Not Applicable
A velodrome racing bicycle is disclosed herein. A velodrome racing event features two 180° circular bends connected by two straight paths. The circular bends are steeply bent. Cyclists ride around the velodrome track in a counterclockwise direction.
Improvements in the sport of velodrome racing are needed.
A track racing bicycle for velodrome racing is disclosed herein. The track racing bicycle may have various features that optimize aerodynamics of the track racing bicycle in the context of velodrome racing. By way of example and not limitation, the track racing bicycle may have one or more of the following features in combination with each other or individually. The track racing bicycle may have a head tube and a down tube. The cross-section of the head tube and/or the down tube may have left and right sides which are asymmetrical with respect to each other. More particularly, the left side of the head tube and/or down tube may be closer to the centerline of the frame of the bicycle. Additionally, a chain ring and sprocket of the track racing bicycle may be disposed on a left side of a frame of the track racing bicycle. The chain ring may also have a shield or fairing which may be smooth and curved and have a dome shape in order to increase aerodynamics of the peddling area. Additionally, the rear chain stays and rear seat stays may closely follow the contour of a rear wheel the track racing bicycle. Additionally, a mechanism for mitigating slip of the rear wheel of the left and right rear dropouts which if slippage did occur would loosen up the chain may be incorporated into the left and right rear dropouts of the track racing bicycle.
More particularly, a velodrome track racing bicycle is disclosed. The bicycle may comprise front and rear wheels; a front fork with the front wheel mounted to the front fork; left and right pedals; a single chain ring mounted to a bottom bracket of a frame, the left and right pedals attached to the chain ring; a single sprocket attached to the rear wheel; a chain attached to the single chain ring and the single sprocket; the frame with the front fork, rear wheel, left pedal and right pedal mounted to the frame. The frame may further comprise at least one of a head tube and down tube of the frame of the bicycle having an asymmetrical transverse horizontal cross-section.
A left side of the at least one of the head tube and down tube may be closer to a forward direction centerline compared to a right side of the at least one of the head tube and down tube. The forward direction centerline may be a plane defined by a rotational axis of the head tube and a lateral plane of symmetry of the rear wheel. The forward direction centerline may be a plane defined by a leading edge and a trailing edge of the at least one of the head tube and the down tube.
At least 50 percent of the left side of the at least one of the head tube and down tube may be closer to the forward direction centerline compared to the right side of the at least one of the head tube and down tube.
In another aspect, a velodrome track racing bicycle is disclosed. The bicycle may comprise front and rear wheels; a front fork with the front wheel mounted to the front fork; left and right pedals; a frame with the front fork, rear wheel, left pedal and right pedal mounted to the frame, the left and right pedals disposed on left and right sides of the frame; a single chain ring disposed on a left side of a bottom bracket; a shield disposed over the chain ring; a single sprocket attached to the rear wheel on a left side of the rear wheel; a bicycle chain disposed on the left side of the frame and mounted to the chain ring and the sprocket.
The shield may be an integrated part with the single chain ring or may be a separate part wherein the single chain ring and the separate part are bolted or screwed together. The shield may have a smooth dome shaped exterior surface on the left side of the shield when the shield is attached to the bicycle.
The frame may further comprise left rear stay and left chain stay. The interior surfaces of the left rear and chain stays may be at a constant distance from a contour of a left side of the rear wheel.
The interior surface of the left rear and chain stays may be at the constant distance from the contour of the left side of the rear wheel for more than 50% of a radius of the rear wheel.
The interior surface of the left rear and chain stays may be at the constant distance from the contour of the left side of the rear wheel for more than 80% of a radius of the rear wheel.
In another aspect, a velodrome track racing bicycle is disclosed. The bicycle may comprise front and rear wheels; a front fork with the front wheel mounted to the front fork; left and right pedals; a single chain ring mounted to a bottom bracket of a frame, the left and right pedals attached to the single chain ring; a single sprocket attached to the rear wheel; a chain attached to the single chain ring and the single sprocket; the frame with the front fork, rear wheel, left pedal and right pedal mounted to the frame. The frame may further comprise left and right rear drop outs attached to at least one of rear chain stays and rear stays, each of the left and right rear drop outs having a slot for receiving an axle of the rear wheel and defining an interior surface and an exterior surface, at least one of the exterior surfaces of the left and right rear drop outs having a positive skew angle with respect to a forward direction of the bicycle.
The other one of the at least one of the exterior surfaces of the left and right rear drop outs may have a positive skew angle with respect to the forward direction of the bicycle. The other one of the at least one of the exterior surfaces of the left and right rear drop outs may be parallel to the forward direction of the bicycle.
The positive skew angle may be between 0.5 degrees and 6 degrees.
The velodrome track racing bicycle may further comprise a washer having a skew angle equal to the positive skew angle of the at least one of the exterior surfaces of the left and right rear drop outs.
The interior and exterior surfaces of the at least one of the left and right rear drop outs may have an enlarging thickness.
These and other features and advantages of the various embodiments disclosed herein will be better understood with respect to the following description and drawings, in which like numbers refer to like parts throughout, and in which:
Referring now to the drawings, a bicycle 10 dedicated for velodrome racing as shown in
Referring now to
Referring now to
More particularly, starting from a leading edge 34 and working backwards to a trailing edge, a position on the left and right profiles 30, 32 by distance X may be located. A distance Y1 and Y2 at position X may be defined as the distance from the forward direction centerline perpendicular to the right and left profiles. Y1 and Y2 are measured at distance X perpendicular from the forward direction centerline 14 to the profiles 30, 32. In this regard, Y2 may always be less than Y1 along the length of the head tube area 12. The entire length of the head tube area 12 need not be configured so that Y2 is always less than Y1. However, it is preferred that at least a mid 50% of the entire length of the head tube area 12 be configured so that Y2 is always less than Y1. Preferably, the mid 50% of the entire length of the head tube area 12 is defined by the front and rear 25% from a midpoint between the leading edge 34 and a trailing edge 36 of the head tube area 12 along the centerline 14.
Referring now to
The left and right profiles may have identical contours except that the left profile is generally closer to the centerline 14 compared to the right profile 32 at any distance X as discussed above. Moreover, the left and right profiles maybe curvilinear in that the profiles 30, 32 do not have any sharp corners that might cause turbulence or increased coefficient of friction or drag.
Referring now to
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Referring now to
Likewise, the left rear stay 42 and the left chain stay 44 may follow the contour of the left side of the rear wheel 26 so that a gap 56 between the interior surface of the left rear and chain stays 42, 44 may be at a generally constant distance 58 for more than 50% of the radius of the rear wheel 26. Preferably, the distance 58 stays generally constant for more than 80% of the radius of the real wheel 26. Moreover, the distances 54, 58 are within ⅛ of an inch to each other.
Since the powertrain is on the left side of the bicycle frame 20, the left rear and chain stays 42, 44 of the rear wheel 26 follow a left side of the rear wheel for as long as possible until it is required to extend outward since the rear sprocket 60 extends out to the left. The rear portions of the right rear and chain stays 46, 48 are asymmetrical with respect to the rear portions of the left rear and chain stays 42, 44 for aerodynamic purposes.
Referring now to
Each of the left and right dropouts 64, 66 are formed from two parts. The first part 70 faces exteriorly, whereas the second part 72 faces interiorly toward the hub 62. The first and second parts 70, 72 slide over one another and are attached to each other either by being co-molded over by the frame 20 or with an adhesive.
Each of the left and right dropouts 64, 66 have bearing surfaces 74, 76 which receive washers 78, 80 that can slide on the bearing surfaces 74, 76. To install the rear wheel on the rear dropouts 64, 66, the axle 82 is placed between the left and right dropouts 64, 66. The left and right dropouts 64, 66 have interior bearing surfaces 84, 86 which receive the opposed ends of the axle 82. With the axle 82 aligned to the slots 68 of the left and right dropouts 64, 66, screws 88, 90 are inserted into an aperture of the washers 78, 80 and threaded onto the opposed ends of the axle 82 as shown in
The first parts 70 of the left and right dropouts 64, 66 are not identical but may be identical. In the first part 70 of the left dropout 64, the bearing surface 74 is flat but has a skewed angle with respect to a forward direction 94. Preferably a skew angle 96 is between 0.5° and 6°, more preferably between 2° to 4°. Most preferably, the skew angle 96 is 3°. In contrast, in the first part 70 of the right dropout 66, the bearing surface 74 is flat and is formed to be parallel with respect to the forward direction 94 of the bicycle 10.
Moreover, the left and right washers 78, 80 are not identical, but may be identical. The left washer 78 has a bottom surface 95 that matches the skew angle 96 of the bearing surface 84 of the left dropout 64. In contrast, the right washer 80 also has a bottom surface 98 which is parallel with respect to the forward direction 94 of the bicycle 10 and does not have a skew angle so as to match the bearing surface 76 of the right dropout 66.
Because of the skew angle 96 in the left dropout, the rear wheel 26, and more particularly a left side of the rear wheel 26 does not slip forward when a significant amount of tension is placed in the chain such as at a standing start of the velodrome racing event. Constant tension is placed in the chain of the bicycle 10 during the racing event so that any vibration that may cause the left side of the axle 82 to slip backwards is prevented. The skew angle or wedging effect prevents any forward slip caused by tension in the chain by applying a forward force applied to the left side of the axle.
The bearing surface 76 of the right rear dropout 66 is parallel to the forward direction 94. Preferably, the bearing surface 74 of the left dropout 64 is at a skewed angle as shown in
In relation to the dropouts 64, 66, the drawings and description provided above explained that the bearing surface 74 of the left dropout 64 is at a skew angle with respect to the forward direction 94 and that the bearing surface 76 of the right dropout 66 is parallel with the forward direction 94. The forward direction 94 represents a line defined by forward movement of the bicycle without any turning to the left or right. The forward direction 94 is parallel with a central plane of the bicycle frame. The central plane of the bicycle frame may be a plane that is defined by a rotational axis of the steering handle bar of the bicycle and the central axis of a seat tube or vertical midplane of the seat of the track racing bicycle. Moreover, the skew angle 96 shown in
The above description is given by way of example, and not limitation. Given the above disclosure, one skilled in the art could devise variations that are within the scope and spirit of the invention disclosed herein, including various ways of configuring the shield over the chain ring. Further, the various features of the embodiments disclosed herein can be used alone, or in varying combinations with each other and are not intended to be limited to the specific combination described herein. Thus, the scope of the claims is not to be limited by the illustrated embodiments.
This application claims the benefit to Provisional Patent Application No. 62/338,293 filed May 18, 2016, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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62338293 | May 2016 | US |