Embodiments of the present disclosure relate to foldable portable appliances, and more particularly relate to a folding wheel and a portable appliance.
Some wheeled portable appliances commonly used in conventional technologies, for example bicycles, kids' bikes, and strollers, as well as some kids' toys. are generally light-weight designed, even foldable, so as to be convenient to carry and pack.
However, for conventional portable appliances, their wheels usually occupy a relatively large space, causing it difficult to pack. Balance between working strength and folding friendliness is a factor that should be considered in designing a foldable appliance.
A wheel body is always a foundation of a portable appliance to bear stress and load; however, it is not easy to devise a pragmatical folding wheel. Folding wheels appropriate for portable appliances are hardly found in conventional technologies.
In view of the above, a folding wheel and a portable appliance are provided in an embodiment of the present application.
The folding wheel comprises:
a wheel body, including two wheel plates that can be spliced with each other, wherein a notched area is formed when the two wheel plates are spliced with each other;
a first connecting element arranged in the notched area;
a first slide rail mechanism, at least part of which is arranged on the first connecting element, and remaining parts of which are arranged on respective wheel plates, wherein the first slide rail mechanism includes a first rail groove and a first rotating shaft inserted into the first rail groove, the two wheel plates being configurable to be spliced with or separated from each other along the first rail groove via the first rotating shaft and configurable to be flipped by the first rotating shaft relative to the first connecting element via the first rotating shaft;
a securing mechanism configured to secure the two wheel plates to a mutually spliced state.
A portable appliance includes the folding wheel described above.
Compared with conventional technologies, the wheel body of the folding wheel may be locked to a spliced state by the securing mechanism, so as to be ready for use. To pack the portable appliance, a user folds the folding wheel by pulling the two wheel plates away from each other, wherein the first connecting element and the first left rotating shaft disposed thereon maintain immobile, while the two wheel plates slide away from each other along the first rail groove. When the two wheel plates are pulled away from each other, the first rotating shaft is still kept in the first rail groove; at this point, the user may flip the two wheel plates. When the two wheel plates are folded towards each other, the space occupied by the folded wheel body is smaller than the size of the wheel body. A portable appliance with a reduced fold size is easy to pack or carry.
To elucidate the technical solutions of the present disclosure, the drawings used in describing the embodiments of the present disclosure will be briefly introduced below. It is apparent that the drawings as described relate to some embodiments of the present disclosure. To those skilled in the art, other associated structures not appearing in the drawings may also be derived based on these drawings without exercise of inventive work, wherein:
The present application is illustrated mainly with a foldable bike as an example. The inventive ideas and beneficial effects of the present application may also apply to other portable appliances, which will not be discussed in detail here.
Inventors of the present application found that in conventional technologies, to fold a foldable bike, the parts folded are mainly the handlebar and the crossbar, while the wheels cannot be folded; after the crossbar and handlebar are folded in place between two wheels, there is still unoccupied space between the two wheels, such that the space utilization is still low after the folding, and the space occupation is still large. The large space occupation of the folded bicycle is unfriendly to carry and store.
In view of the above problems, in a first embodiment of the present disclosure, there is provided a folding wheel, which is usually applicable to a portable folding appliance, particularly to a portable bicycle. As shown in
a wheel body 1, including two wheel plates that can be spliced with each other, wherein a notch 21 is provided for each of the two wheel plates, and the two notches are spliced to form a notched area 2 when the two wheel plates are spliced with each other;
a first connecting element 4, which is connectable between the two wheel plates and disposed in the notched area 2;
a first slide rail mechanism, at least part of which is disposed on the first connecting element 4, and remaining parts of which are disposed on the two wheel plates, wherein the two wheel plates are capable of sliding along the first slide rail mechanism so as to be spliced with or separated from each other. For example, as shown in
a securing mechanism configurable to secure the two wheel plates to a mutually spliced state.
In conjunction with
It is additionally noted that as shown in
It is seen that the left wheel plate 11 may slide along the first left rail portion 311 via the first left rotating shaft 321, the right wheel plate 12 may slide along the first right rail portion 312 via the first right rotating shaft 322; meanwhile, as the first left rotating shaft 321 and the first right rotating shaft 322 are both of an axial body, the left wheel plate 11 may flip relative to the first connecting element 4 about the first left rotating shaft 321 as an axial center, and the right rotating shaft may flip relative to the first connecting element 4 about the first right rotating shaft 322 as an axial center.
It is noted that to minimize the space occupied by the folded wheel body 1, the two wheel plates in this embodiment are provided to have a semi-circular shape with the same size, such that after the wheel body 1 is folded, the two wheels are symmetrical, avoiding occupation of more space due to additional projection in a single side direction. Of course, the two wheel plates may have fine differences in shape and size, which are not limited to the exemplary identical shape and size in this embodiment.
Additionally, because the two wheel plates have the same shape and size in this embodiment, the first connecting element 4 is disposed in the middle of the wheel body 1, such that the bicycle shaft runs through the central position of the first connecting element 4 to drive the wheel body 1 to rotate.
In addition, as shown in
After the two wheel plates are spliced, a securing mechanism is used to lock the two wheel plates so as to avoid the potential risk caused by possible splitting of the wheel body 1 during riding The securing mechanism may be implemented in various manners, including clamping, screwing, etc. With screwing as an example, two semi-circular projections may be provided on the two wheel plates, respectively, wherein a threaded hole is provided on each semi-circular projection, the threaded holes being staggered in thickness direction of the wheel plates. When the two wheel plates are spliced, the threaded holes in the two semi-circular projections coincide in the thickness direction, such that the user may lock the two wheel plates by inserting a bolt through both of the threaded holes.
To guarantee securing firmness, in this embodiment, two locking portions are provided on each wheel plate, respectively, wherein the two locking portions are symmetrical relative to the axial center of the wheel body 1. Of course, the securing mechanism may also be provided in other manners than an exemplary clamping ring employed in this embodiment, which is not limited herein.
It is further noted that when folding the wheel body, the left wheel plate 11 rotates about the first left rotating shaft 321, and the right wheel plate 12 rotates about the first right rotating shaft 322; however, because the first left rotating shaft 321 and the first right rotating shaft 322 are disposed at the same side of the first connecting element 4, the folding wheel may further comprise a second slide rail mechanism so as to ensure flipping stability of the wheel body.
Specifically, as illustrated in
The second rail groove 33 may include: a second left rail portion 331 provided on an inner wall of the notch 21 of the left wheel plate 11, and a second right rail portion 332 provided on an inner wall of the notch 21 of the right wheel plate 12. Two second rotating shaft 34 are formed: a second left rotating shaft 341 and a second right rotating shaft 342, respectively, such that the second left rotating shaft 341 may be slidably inserted into the second left rail portion 331 and the second right rotating shaft 342 may be slidably inserted into the second right rail portion 332.
It is noted that the second left rotating shaft 341 and the first left rotating shaft 321 may be coaxially arranged, and the second right rotating shaft 342 and the first right rotating shaft 322 may be coaxially arranged. With such arrangements, when the left wheel plate 11 is sliding, the first left rotating shaft 321 and the second left rotating shaft 341 slide synchronously so as to maintain balanced; and it is also the case for the right wheel plate 12, thereby avoiding sideslip of the wheel plates during sliding.
Meanwhile, when rotating, the left wheel plate 11 may rotate about the axial line common to the first left rotating shaft 321 and the second left rotating shaft 341. The first left rotating shaft 321 and the second left rotating shaft 341 guarantee rotating stability of the left wheel plate 11, so is the case for the right wheel plate 12.
In addition, as illustrated in
As illustrated in
To ensure sliding trajectory of the two wheel plates, as illustrated in
As illustrated in
When the first stop structure is provided in the first rail groove 31, the length of the first leading strip 71 is limited, wherein when the two wheel plates are spliced, the distance between the first left stop block 61 and the first right stop block 62 is referred to as a first preset length. Apparently, to guarantee normal splicing of the two wheel plates, the length of the first leading strip 71 cannot be greater than the first preset length. In this embodiment, the length of the first leading strip 71 is equal to the first preset length, such that after the two wheel plates are spliced, two ends of the first leading strip 71 abut against the first left stop block 61 and the second right stop block 64, respectively, further improving stability of the spliced two wheel plates. In conjunction with
The second embodiment of the present application is an improvement to the first embodiment. The main improvement lies in that in the second embodiment of the present application, as illustrated in
As illustrated in
a plate body 9 including two fixation plates that can be spliced with each other, wherein the plate body 9 is configured for securing the wheel body 1, a second fixation hole 96 being provided on the plate body 9; a second split semi-hole 94 is provided for each fixation plate at the side facing the other fixation plate, such that when the two fixation plates are spliced with each other, the two second split semi-holes 94 are spliced to form a second split hole 95; a receiving space 93 is formed when the two fixation plates are spliced; wherein a second connecting element 8 is provided in the receiving space 93, configured for connecting the two fixation plates;
a third slide rail mechanism configured for guiding splicing of the plate body 9, wherein the third slide rail mechanism is at least partially disposed on the second connecting element 8, while remaining parts thereof are disposed on respective fixation plates; as illustrated in
a pivoting axis, which passes through respective central portion of the first connecting element 4 and the second connecting element 8 so as to be connected to the wheel axle of the bicycle, wherein the first connecting element 4 is rotatable relative to the second connecting element 8 along the pivoting axis;
a fourth slide rail mechanism disposed opposite to the third slide rail mechanism; with reference to
an insert 10 shown in
As illustrated in
Two third rotating shafts 36 may be formed: a third left rotating shaft 361 and a third right rotating shaft 362, respectively, wherein the third left rotating shaft 361 and the third right rotating shaft 362 are disposed at two ends of the third connecting element on the same side, respectively, and are arranged to face each other along the direction of splicing the two fixation plates. The third left rotating shaft 361 may be slidably inserted into the third left rail portion 3; and the third right rotating shaft 362 may be slidably inserted into the third right rail portion 352. Likewise, two fourth rotating shaft 38 may be provided: a fourth left rotating shaft 381 coaxial with the third left rotating shaft 361, and a fourth right rotating shaft 382 coaxial with the third right rotating shaft 362, respectively. Similar to the third rotating shaft 36, the fourth left rotating shaft 381 and the fourth right rotating shaft 382 may also be slidably inserted into the fourth left rail groove 371 and the fourth right rail groove 372, respectively. Meanwhile, the left fixation plate 91 may flip relative to the third connecting element about the respective axial center of the third left rotating shaft 361 and the fourth left rotating shaft 371, and the right fixation plate 92 may flip relative to the third connecting element about respective axial center of the third right rotating shaft 362 and the fourth left rotating shaft 371, such that the securing mechanism may always be positioned on the wheel plates so as to lock the spliced wheel plates.
It is noted that as illustrated in
With reference to
To use the bicycle, the user needs to first splice the wheel plates and secure the wheel plates with the securing mechanism, and then rotates the plate body 9 with the second connecting element 8. With reference to
To ensure securing firmness, as illustrated in
As illustrated in
The third stop structure may include: a third left stop block 65 disposed in the third left rail portion 3, and a third right stop block 66 disposed in the third right rail portion 352. The fourth stop structure may include: a fourth left stop block 67 disposed in the fourth left rail portion 371, and a fourth right stop block 68 disposed in the fourth right rail portion 372.
Similar to the first stop structure, the third stop structure is arranged for avoiding disengagement of the third rotating shaft 36 from the third rail groove 35, and the fourth stop structure is arranged for avoiding disengagement of the fourth rotating shaft 38 from the fourth rail groove 37. Similar to the first leading strip 71, the third leading strip 73 and the fourth leading strip 74 are arranged to guide splicing of the two fixation plates and improve post-splicing stability.
To enhance stability of splicing the wheel body 1 and the plate body 9, when the two wheel plates are spliced, the first connecting element 4 and the two wheel plates are mutually clamped; and when the two fixation plates are spliced, the second connecting element 8 and the two fixation plates are mutually clamped.
In view of the above, in this embodiment, as illustrated in
The securing mechanism in this embodiment offers advantages of secure fixation and easy operation; meanwhile, the fitting and fixation between the plate body 9 and the wheel body 1 may increase rigidity of the folding wheel in use, further enhancing stability of the folding wheel during riding.
The third embodiment of the present disclosure is substantially identical to the second embodiment. A main difference lies in that in the second embodiment, the first rotating shaft and the third rotating shaft are staggered, such that the fixation plates and the wheel plates can only be flipped towards the direction of the first rotating shaft; however, in this embodiment, as illustrated in
When the left fixation plate 91 rotates towards the direction of the first left rotating shaft 32, and the left rotating plate 11 rotates synchronously with the left fixation plate 91, the rotating left fixation plate 91 contacts with the first left rotating shaft 321, pushing the first left rotating shaft 321 to slide in the first slideway 41, such that the left fixation plate 91 may rotate smoothly, realizing synchronous flipping with the left rotating plate 11.
To use the folding wheel, it is needed to resume the folding wheel from the folded position to the original position, wherein the left wheel plate 11 needs to be flipped till being in flush with the first connecting element 4, and the left fixation plate 91 needs to be flipped till being in flush with the second connecting element 8; when the left fixation plate 91 and the left wheel plate 11 are flipping synchronously, the left wheel plate 11 pulls the first left rotating shaft 321 via a groove wall of the first left rail portion 311, and the first left rotating shaft 321 slides in the first slideway 41 till the position aligned with the third left rotating shaft 361, thereby guaranteeing that the left wheel plate 11 and the left fixation plate 91 may move synchronously in the splicing direction. Likewise, rotating of the right fixation plate 92 towards the first right rotating axis 322 also pushes the first right rotating shaft 322 to slide in the first slideway 41; when being flipped to the original position, the right wheel plate 12 pulls the first right rotating shaft 322 via a groove wall of the first right rail portion 312 to slide in the first slideway 41 till being aligned with the third right rotating shaft 362, thereby guaranteeing that the right wheel plate 12 and the right fixation plate 92 may move synchronously in the splicing direction.
It is noted that to enable the fixation plates and the wheel plates to flip towards any direction, a second slideway 81 may be provided on the second connecting element 8 along the direction in which the two fixation plates are spliced with each other, wherein the second slideway 81 is provided on the second connecting element 8 at the side where the third left rotating shaft 361 and the third right rotating shaft 362 are disposed.
When the left wheel plate 11 rotates towards the direction of the third left rotating shaft 361, and the left wheel plate 11 rotates synchronously with the left fixation plate 91, the rotating left wheel plate 11 contacts with the third left rotating shaft 361, pushing the third left rotating shaft 361 to slide in the second slideway 81, such that the left wheel plate 91 may rotate smoothly, realizing synchronous flipping with the left fixation plate 91.
With arrangement of the first slideway 41 and the second slideway 81, the folding wheel in this embodiment ensures a smooth rotation when the wheel plates and the fixation plates rotate synchronously, which avoids occurrence of jamming or flipping obstruction when folding the wheel body 1, thereby guaranteeing smooth folding and improving operation friendliness.
The fourth embodiment of the present application is further improvement of the second embodiment or the third embodiment. The main improvement lies in that the insert 10 is inserted into the second split hole 95 and the first fixation hole 13, but not in a conventional manner. Specifically, in the fourth embodiment of the present application, as illustrated in
a knob fastener 101, an insert head 102, a spring 103, a connecting element 104, a first knob casing 105, and a second knob casing 106;
wherein the insert head 102 is secured on the knob fastener 101 via the connecting element 104, and a spring 103 is disposed between the insert head 102 and the knob fastener 101;
the first knob casing 105 is secured on the first fixation hole 13, the second knob casing 106 is secured on the second split hole 95; and a hole with a shape matched with the insert head 102 is provided on each of the first knob casing 105 and the second knob casing 106;
the inset head 102 runs sequentially through the holes provided on the first knob casing 105 and the second knob casing 106 till being disposed at the side of the second knob casing 106 opposite to the first knob casing 105;
the knob fastener 101 is disposed at the side of the first knob casing 105 opposite to the second knob casing 106, and the spring 103 abuts against the first knob casing 105.
As the knob fastener 101 is rotating, the insert head 102 is brought to rotate, causing the insert head 102 to be misaligned from the holes. At this point, pushed by the spring 103 abutting against the first knob casing 105, the knob fastener 101 moves away from the first knob casing 105. However, because the connecting element 104 connects the knob casing 101 and the insert head 102, when the insert head 102 is misaligned from the holes, it is obstructed by the second knob casing 106, thereby simultaneously fastening the insert head 102 and the knob fastener 101.
The spring 103 not only serves to fasten, but also may provide enough friction so as to prevent the knob fastener 101 from rotating freely under a non-external force. As such, the insert 10 provided by the embodiments of the present application not only offers a good fastening effect, but also may implement quick installation and quick disassembly.
The connecting element 104 may be a screw or a linkage that implements connection via snap-fitting, or welding. The first knob casing 105 and the second knob casing 106 may be fixed using a fixing ring 107 or some other similar securing mechanisms.
Further optionally, a recess may be provided on the first knob casing 105, wherein the knob fastener 101 and the spring 103 are disposed at the side where the recess is provided. The recess arranged as such can better limit the spring 103, playing a protective role.
In practical use, as illustrated in
With reference to
This embodiment relates to a portable appliance, including the folding wheel according to any one of the first to fourth embodiments. The portable appliance also achieves the same technical effect as any of the above embodiments.
Apparently, the folding wheel provided by the embodiments of the present application is not limited to be applied to bicycles. The portable appliance according to the present application may not only refer to a bicycle, but also may refer to a wheeled portable appliance such as a wheelchair, monocycle, or even kids' bikes, or even refer to various kinds of wheeled mobile toys. Any demand on portability and foldability may apply the folding wheel to achieve a reliable portable effect.
Those of normal skill in the art may understand that many technical details provided in the various embodiments above are only for readers to understand better. However, the technical solutions as claimed in the claims of the present application may be still implemented substantially even without these technical details or various changes and modifications of the embodiments above. Therefore, in actual applications, various alternations to the embodiments may be done in aspects of forms and details without departing from the spirit and scope of the present disclosure.
Number | Date | Country | Kind |
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201910882060.3 | Sep 2019 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/115741 | 9/17/2020 | WO |