This application claims the benefit from the priorities of Taiwan Utility Model Application No. 098222723 filed on Dec. 4, 2009, and Taiwan Utility Model Application No. 099200227 filed on Jan. 7, 2010, and the disclosures of the latter are incorporated by reference herein in their entirety.
Not applicable.
1. Field of the Invention
The present invention relates to a buckling device, and more particularly, to a buckling device for fastening a belt.
2. Descriptions of the Related Art
When partaking in underwater activities, users must always wear masks and flippers. The mask may be a pair of swimming goggles, a pair of diving glasses or another kind of device for covering the facial contours of the users. Generally, both the mask and the flippers are provided with a buckling device and a belt so that the belt length can be adjusted according to the figure of each user. The belt is then fastened by the buckling device around the body of the user.
In references to
However, because the resilient element 13 is integrally formed with the body 11, the resilient element 13 needs to have sufficient strength, which tends to result in an insufficient flexibility of the material when the user applies a force to the opposite end 14. Consequently, the snap-fitting element 12 cannot be pulled outwards promptly by the user, so the user has to apply a great force when adjusting the belt. As a consequence, an excessive force is often applied by the user when directly pulling the snap-fitting element 12, thereby causing material fatigue or even fractures in the resilient element 13.
Similar to the aforesaid buckling device 1, as the snap-fitting protrusion 23 is integrally formed with the snap-fitting element 22, a sufficient strength and stiffness are required to engage with the belt. However, because the material of the snap-fitting protrusion 23 is too stiff, the snap-fitting protrusion 23 is also not flexible enough, making it difficult for the snap-fitting element 22 to arch outwards promptly when being pushed by the user and, therefore, leads to poor pushing tactility of the push portions 24 when the user adjusts the belt. As a consequence, an excessive force is often applied by the user when pushing the push portions 24, thereby also causing material fatigue or even fracture of the snap-fitting protrusion 23. Moreover, when the snap-fitting element 22 is directly pushed by the push portions 24 to arch outwards, violent friction occurs between the snap-fitting element 22 and the push portions 24, making them liable to wear. As a result of the wear, the engaging end 25 will fail to deliver a sufficient engagement force when engaging with the belt and cannot be securely pressed against the belt. Even worse, the belt may fall off during use, which would endanger the life of the user.
In view of this, an urgent need exists in the art to provide a buckling device which has good pushing tactility and is less liable to fatigue, fracture and wear.
An objective of the present invention is to provide a buckling device that is simple to assemble, has good pushing tactility and is less liable to fatigue, fracture and wear.
To achieve the aforesaid objective, a buckling device disclosed in the present invention is adapted to fasten a belt. The buckling device comprises a first portion, a second portion, an elastic portion and at least one push portion. The elastic portion is disposed between the first portion and the second portion. The second portion engages with the belt to fasten the belt. The at least one push portion is integrally formed with the elastic portion and exposed from the first portion and the second portion. The at least one push portion is adapted to be pushed inwards by an external force to force the elastic portion to extrude outwards so that the second portion is forced to move outwards to release the belt.
The detailed technology and preferred embodiments implemented for the subject invention are described in the following paragraphs accompanying the appended drawings for people skilled in this field to well appreciate the features of the claimed invention.
As shown in
It should be noted that in the present invention, the push portion 37 is integrally formed with the elastic portion 33 and exposed from the first portion 31 and the second portion 32. When the push portion 37 is pushed inwards by an external force to force the elastic portion 33 to deform and extrude outwards, the elastic portion 33 is adapted to force the second portion 32 to move outwards to release the belt 4 and disengage the second portion 32 from the belt 4, thereby allowing the user to adjust the belt 4 to a suitable length correspondingly.
More specifically, the second portion 32 of the buckling device 3 has an engaging end 322 and an opposite end 323 that is opposite the engaging end 322. The opposite end 323 is fastened with the first portion 31 so that when no force is exerted on the push portion 37 of the buckling device 3, the engaging end 322 is adapted to engage with and fasten the belt 4. The engaging end 322 of the second portion 32 has a first protrusion 321, while the opposite end 323 has a snap-fitting protrusion 323a. The first portion 31 has a snap-fitting hole 313 corresponding to the snap-fitting protrusion 323a, while the snap-fitting protrusion 323a of the opposite end 323 is adapted to be snap-fitted with the snap-fitting hole 313 to fixedly connect the first portion 31 and the second portion 32. Thereby, when the second portion 32 abuts against the elastic portion 33, the first protrusion 321 engages with a plurality of second protrusions 41 of the belt 4 to fasten the belt 4. Preferably, both the second protrusions 41 of the belt 4 and the first protrusion 321 are disposed parallel to the pivot 36 to facilitate adjustment of the length of the belt 4 by the user. Moreover, the snap-fitting protrusion 323a can be pivotally attached to other objects (e.g., masks or flippers) so that the buckling device 3, with the snap-fitting protrusion 323a as a pivot, can rotate with respect to other objects (e.g., masks or flippers).
As shown in
When pushed inwards simultaneously by a push force exerted by the user, the two push portions 37 will press and deform the elastic portion 33 so that it protrudes outwards. The protruded elastic portion 33 further pushes the engaging end 322 of the second portion 32 outwards to deform the second portion 32 so that the engaging end 322 rotates outwards with respect to the first portion 31 (i.e., the second portion 32 shown in
Furthermore, when the second portion 32 is deformed to rotate the engaging end 322 outwards to release the second protrusion 41, an elastic restoring force is accumulated in each of the elastic portion 33, the push portions 37 integrally formed with the elastic portion 33 and the second portion 32. After the user has completed the adjustment of the length of the belt 4 and removed the push force exerted on the push portions 37, the elastic restoring force of the elastic portion 33 will be released to restore the protruded elastic portion 33 into its original shape. Then, the outward pushing action exerted on the second portion 32 by the elastic portion 33 disappears, and the elastic restoring force of the second portion 32 is released to restore the second portion 32 into its original shape. Correspondingly, the engaging end 322 rotates inwards with the movement of the second portion 32 (i.e., the second portion 32 shown in
Similar to the buckling device 3 of the first embodiment, a buckling device 5 according to the second embodiment of the present invention is adapted to fasten a belt 6, as shown in
However, unlike the buckling device 3 of the first embodiment, the buckling device 5 of the second embodiment further has the first portion 51 and the second portion 52 integrally formed. With such a design, the cost of assembling the first portion 51 and the second portion 52 is saved for the buckling device 5 of the second embodiment. Because the first portion 51 and the second portion 52 of the buckling device 5 of the second embodiment are integrally formed, the first portion 51 does not need to be formed with the snap-fitting hole 313 of the first embodiment for snap-fitting with a snap-fitting protrusion 523a of the opposite end 523. The snap-fitting protrusion 523a of the second embodiment is only used to be pivotally fastened with other objects (e.g., masks or flippers) so that the buckling device 5 can, with the snap-fitting protrusion 523a as a pivot, rotate with respect to other objects (e.g., masks or flippers).
When pushed inwards simultaneously by push force exerted by the user, the two push portions 57 will deform and press the elastic portion 53 so that it protrude outwards. The protruded elastic portion 53 further pushes the engaging end 522 of the second portion 52 outwards to deform the second portion 52 so that the engaging end 522 rotates outwards with respect to the first portion 51 (i.e., the second portion 52 shown in
Furthermore, when the second portion 52 is deformed to rotate the engaging end 522 outwards to release the second protrusion 61, an elastic restoring force accumulate in each of the elastic portions 53, the push portions 57 integrally formed with the elastic portions 53 and the second portion 52. After the user has completed the adjustment of the length of the belt 6 and removed the push force exerted on the push portions 57, the elastic restoring force of the elastic portion 53 will be released to restore the protruded elastic portion 53 into its original shape. Then, the outward pushing action exerted on the second portion 52 by the elastic portion 53 disappears, and the elastic restoring force of the second portion 52 is released to restore the second portion 52 into its original shape. Correspondingly, the engaging end 522 rotates inwards with the movement of the second portion 52 (i.e., the second portion 52 shown in
To adjust the extent of elasticity and deformation of the elastic portion of the aforesaid embodiment, as shown in
In the aforesaid embodiments, the elastic portion and the push portions integrally formed with the elastic portion may both be made of a first material which has a Shore hardness substantially between A10 to A95, and the elastic portion has a coefficient of elasticity smaller than that of the first portion and lower than 20 Gpa; i.e., the elastic portion and the push portions have better flexibility than the first portion. The first material of the elastic portion and the push portions is preferably selected form the group consisting of silicone, Thermoplastic Rubber (TPR), Thermoplastic Elastomer (TPE), Polyvinyl Chloride (PVC), Natural Rubber, Synthetic Rubber and a combination thereof. The material of the first portion may be selected from the group consisting of Polycarbonate (PC), Alkylbenzene sulfonate (ABS), Polyoxymethylene (POM), Polypropylene (PP), Thermoplastic Rubber (TPR), Nylon, Polyethylene (PE), Polyurethane (PU) and a combination thereof.
However, the elastic portion and the push portions described above may also be made of materials of different hardness. The elastic portion and the push portions may be made of the softer first material or the harder second material. For example, as shown in
Furthermore, because the elastic portion of the present invention is made of a material with good flexibility, it can be easily integrally formed with a soft portion of an object which is to be fastened by the belt. For example, the elastic portion may extend from a skirt portion of a mask and be integrally formed with the skirt portion. Alternatively, the elastic portion of the present invention may extend from a side edge of a flipper and be integrally formed with the side edge. The mask may be a pair of swimming goggles, diving glasses or another kind of device for covering the facial contours of the user, and are not merely limited thereto.
According to the above description, because the elastic portion of the buckling device of the present invention is made of a soft material with high flexibility, shortcomings such as elastic fatigue or fatigue fractures are eliminated and users can push the push portions and the elastic portion easily with a small force to operate the buckling device. The buckling device of the present invention also avoids the problems of the conventional buckling device that the conventional buckling device has poor pushing tactility and the user tends to apply an overlarge pushing force because only a portion of a hard component or only a metallic elastic component such as a spring is used as an elastic storage structure, and that further causes fatigue or fracture of the hard component that is used as the elastic storage structure. As a result, the device is not as fragile nor as prone to fractures, thereby, the buckling device of this invention obtains a prolonged service life. Moreover, by having push portions formed integrally with the elastic portion, the push portions can return back to the original position without need of a spring disposed therebetween. It should be noted that the positions, deformation directions, and materials of the elastic portion and the push portions, as well as the kinds of components that are integrally formed described in the aforesaid embodiments are not intended to limit the scope of the present invention, and those of ordinary skill in the art can proceed with other examples based on the same concepts as the present invention.
The above disclosure is related to the detailed technical contents and inventive features thereof. People skilled in this field may proceed with a variety of modifications and replacements based on the disclosures and suggestions of the invention as described without departing from the characteristics thereof. Nevertheless, although such modifications and replacements are not fully disclosed in the above descriptions, they have substantially been covered in the following claims as appended.
Number | Name | Date | Kind |
---|---|---|---|
4727630 | Alan | Mar 1988 | A |
6219889 | Lovato et al. | Apr 2001 | B1 |
6457210 | Shirai et al. | Oct 2002 | B1 |
6925020 | Kwon | Aug 2005 | B2 |
6966102 | Shiue | Nov 2005 | B2 |
7007311 | Chiang | Mar 2006 | B2 |
7162778 | Pan | Jan 2007 | B2 |
7458134 | Shiue | Dec 2008 | B2 |
7571520 | Shiue | Aug 2009 | B2 |
7631400 | Chiang | Dec 2009 | B2 |
7640633 | Chou | Jan 2010 | B2 |
7665190 | Weng | Feb 2010 | B2 |
7836561 | Vaccaro et al. | Nov 2010 | B2 |
7921523 | Chou | Apr 2011 | B2 |
7966701 | Shiue | Jun 2011 | B2 |
8042199 | Chiang | Oct 2011 | B2 |
20060010585 | Chiang | Jan 2006 | A1 |
20060230584 | Pan | Oct 2006 | A1 |
20070256283 | Chiang | Nov 2007 | A1 |
20080244875 | Chou | Oct 2008 | A1 |
20080289160 | Chou | Nov 2008 | A1 |
20090100645 | Weng | Apr 2009 | A1 |
20090276942 | Chiang | Nov 2009 | A1 |
Number | Date | Country |
---|---|---|
201253450 | Jun 2009 | CN |
2679342 | Jan 1993 | FR |
2416598 | Feb 2006 | GB |
2416598 | Feb 2006 | GB |
06-237805 | Aug 1994 | JP |
2001-198236 | Jul 2001 | JP |
2001-218869 | Aug 2001 | JP |
M340997 | Sep 2008 | TW |
Entry |
---|
First office Action for the Chinese counterpart (CN200910162684.4) Chinese version and machine translated version, Dec. 16, 2011. |
China Office Action mailed Aug. 10, 2012. |
Machine translation of summary of Chinese Office Action mailed Aug. 10, 2012. |
European search report of the parallel EP Application No. 10 187 216.6 (search report bears an official mailing date of Apr. 5, 2012). |
Japanese office action of the relevant JP Application No. 2010-018631 (that office action bears an official mailing date of Mar. 6, 2012; JP Application No. 2010-018631 is parallel to U.S. Appl. No. 12/685,783). |
European search report of a relevant EP Application No. 10 15 095.6 (that office action bears an official mailing date of May 8, 2012: EP Application No. 10 15 095.6 is parallel to U.S. Appl. No. 12/685,783). |
Taiwan office action of a relevant TW Application No. 098126724 (that office action bears an official mailing date of Jun. 29, 2012; TW Application No. 098126724 is parallel to U.S. Appl. No. 12/685,783). |
Number | Date | Country | |
---|---|---|---|
20110138588 A1 | Jun 2011 | US |