The present disclosure relates to an artificial shuttlecock.
Badminton competition is a common and popular ball game, and players compete by hitting the shuttlecock. The main structure of conventional shuttlecock is that natural feather is combined to the base portion, wherein the natural feathers are mostly goose feathers or duck feathers, which are bleached and screened before being made into a shuttlecock. However, it is becoming more and more difficult to obtain natural feathers, and the screening procedures are complicated and labor-consuming Therefore, there are also artificial shuttlecocks on the market, trying to resolve the issues of shortage and complicated screening of the natural feathers.
Most of the artificial shuttlecocks use nylon to make a soft frame to replace natural feathers, and the structure of the soft frame carries the airflow generated during the hitting. However, a shuttlecock made of such a soft frame does not provide a hitting feel as good as a shuttlecock made of natural feathers, so it is hard to be accepted by users. At present, there is also a design using fiber-reinforced resin material as the stem and lightweight foam material as the feather. The appearance of this type of artificial shuttlecock is similar to that of natural shuttlecock, and the hitting feel is better than that made of soft frame. However, the strength (toughness) and durability of the stem made of fiber-reinforced resin material is not as good as the natural shuttlecock stem.
In view of the above, the main object of the present disclosure is to provide an artificial shuttlecock, which resolves the issues of reduced overall durability of the conventional artificial shuttlecock made of carbon fiber stem by a novel structural design of connecting the stem and the base portion.
To achieve the above object, the present disclosure provides an artificial shuttlecock, which comprises a base portion, a plurality of stems, a plurality of feathers, a first connecting element, a second connecting element and at least one third connecting element. The base portion has a top surface and a concave portion, and the concave portion is arranged on the top surface. The stems have a first end and a second end opposite to each other. The first ends of the stems are inserted onto the top surface of the base portion. The feather is connected to one of the hair rods and close to the second end. The first connecting element is connected to the stems and close to the base portion. The second connecting element is connected to the stems and close to the feathers. The third connecting element is connected to the stems and located between the first connecting element and the second connecting element.
According to one embodiment of the present disclosure, adjacent two stems have a spacing range, and the first connecting element, the second connecting element, and the third connecting element are connected to the stem, so that the spacing range of the adjacent two stems is fixed.
According to one embodiment of the present disclosure, the distance between the first connecting element and the base portion is between 5 mm and 14.5 mm.
According to one embodiment of the present disclosure, the distance between the second connecting element and the feather is between 0.01 mm and 5 mm.
According to one embodiment of the present disclosure, the distance between the second connecting element and the base portion is between 17.5 mm and 29 mm.
According to one embodiment of the present disclosure, the first connecting element, the second connecting element, and the third connecting element are the same kind of members.
According to one embodiment of the present disclosure, the first connecting element, the second connecting element, and the third connecting element are respectively a wire wound around the stem.
According to one embodiment of the present disclosure, the first connecting element, the second connecting element, and the third connecting element are parallel to each other.
According to one embodiment of the present disclosure, the distances of the third connecting element with the first connecting element and with the second connecting element are substantially the same.
According to one embodiment of the present disclosure, the distances of the third connecting element with the first connecting element and with the second connecting element are between 5 mm and 17.5 mm.
According to one embodiment of the present disclosure, the base portion further comprises a convex surface located on the opposite side of the top surface, and the concave portion extends from the top surface to the convex surface.
According to one embodiment of the present disclosure, the concave portion is in a symmetrical shape on the top surface.
According to one embodiment of the present disclosure, the concave portion is symmetrical in shape with reference to a center of the top surface.
According to one embodiment of the present disclosure, the concave portion and the top surface are arranged in a manner of concentric circle.
According to one embodiment of the present disclosure, the concave portion is a circular-shape or a ring-shape.
According to one embodiment of the present disclosure, the volume of the concave portion accounts for 1% to 7% of the volume of the base portion. According to one embodiment of the present disclosure, the weight of the base portion, after filling the concave portion with the same material as the base portion, is 0.06 g to 0.10 g more than the original weight of the base portion.
According to one embodiment of the present disclosure, the material of the stem is a carbon fiber-reinforced resin material.
According to one embodiment of the present disclosure, the feather comprises two holes, and the holes are respectively located on two opposite sides of the stem.
As stated above, according to the artificial shuttlecock of the present disclosure, at least three connecting elements of the first connecting element, the second connecting element, and the third connecting element are used to fix the stem to reduce its shaking. In addition, the base portion has a concave portion, capable of destroying the structure of the base portion and reducing the stress concentration between the base portion and the stem, thereby avoiding the breakage of the stem. With the aforementioned two novel structural designs, the durability of the artificial shuttlecock is greatly improved.
In order to enable reviewers to better understand the technical content of the present disclosure, a preferred specific embodiment is described as follows.
The base portion 10 of this embodiment has a top surface 11, a concave portion 12 and a convex surface 13, and the convex surface 13 is located on the opposite side of the top surface 11. One side of the base portion 10 is a semi-cylindrical structure, and the convex surface 13 is the surface of the semi-cylindrical structure. The top surface 11 and the convex surface 13 are located on two opposite surfaces of the base portion 10, and the top surface 11 can be inserted by the stems 20. In addition, the concave portion 12 is arranged on the top surface 11, and the concave portion 12 extends from the top surface 11 to the convex surface 13. In other words, the concave portion 12 is a groove extending from the top surface 11 to the inside of the base portion 10, as shown in
In the manufacturing of the artificial shuttlecock 1, a base portion 91 without a concave portion 12 (like the base portion 91 in the prior art, so described with the same designation) can be taken first. Then, taking the circular center of the top surface of the base portion 91 as the center point, a symmetrical shape, such as a circle, is chiseled to form the base portion 10 and the concave portion 12 of the present embodiment. Specifically, draw a circle with a diameter of about 8 mm, whose center is the same as that of the top surface of the base portion 91 (as shown in
Referring to
Preferably, the feather 30 is attached to the stem 20 with glue, and is close to the second end 22 of the stem 20. In this embodiment, every two pieces of the feathers 30 are combined with one piece of stem 20, that is, two of the plural pieces of feathers 30 are attached to one of the plural pieces of stems 20. Moreover, every two pieces of feathers 30 are respectively attached to the opposite sides of the stem 20. Specifically, each one surface of the two pieces of feathers 30 is coated with glue, and the glued surface is bonded to the opposite sides of the stem 20. Finally, the other parts of the two pieces of feathers 30 are pressed together to make the two pieces of feathers 30 bond to each other. Preferably, after the feather 30 is bonded to the stem 20, the first end 21 of the stem 20 is inserted into the base portion 10.
In addition, the feather 30 of this embodiment can be an artificial feather to replace natural feather, wherein the feather 30 is made of plastic with a density between 0.9 g/cm3 to 1.48 g/cm3, and the plastic can be, for example but not limited to, low density polyethylene (LDPE), linear low density polyethylene (LLDPE), polyethylene terephthalate (PET), polyethylene resin (PE), polypropylene (PP), acrylonitrile-butadiene-styrene (ABS), polyamide (PA) and extruded polyethylene (EPE) and so on. Preferably, the feather 30 can be a combination of LDPE and LLDPE. In addition, the overall configuration of the feather 30 roughly corresponds to the configuration of the feathers of a natural shuttlecock. Specifically, the configuration of the feather 30 can be symmetrical with the stem 20 as the symmetrical axis, such as a kite-shaped configuration.
After the stems 20 are arranged at intervals on the base portion 10, the connecting assembly 40 is used to fix the distance between two adjacent stems 20. The connecting assembly 40 of this embodiment is composed of three connecting elements, namely the first connecting element 41, the second connecting element 42, and the third connecting element 43. In other words, the first connecting element 41, the second connecting element 42, and the third connecting element 43 are connected to the stem 20, wherein the first connecting element 41 is close to the base portion 10, the second connecting element 42 is close to the feather 30, and the third connecting element 43 is located between the first connecting element 41 and the second connecting element 42.
Specifically, adjacent two stems 20 have a spacing range SR, and the first connecting element 41, the second connecting element 42, and the third connecting element 43 are connected to the stem 20, such that the spacing range SR of the adjacent two stems is fixed. It should be noted that since the stem 20 can be inserted obliquely onto the top surface 11 of the base portion 10, the spacing between the two adjacent stems 20 is not a constant, and the closer to the second end 22, the greater the spacing. Therefore, the spacing range SR is used here instead of a fixed value. In this embodiment, the first connecting element 41, the second connecting element 42, and the third connecting element 43 can be the same kind of members. Preferably, the first connecting element 41, the second connecting element 42, and the third connecting element 43 are respectively a wire wound around the stem 20 to fix the spacing between the stems 20. Preferably, after the first connecting element 41, the second connecting element 42, and the third connecting element 43 are wound to the stem 20, glue is applied to the first connecting element 41, the second connecting element 42, the third connecting element 43, and the contacted stem 20.
In the manufacturing of the artificial shuttlecock 1, the first connecting element 41 and the second connecting element 42 can be provided first, and then the third connecting element 43 can be arranged between the first connecting element 41 and the second connecting element 42.
When the relative positions of the first connecting element 41 and the second connecting element 42 are determined, the third connecting element 43 is arranged between the first connecting element 41 and the second connecting element 42. Preferably, the first connecting element 41, the second connecting element 42, and the third connecting element 43 are parallel to each other, so the distances D4 of the third connecting element 43 with the first connecting element 41 and with the second connecting element 42 are substantially the same, so the same distances D4 are marked in
Table 1 is a durability test report of artificial shuttlecock with various structures.
From the durability test results shown in the above table, it can be seen that when both the condition (1) there exist three connecting elements (i.e., the first connecting element 41, the second connecting element 42 and the third connecting element 43) and the condition (2) the base portion 10 has a concave portion 12 are met, the durability is greatly improved. That is, compared with the designation A (the conventional artificial shuttlecock 9), the number of kill shots for designations D, E, and F in Table 1 is increased by more than 3 times (for instance, the original 7 kill shots is increased to 25 kill shots or more).
As shown in
The artificial shuttlecock 1 (designation D in Table 1) of the present embodiment uses at least three connecting elements such as the first connecting element 41, the second connecting element 42, and the third connecting element 43 to fix the stem 20 for reducing its shaking. In addition, the provision of the concave portion 12 can destroy the structure of the base portion 10 and reduce the stress concentration between the base portion 10 and the stem 20, thereby greatly improving the durability of the artificial shuttlecock 1.
In summary, according to the artificial shuttlecock of the present disclosure, at least three connecting elements of the first connecting element, the second connecting element, and the third connecting element are used to fix the stem 20 to reduce its shaking. In addition, the base portion has a concave portion, capable of destroying the structure of the base portion and reducing the stress concentration between the base portion and the stem, thereby avoiding the breakage of the stem. With the aforementioned two novel structural designs, the durability of the artificial shuttlecock is greatly improved.
Although the disclosure has been explained in relation to its preferred embodiment, many other possible modifications and variations can be made without departing from the spirit and scope of the disclosure as hereinafter claimed.
Number | Date | Country | Kind |
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108130917 | Aug 2019 | TW | national |