation axis (P) with respect to the movable member (20), the chain guide (22) including a guide roller (46) rotatably mounted on the rotation axis (P); a pretensioning element (50) which pretensions the chain guide (22) in a first rotational direction (D1) about the rotational axis (P), wherein the pretensioning element (50) is arranged at least partially within the guide roller (46); and a one-piece inner link (62) fixed to the chain guide (22) and configured to rotatably support the guide roller (46), wherein the inner link (62) at least partially receives the pretensioning element (50) and the inner link (62) comprises a tubular inner section (62a), a tubular outer section (62b) arranged radially spaced from the tubular inner section (62a), and an end wall (62c) non-rotatably connecting the tubular inner section (62a) to the tubular outer section (62b), wherein the pretensioning element (50) is provided between the tubular inner section (62a) and the tubular outer section (62b). [2] The bicycle derailleur (12) of claim 1, further comprising a rotational resistance structure (70) operatively disposed between the movable member (20) and the chain guide (22) for frictionally providing rotational resistance to the chain guide (22) about the rotational axis (P) in a second rotational direction (D2), the second rotational direction (D2) being opposite to the first rotational direction (D1), and the rotational resistance structure (70) applying the rotational resistance in a region radially outward from the biasing member (50) with respect to the rotational axis (P). [3] Bicycle derailleur (12) comprising: a base member (18) configured to be attached to a bicycle (10); a movable member (20) movably coupled to the base member (18); a chain guide (22) pivotally coupled to the movable member (20) for rotation about an axis of rotation (P) with respect to the movable member (20); a pretensioning element (50) which pretensions the chain guide (22) in a first rotational direction (D1) about the rotational axis (P) with respect to the movable member (20); a rotational resistance structure (70) operatively arranged between the movable member (20) and the chain guide (22) for frictionally providing rotational resistance to the chain guide (22) about the rotational axis (P) in a second rotational direction (D2), the second rotational direction (D2) being opposite to the first rotational direction (D1), and the rotational resistance structure (70) applying the rotational resistance to a region radially outward from the biasing member (50) with respect to the rotational axis (P); and a one-way clutch (60) operatively arranged between the rotational resistance structure (70) and the chain guide (22). [4] Bicycle derailleur (12) according to claim 2 or 3, wherein the portion of the rotational resistance structure (70) and the biasing member (50) overlap when viewed from a radial direction with respect to the rotational axis (P). [5] Bicycle derailleur (12) according to claim 3, wherein the one-way clutch (60) locks the chain guide (22) in a locked state of the one-way clutch (60) with respect to a first friction portion (72) in a rotationally fixed manner and allows the rotational movement of the chain guide (22) with respect to the first friction portion (72) in an unlocked state of the one-way clutch (60). [6] Bicycle derailleur (12) according to claim 5, wherein the one-way clutch (60) rotates freely as soon as the chain guide (22) pivots about the rotation axis (P) in the first rotation direction (D1). [7] Bicycle derailleur (12) according to claim 5 or 6, wherein the one-way clutch (60) is arranged radially outwardly from the biasing element (50) with respect to the axis of rotation (P). [8] Bicycle derailleur (12) according to one of claims 5 to 7, wherein the one-way clutch (60) includes an inner member (62) which is fixed to the chain guide (22) and at least partially receives the preload element (50). [9] Bicycle derailleur (12) according to claim 8, wherein the one-way clutch (60) includes an outer member (64) and at least one roller (66) disposed between the inner member (62) and the outer member (64). [10] The bicycle derailleur (12) of claim 9, wherein the rotational resistance structure (70) includes the first friction portion (72) of the outer member (64) of the one-way clutch (60) and a second friction portion (74) of the movable member (20), the first and second friction portions (72, 74) being in frictional contact. [11] Bicycle derailleur (12) according to one of claims 1 to 10, wherein the biasing element (50) includes a torsion spring having a coiled portion (50a) extending spirally around the rotation axis (P), a first end (50b) operatively coupled to the chain guide (22), and a second end (50c) operatively coupled to the movable member (20). [12] Bicycle derailleur (12) according to claim 11, wherein the wound portion (50a) of the torsion spring is at least partially disposed within a / the guide roller (46). [13] Bicycle derailleur (12) according to claim 11 or 12, further comprising a shaft (52) fixed to the movable member (20), and wherein the second end (50b) of the torsion spring engages the shaft (52) defining the rotation axis (P). [14] Bicycle derailleur (12) according to one of claims 11 to 13, further comprising: an inner link (62) fixed to the chain guide (22) and receiving the wound portion (50a) of the torsion spring, and wherein the first end (50b) of the torsion spring is engaged with the inner link (62). [15] Bicycle derailleur (12) according to claim 14, wherein the inner member (62) is pivotally mounted on a / the shaft (52) to pivot about the rotation axis (P) and / or to rotatably support the guide roller (46).
Citation Information
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