The present disclosure relates to a fastening device. More particularly, the present disclosure relates to a fastening device for securing an article through loosening or tensioning a lace.
In daily life, cords, such as a lace or a thread, are usually used to tighten articles. The most common tightening method is to use the cord to reciprocately pass through holes on the article, e.g., eyelets of a shoe, and then tie a knot to secure the article. But in this kind of tightening method, the knot is loosened easily owing to an external force. Not only does the knot need to be tied again, but also lots of inconveniences come owing to the insecurity of the articles.
In order to solve such problems, some practitioners developed a simple fastening mechanism including a case, an engaging unit and a spring. The case includes holes configured for the lace to pass therethrough. Through the reaction force between the spring and the engaging unit, the lace can be clamped between the engaging unit and the case so as to be fastened. The length of the lace can be changed by pressing the spring to change the position of the engaging unit. However, in such fastening mechanism, the restoring force of the spring is served as the securing force; thus, the lace is easily to be released owing to vibrations or an external force. In addition, the fastening mechanism has no space for receiving the lace, and the exposure of the lace may bring danger.
Therefore, some practitioners developed another kind of buckle which can be rotated to tension the lace, and the lace can be received inside the buckle. Through the interference between components inside the buckle, the length of the lace as well as the tightness can be adjusted. However, the structure of the buckle generally includes a case and a knob made of a metal material, which is heavy and has a high cost.
Based on the above-mentioned problems, how to solve the problems becomes a pursued target for practitioners.
According to one aspect of the present disclosure, a fastening device includes a case unit including a receiving space, a spool located within the receiving space and configured for a lace to be wound therearound, and a knob covering on the case unit. The knob includes a main body made of a composite material, and a shield cover covering on the main body and made of a metal material. A rotation of the knob drives the spool to rotate in a tightening direction for tensioning the lace.
The disclosure can be more fully understood by reading the following detailed description of the embodiments, with reference made to the accompanying drawings as follows:
It will be understood that when an element (or mechanism or module) is referred to as being “disposed on”, “connected to” or “coupled to” another element, it can be directly disposed on, connected or coupled to the other element, or intervening elements may also be present. In contrast, when an element is referred to as being “directly disposed on”, “directly connected to” or “directly coupled to” another element, there are no intervening elements present.
In addition, the terms first, second, third, etc. are used herein to describe various elements or components, these elements or components should not be limited by these terms. Consequently, a first element or component discussed below could be termed a second element or component.
Therefore, through the configuration that the knob 500 includes the outer annular portion 520 and the main body 510, and the outer annular portion 520 is made of a metal material while the main body 510 is made of other materials, the weight as well as the cost can be reduced while the structural strength is remained. The details of the fastening device 100 will be described hereinafter.
The case unit 200 of the fastening device 100 can include an annular wall 210, a base 220 and a plurality of mounting teeth 240. The annular wall 210 defines the receiving space 230 and includes an upper opening (not labeled) and a lower opening (not labeled). The base 220 is detachably connected to the annular wall 210 to close the lower opening. The mounting teeth 240 are located at the annular wall 210 and face toward the receiving space 230. Moreover, each of the mounting teeth 240 can include a tip portion. The spool 300 can include an upper ring portion 320. A distance between two tip portions of two opposite mounting teeth 240 is smaller than a diameter of the upper ring portion 320, thereby preventing the spool 300 from leaving the receiving space 230 from an upper opening of the annular wall 210.
To be more specific, except for the upper ring portion 320, the spool 300 can further include a lower ring portion 330 and a plurality of second combining teeth 310. A winding track formed between the upper ring portion 320 and the lower ring portion 330 is configured for the lace to wind therearound. The second combining teeth 310 are located above the upper ring portion 320. Through the relation of the diameters, the mounting teeth 240 can restrict the upper ring portion 320 to prohibit the spool 300 from moving upward. A portion of the annular wall 210 adjacent to the mounting teeth 240 can protrude radially and inward to form an upper protruding flange 211. The distance between two root portions of two opposite mounting teeth 240 is smaller than or equal to an inner diameter of the upper protruding flange 211. In the first embodiment, the upper protruding flange 211 extends to the upper opening, the mounting teeth 240 are located at the upper protruding flange 211, and the distance between two root portions of two opposite mounting teeth 240 is equal to the inner diameter of the upper protruding flange 211. In addition, a height in an axial direction I1 (shown in
As shown in
The case unit 200 can further include a snapping portion 250 (shown in
The material of the outer annular portion 520 can be, for example, aluminum, copper, zinc or the alloy thereof, which can have an advantage of light weight. The composite material of the top portion 516 can be, for example, a carbon-fiber composite material, which can have advantages of light weight and high strength. In addition, the main body 510 can further include a cover portion 517 located between the case unit 200 and the top portion 516, and the cover portion 517 is made of plastic. In the first embodiment, although the cover portion 517 is illustrated as being separated from the top portion 516, in other embodiments, the cover portion and the top portion can be formed integrally using the dual-injecting process to allow the main body to be a one-piece element having different materials. The materials of the top portion and the cover portion are not limited to the above, and other non-metal materials or other composite materials can be used. The outer annular portion can also be made of other metal materials, and the present disclosure is not limited thereto.
The outer annular portion 520 can include an upper restricting portion 523 (shown in
Moreover, the main body 510 can further include at least one radial engaging portion 511, the knob 500 can further include at least one radial coupling portion 521 located at the outer annular portion 520, and the at least one radial engaging portion 511 is coupled to the at least one radial coupling portion 521. In addition, the main body 510 can further include at least one axial rib 512, the knob 500 can further include at least one axial slot 522 located at the outer annular portion 520, and the at least one axial rib 512 is received in the at least one axial slot 522.
To be more specific, a number of the radial engaging portions 511 and a number of the axial ribs 512 are both three. Each of the three radial engaging portions 511 is staggered from each of the three axial ribs 512 and is arranged on the outer surface of the cover portion 517. A number of the axial slots 522 is three and the axial slots 522 are located at an inner surface of the outer annular portion 520. The inner surface of the outer annular portion 520 can be depressed to form an inner annular groove, and the three axial slots 522 are communicated with the inner annular groove and split the inner annular groove into three segments to form the three radial coupling portions 521 for cooperating with the three radial engaging portions 511.
Hence, the three radial engaging portions 511 are associated with the three radial coupling portions 521 to assemble the main body 510 and the outer annular portion 520. The cooperation between the axial rib 512 and the axial slot 522 can prevent rotation between the outer annular portion 520 and the cover portion 517, and can be favorable for transferring the operating force of the user. Furthermore, the outer annular portion 520 can include a plurality of anti-slip strips (not labeled) to increase the friction between the outer annular portion 520 and the user.
The fastening device 100 can further include an engaging unit 400 located above the spool 300. An operation of the knob 500, for example rotating the knob 500 in a loosening direction R1, allows the engaging unit 400 to be lifted along the axial direction I1 and to switch from a first position to a second position, and when the engaging unit 400 is in the first position, a rotation of the knob 500 drives the spool 300 to rotate in the tightening direction R2 for tensioning the lace. As the engaging unit 400 is located in the second position, the spool 300 is allowed to release the lace.
Precisely, the engaging unit 400 can include a ring body 410, three pawl arms 420, three stop portions 430 and three guiding portions 440. The ring body 410 includes a central hole 411 configured for the central post 514 of the main body 510 to insert thereinto. The three pawl arms 420 protrude from the ring body 410 and are spaced apart from each other. The three stop portions 430 are disposed at the three pawl arms 420, respectively. The three guiding portions 440 are configured for cooperated with the spiral track 515 of the main body 510.
The engaging unit 400 can further include a plurality of first combining teeth 450, and when the engaging unit 400 is located in the first position, the first combining teeth 450 are engaged with the second combining teeth 310. Each of the first combining teeth 450 is formed integrally with the ring body 410 and protrudes toward the spool 300. An outer tooth-facet 451 of each of the first combining teeth 450 is extended downward and integrally from an outer surface 412 of the ring body 410. In other words, the distance between two opposite outer tooth-facets 451 is equal to the outer diameter of the outer surface 412. Each of the first combining teeth 450 can further include a first longitudinal facet 452, and the first longitudinal facet 452 is substantially parallel to the axial direction I1. Each of the second combining teeth 310 can include a second longitudinal facet (not labeled) corresponding to the first longitudinal facet 452. When the engaging unit 400 is rotated in the tightening direction R2, the first longitudinal facet 452 pushes the second longitudinal facet of the spool 300, thereby favorable for transferring the rotary force of the engaging unit 400.
Furthermore, the fastening device 100 can further include a connecting unit 600 connected to the main body 510 of the knob 500 and being restricted by the spool 300. Precisely, the connecting unit 600 includes a stop plate 610 and a screw member 620. The stop plate 610 includes a through hole 611. The stop plate 610 inserts the central clearance hole (not labeled) of the spool 300, and the screw member 620 inserts upward into the through hole 611 of the stop plate 610 to fasten with the central post 514, thereby allowing the screw member 620 to be restricted by the stop plate 610 and allowing the stop plate 610 to be restricted by the spool 300.
In contrast, as shown in
The knob 500a can include a main body 510a and a shield cover 520a. The main body 510a is a one piece element made of plastic or doped plastic. The shield cover 520a covers on the main body 510a and is made of metal. The shield cover 520a includes an outer annular portion 525a and a metal top portion 524a. In other words, the metal top portion 524a is integrally connected to the outer annular portion 525a to form the shield cover 520a covering on the main body 510a, and a cross section of the shield cover 520a is therefore an “n” shape which totally convers the main body 510a. Please be noted that, the outer annular portion 525a of the second embodiment is similar to the outer annular portion 520 of the first embodiment, but the outer annular portion 525a is integrally formed with the metal top portion 524a while the outer annular portion 520 is not integrally formed with a top portion. Therefore, the main body 510a also includes at least one radial engaging portion, the shield cover 520a includes at least one radial coupling portion located at the outer annular portion 525a, and the at least one radial coupling portion is coupled to the at least one radial engaging portion.
The connecting unit 600a can include a stop plate 610a, a screw member 620a and a screw sleeve 630a. The screw sleeve 630a is disposed in the central post of the main body 510a, and the screw member 620a passes through the stop plate 610a to fasten into the screw sleeve 630a. Since the central post protrudes downward from the inner top surface of the main body 510a, and the screw sleeve 630a is located inside the central post, the shield cover 520a can be assembled after the main body 510a, the engaging unit 400a and the spool 300a are assembled. The assembly is convenient, and the aesthetic is increased owing to that the connecting unit 600a is not exposed.
To be more specific, the fastening device 100c includes a spool 300c, an engaging unit 400c, a case unit (not labeled in the fourth embodiment) and a connecting unit 600c. The main body 510c can include a plurality of knob teeth 516c, and the engaging unit 400c can include a plurality of engaging teeth 460c and three pawl arms 420c. The engaging teeth 460c correspond to the knob teeth 516c, and the pawl arms 420c correspond to the mounting teeth 240c.
The spool 300c includes an upper boss and a driving hole 340c. The upper boss is located above the upper ring portion (not labeled in the fourth embodiment), and the driving hole 340c penetrating the upper boss and the upper ring portion is configured for the central post 514c of the knob 500c to insert therein, thereby allowing the knob 500c to rotate with the spool 300c.
The spool 300c can further include a flexible clamping portion 350c, and the flexible clamping portion 350c includes two clamping arms protruding downward from an intersection of the driving hole 340c and the upper ring portion to form a clamping space. The connecting unit 600c includes a screw member 620c and a positioning shaft 640c. The positioning shaft 640c inserts the clamping space and the driving hole 340c, and the positioning shaft 640c includes a positioning protrusion 641c coupled to the flexible clamping portion 350c. The screw member 620c inserts downward from the main body 510c and passes through the central post 514c to fasten into the positioning shaft 640c.
In contrast, as shown in
The case unit 200d can further include a plurality of inner teeth 280d and a plurality of stopping teeth 260d. To be more specific, the case unit 200d can include a partition 270d, a central hole and a protruding ring. The partition 270d protrudes radially and inward from the annular wall 210d to separate the receiving space (not labeled in the fifth embodiment) into an upper chamber and a lower chamber. The inner teeth 280d are disposed at the annular wall 210d and located at the lower chamber, and the spool 300d can be received in the lower chamber. The central hole penetrates the partition 270d and is communicated with the upper chamber and the lower chamber. The protruding ring protrudes upward from an intersection between the partition 270d and the central hole, and the stopping teeth 260d are located at the upper end of the inner surface of the protruding ring.
The engaging unit 400d includes a ring body (not labeled in the fifth embodiment), three guiding portions 440d, three stop portions 430d and a plurality of driving teeth 470d. The guiding portions 440d are coordinated with the spiral track (not labeled in the fifth embodiment) of the knob 500d, the structures and relationship thereof are similar with the guiding portions 440 and the spiral track 515 of the first embodiment, and the details will not be repeated. The ring body can include three suspending arms protruding downward, and each of the stop portions 430d can be located at each the suspending arms and corresponds to the stopping teeth 260d.
The transmission set 700d can include a sun gear 710d, a plurality of planetary gears 730d and a plate 720d. The sun gear 710d is driven by the driving teeth 470d of the engaging unit 400d. Each of the planetary gear 730d is pivotally disposed on each pivoted shaft of the spool 300d and is engaged with the sun gear 710d and the inner teeth 280d of the case unit 200d. The plate 720d is positioned on the planetary gears 730d and covers the planetary gears 730d.
The connecting unit can include a central shaft 650d and a screw member 620d. The central shaft 650d passes through the spool 300d and the sun gear 710d to enter the central post (not labeled in the fifth embodiment) of the knob 500d, and the screw member 620d passes through the central post downward to fasten with the central shaft 650d.
In the contrast, as rotating the knob 500d in the loosening direction R1 to switch the engaging unit 400d to the second position, the driving teeth 470d are disengaged from the sun gear 710d, rotation of the spool 300d is not affected, and the lace can be released. Meanwhile, the stop portion 430d corresponds to the stopping teeth 260d, thereby favorable for the engaging unit 400d to lower to the first position.
The knob 500e can be pulled upward or pressed downward along the axial direction I1 to be positioned in the fastening position of
Although the present disclosure has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure covers modifications and variations of this disclosure provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
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110209782 | Aug 2021 | TW | national |
202210961142.9 | Aug 2022 | CN | national |
This application is a Continuation-in-part of U.S. application Ser. No. 17/662,076, filed on May 5, 2022, which claims priority to Taiwan Application Serial Number 110209782, filed on Aug. 18, 2021, and also claims priority to China application No. 202210961142.9, filed on Aug. 11, 2022, which are herein incorporated by reference.
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Number | Date | Country | |
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Parent | 17662076 | May 2022 | US |
Child | 18052573 | US |