Bicycle wheels usually comprise a peripheral crown or rim, a central hub, and a plurality of spokes that connect the hub to the rim. Rims are generally made up of two side walls connected or jointed at one end by a circumferentially inner wall or lower bridge and at an intermediate point by a circumferentially outer wall or upper bridge. This arrangement gives the rim a substantially upside down A-shaped cross-section. The circumferentially outer portions of the side walls, typically have an outer edge that forms a channel for coupling with a tire, whereas the circumferentially inner portions of the side walls form, together with the lower bridge and the upper bridge, a chamber for the attachment of the spokes.
The spokes are attached to seats in the lower bridge or in the inner side walls. The seats generally consist of openings, smooth holes, or threaded holes depending on the method used for the attachment of the spokes.
Rims are manufactured by extruding aluminum alloy bars. The bar is shaped as a circle typically by calendaring and its top ends are jointed by welding.
In the field of bicycles, especially in the field of racing bicycles, a common goal is to reduce the weight of a wheel, and in particular a rim, without diminishing its structural strength and static and dynamic stability. Other solutions seek simple and less expensive manufacturing processes that produce aesthetically pleasing and original shapes.
In rim design, it is commonly known that the rim is in the most tension in the areas of the spoke attachment zones and this tension progressively decreases moving away from such zones. With the goal of reducing the weight of the rim, rim designs may have a greater thickness where the tensions are greater, i.e. in the spoke attachment zones, and a lower thickness where the tensions are lower, i.e. in the zones between the spoke attachment zones (the “infra-spoke zones”).
Several solutions to this problem have been designed: a first known solution to the problem of rim design is described in U.S. Pat. No. 452,649 to Powell; a second solution in patent application PCT WO93/09963; a third solution in European patent EP 715,001; and a fourth solution in European patent EP 1,084,868.
In particular, PCT WO93/09963 obtains the two different thicknesses of the rim (in the spoke attachment zones and in the infra-spoke zones) starting from a rim having a lower bridge with the desired minimum thickness and thickening the spoke attachment zones with a drawing mechanical process. In European patents EP 715,001 and EP 1,084,868, by contrast, the two thicknesses start from a rim with a thickness of the lower bridge substantially equal to that desired in the spoke attachment zones and then material is removed (by chemical processing in EP 715,001 and by mechanical processing in EP 1,084,868) in the infra-spoke zones of the lower bridge.
In all the known solutions, the variations in thickness between the spoke attachment zones and the infra-spoke zones have a transition zone with a substantially curvilinear progression and different radii of curvature which range from a minimum of a few millimeters in EP 715,001 to a maximum of 100 mm in EP 1,084,868. As explained in EP 1,084,868, the progression of such a transition zone is “required” because the tensions introduced by the spokes in the rim are distributed in the rim itself with gradual progressions and “sudden” variations in thickness would lead to concentrations of tensions in the rim and, therefore, to its breaking generally by fatigue.
Moreover, such a requirement is thought of as common knowledge to people skilled in the art, who know that in order to distribute tensions, it is necessary to provide soft and gradual variations in cross-section in order to avoid point stresses.
A drawback of the known solutions is that the curvilinear progression of the variation in thickness does not allow for as great a removal of material, thus leading to a reduction in the weight of a rim not completely satisfactory. Moreover, such a curvilinear progression also defines the shape that must be given to the variation in thickness.
Contrary to what was previously known, it has been found that tensions of the spokes can be distributed in a rim with sudden variations in thickness and with very small transition zones. This reduces the rim's weight more than in known solutions without adversely impacting the structural strength and static and dynamic stability of the wheel. Moreover, these sudden variations in thickness allow different processing techniques to be used and give a wide freedom of choice on the “form” to be given to such variations in thickness.
A rim for a bicycle wheel formed of an annular profile, the section of which comprises a lower bridge and side walls, the lower bridge or the side walls comprises spoke attachment zones and infra-spoke zones. The spoke attachment zones have a predetermined thickness with seats arranged for the attachment of spokes. The infra-spoke zones have a thickness less than the thickness of the spoke attachment zones and the infra-spoke zones are located between the spoke attachment zones. The spoke attachment zones and the infra-spoke zones are joined by portions of the rim that span the difference in thickness between the spoke attachment zones and the infra-spoke attachment zones and have a sharp progression.
Further characteristics and advantages of the invention shall become clearer from the description of some preferred embodiments, given with reference to the attached drawings, where:
The rim 1 shown in
The rim 1, as is best seen in
The lower bridge 2 or side walls 4, 5 also have spoke attachment zones 9 of constant thickness S2 (enlarged in
During assembly, the hole 7 of the upper bridge 3 allows the introduction of a nut or locking nipple which engages the threaded head of the spokes inserted radially from the center of the rim into the hole 6 of the lower bridge 2. The size of the hole 7, moreover, is large enough to accommodate a tool for screwing the nut or the nipple into the head of the spoke.
The lower bridge 2 or side walls 4, 5 also have, between the spoke attachment zones 9, infra-spoke zones 8 of substantially constant thickness S1 that are preferably about 0.8 mm thick. The decreased thickness of the infra-spoke zones 8, with respect to the thickness of the spoke attachment zones 9, reduces the weight of the rim 1 and therefore of the wheel W. The reduction in thickness does not, however, substantially diminish the structural strength, the static stability, and the dynamic stability of the wheels since the thickness is reduced outside the zones 9 where the tensions are greater. These thinner zones do, however, have a thickness S1 sufficient to ensure adequate structural strength within the rim.
The thicknesses S1 and S2 in the embodiment shown are substantially uniform in their respective zones along the annular extension of the rim, but in different embodiments a variation thereof can be foreseen to alternate the size of some first portions with respect to the rest, and to define surfaces with a slightly concave or convex curvilinear profile. As shown in
The increase in thickness between the infra-spoke zone 8 and the spoke attachment zone 9, better shown in the enlarged detail of
A first rectilinear portion 13 is substantially perpendicular to the inner surface 8a of the infra-spoke zone 8 defined on a radially inner surface of the lower bridge 2, and is thus oriented substantially radially with respect to the rim 1. A second curvilinear portion 12, having a radius of curvature substantially equal to the radium of the lower bridge 2 of the rim 1, intersects the first rectilinear portion 13 forming a substantial right-angle or sharp corner 14. A vertex V of the angle, shown in
Although
Throughout the present application, corner means not only an intersection zone between the second portion 12, 22, 32 and the first portion 13, 23, 33 but an intersection zone having a radius of curvature of about up to 0.4 mm but preferably having a radius of curvature of up to about 0.2 mm.
For the embodiment shown in
With reference to
As shown in
The 60° and 120° angles are only some of the many possible angle values and this angle can be larger or smaller as may be required in a design. Moreover, the sharp corner 64a, 64b has a radius of curvature preferably equal to or less than about 0.4 mm and even more preferably equal to or less than about 0.2 mm.
The progressions 14, 11; 70, 71 and 80, 81 of the variations in thickness can have different shapes from those shown. For example, they may not be symmetrical, or else the curvilinear portions could be elliptical or parabolic or else be formed by any combination of rectilinear and curvilinear portions.
In the examples described, moreover, the variations in thickness with sharp progressions, that is, not gradual along the inner circumference of the rim, and corners extend for the whole width L of the lower bridge 2. In different embodiments, such variations could extend for a part of the width L of the lower bridge 2, although portions thereof could have a curvilinear or rectilinear gradual progression, as shown in
The rim on which the removal is carried out may consist of any material, although due to weight considerations aluminum and its alloys or composite materials consisting of structural fibers incorporated in a matrix of polymeric material, such as carbon fiber are preferred.
The method uses a rotary tool U1 shown enlarged in
In forming the spoke attachment and infra-spoke zones, the rotary milling cutter U1 shown in
As it can be seen in
Through the just described method, variations in thickness are obtained in the lower bridge having the shape shown in
By controlling the advancing depth of the tool along the axis X towards the lower bridge 102 it is possible to manufacture rims with different combinations of thicknesses S1, S2; S3, S4 and S5, S6, as described with reference to
To obtain a different shape of the variations in thickness along the width L of the lower bridge 2, for example like those of
By using a milling cutter U2 with a bevelled frusto-conical cutting head T2 of the type shown in
Similarly,
Variations in thickness like those described for the lower bridge can also be obtained on the side walls of the rim; all that is needed are the tools T1, T2, or T3 be moved on planes perpendicular to such walls.
A second processing method used to manufacture the described rim requires the use of the technique of electron discharge machining. In such a case, starting from a rim 100 of the type described and shown in
Other methods can be used to obtain the described geometries taking into account the technology and the material used to manufacture the rim itself. In particular, should the rim be obtained by molding, it may be useful to form the desired sections and profiles directly by changing the shape of the mold. In the case, for example, of rims manufactured with layers of carbon fiber, the spoke attachment zones can be obtained through the application in such zones of a number of carbon fibers layers greater than in the infra-spoke zones and the mould also has a shape matching and corresponding to the sharp edge profiles of the zones.
In a similar way, the rim can be obtained using an injection molding technique in which the shape of the mold with sharp edge profiles allows the zones to be obtained when the injected material fills up the cavity with corners defined by it.
Although the rim described herein comprises a lower bridge 2 and upper bridge 3, commonly referred to as “double bridge”, such a rim can also be applied to rims with open section, i.e. without an upper bridge, with a substantially U-shaped cross-section.
The section of the rim 1 has a single spoke attachment chamber 15 but two or more chambers can be provided in different embodiments obtained through one or more partition walls that extend parallel or transversely to the upper bridge. Each wall (upper bridge, lower bridge, side walls and partition walls), moreover, can be shaped in various ways, obtaining a cross-section of the rim that can be substantially complex.
Number | Date | Country | Kind |
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03425419 | Jun 2003 | EP | regional |
This application is a continuation of U.S. patent application Ser. No. 10/877,024, filed Jun. 25, 2004 now U.S. Pat. No. 7,140,695, which is incorporated by reference as if fully set forth.
Number | Name | Date | Kind |
---|---|---|---|
395523 | Taylor | Jan 1889 | A |
401551 | Gilles | Apr 1889 | A |
452649 | Powell | May 1891 | A |
521385 | Mosely | Jun 1894 | A |
677319 | McConville | Jun 1901 | A |
759124 | Oswald | May 1904 | A |
1286065 | Murray | Nov 1918 | A |
1393797 | Lachman | Oct 1921 | A |
1402003 | Miller | Jan 1922 | A |
6183047 | Kuhl | Feb 2001 | B1 |
6196638 | Mizuno et al. | Mar 2001 | B1 |
6367883 | Chen | Apr 2002 | B1 |
6402256 | Mercat | Jun 2002 | B1 |
6425641 | Herting | Jul 2002 | B1 |
6536849 | Okajima et al. | Mar 2003 | B1 |
20050017569 | Passarotto | Jan 2005 | A1 |
20060043784 | Passarotto | Mar 2006 | A1 |
20070158996 | Meggiolan | Jul 2007 | A1 |
20090134693 | Meggiolan | May 2009 | A1 |
20090134695 | Meggiolan | May 2009 | A1 |
20090250994 | Meggiolan | Oct 2009 | A1 |
20100013119 | Meggiolan | Jan 2010 | A1 |
Number | Date | Country |
---|---|---|
2709212 | Jul 2005 | CN |
0579525 | Jan 1994 | EP |
0715001 | Jun 1996 | EP |
1 084 868 | Sep 1997 | EP |
1 314 579 | Sep 2000 | EP |
1167078 | Jan 2002 | EP |
1314579 | May 2003 | EP |
833629 | Jun 1937 | FR |
2765150 | Jun 1997 | FR |
5553632 | Oct 1953 | JP |
56102201 | Jan 1955 | JP |
5125421 | Jun 1976 | JP |
60275078 | Sep 1985 | JP |
61175005 | Oct 1986 | JP |
62-275801 | Nov 1987 | JP |
62275801 | Nov 1987 | JP |
08207503 | Aug 1996 | JP |
200372301 | Dec 2003 | JP |
497556 | Aug 2002 | TW |
WO 9309963 | Nov 1992 | WO |
Number | Date | Country | |
---|---|---|---|
20070063577 A1 | Mar 2007 | US |
Number | Date | Country | |
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Parent | 10877024 | Jun 2004 | US |
Child | 11603742 | US |