STAIR LIFT
20210393458 · 2021-12-23
Inventors
Cpc classification
A61G5/06
HUMAN NECESSITIES
International classification
Abstract
A stair lift, including: a carrier portion, configured for carrying a person or an object; a lift portion, configured for moving relative to the carrier portion; and a driver mechanism, configured for inducing the relative movement. The carrier portion and the lift portion are connected and supported via a guide mechanism, and are configured for freely translating along an X-Z plane relative to each other. The driver mechanism includes a circulation moving mechanism, and the circulation moving mechanism includes a driving pin (moving member), configured for moving along a predetermined closed track under the driving of a single gear motor. The driving pin (moving member) is connected to the lift portion, such that the carrier portion and the lift portion are configured for moving relative to each other along the track, whereby enabling the stair lift to go upstairs or downstairs.
Claims
1. (canceled)
2. (canceled)
3. (canceled)
4. (canceled)
5. (canceled)
6. (canceled)
7. A stair lift, comprising: a carrier portion; a lift portion; a driver mechanism, provided with a single driver source; an up-down directional moving mechanism, configured for inducing a relative movement between the carrier portion and the lift portion in an up-down direction; a front-rear directional moving mechanism, configured for inducing a relative movement between the carrier portion and the lift portion in a front-rear direction; a first locking means, configured for locking the up-down directional moving mechanism; and a second locing means, configured for locking the front-rear directional moving mechanism; wherein the up-down directional moving mechanism and the front-rear directional moving mechanism are respectively driven by different output forms of the driver mechanism; the first locking means and the second locking means are alternately locked, and at the same time, the driver mechanism sequentially moves the carrier portion and the lift portion relative to each other in the front-rear direction or the up-down direction, such that the lift portion and the carrier portion perform translational movements relative to each other along a closed circulation motion track with constant postures, whereby going upstairs or downstairs.
8. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0045] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings that need to be used in the description of the embodiments or the prior art will be briefly described hereinbelow. Obviously, the accompanying drawings in the following description are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without creative work.
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[0071] In the drawings, the following reference numerals are adopted:
[0072] 1: Stair lift; 2: Carrier portion; 3: Lift portion; 3a: Bottom plate; 3b: Support; 3c: Lifting auxiliary arm; 4: Driver mechanism; 5: Guide mechanism; 5a: Longitudinal rail; 5b: Longitudinal slider; 5c: Horizontal rail; 5d: Horizontal slider; 5f: Slider connector; 6: Main plate; 7: Gear motor (driver source); 8: Circulation moving mechanism; 12: Brake crank; 13: Brake wheel; 14: Caster; 15: Rachet; 16: Rotational shaft; 19: Fixation handle; 22: Rollers; 23, 24: Baffle; 30: Transmission chain; 40: Toothed belt (belt with teeth); and 91: Stair.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0073] In order to make the purposes, technical solutions, and advantages of the present application clearer and more understandable, the present application will be further described in detail hereinafter with reference to the accompanying drawings and embodiments. It should be understood that the embodiments described herein are only intended to illustrate but not to limit the present application.
[0074] It should be noted that when an element is described as “fixed” or “arranged” on/at another element, it means that the element can be directly or indirectly fixed or arranged on/at another element. When an element is described as “connected” to/with another element, it means that the element can be directly or indirectly connected to/with another element.
[0075] It should be also noted that the same or similar reference numerals are used to refer to the same or similar elements. It should be understood that terms “length”, “width”, “upper”, “left”, “right”, and the like indicating orientation or positional relationship are based on the orientation or the positional relationship shown in the drawings, and are merely for facilitating and simplifying the description of the present application, rather than indicating or implying that a device or component must have a particular orientation, or be configured or operated in a particular orientation, and thus terms indicating the positional relationship are only used for exemplary illustration, instead of limiting the application. For those ordinary skills in the art, specific meanings of the above terms may be understood according to specific circumstances.
[0076] Moreover, the terms “first” and “second” are adopted for descriptive purposes only and are not to be construed as indicating or implying a relative importance or implicitly indicating the number of technical features indicated. Thus, features prefixed by “first” and “second” will explicitly or implicitly represent that one or more of the referred technical features are included. In the description of the present application, the meaning of “a plurality of” or “multiple” is two or more unless otherwise specifically defined.
[0077] The stair lift 1 as an example of an embodiment of the present application will be described hereinbelow with reference to the drawings. Here, it should be noted that, in order to facilitate the understanding of the drawings, the sizes and dimensions in some drawings are exaggerated and may not match the actual apparatus. In addition, each drawing shows the part that has been indicated by reference numerals; and in some of the drawings, a thin line represents a closed circulation motion track, and a black dot on the thin line represents a driving pin (described hereinbelow), rather than a specific constituent elements or parts. In addition, dash-dotted lines indicate different positions of moving parts.
Configuration of Stair Lift
[0078] As shown in
[0079] The carrier portion is a frame (box-shaped) structure which is open in both a front face and a bottom face. In the meanwhile, in
[0080] Casters 14 which are movable in all directions are disposed at a lower portion of the carrier portion 2 close to four corners. As a result, when the stair lift 1 is walking on a step surface of a non-linear stair, a moving direction thereof can be simply changed as needed. In addition, a rachet 15 is in fixed connection at an inner side of at least one of the casters 14. Further, a brake crank 12 in a general L-shape is provided thereon with pawls 28 configured to mesh with the rachet, the brake crank 12 is pivotally supported by a rotational shaft 16 at one end, while the other end of the brake crank 12 is provided with a brake wheel 13. The braking mechanism is as follows: in case that a traveling surface or the step surface of the stair 91 fails to provide a sufficient support (for example, when the casters 14 are raised), the brake wheel 13 will move downwards, the brake arm 12 will in turn move downwards, causing the pawls 28 meshing with the ratchet 15 whereby locking the corresponding caster 14. However, even in the braking state, the rotation of the caster 14 that causes the forward movement (the forward direction when going upstairs, or the backward direction when going downstairs) of the stair lift apparatus is not locked. Such braking mechanism prevents the stair lift from rolling unintentionally, in the meanwhile, the opportunity to go downstairs can be determined.
[0081] In addition, in the carrier portion 2, a main plate 6 along an X-Z plane is fixedly arranged at a position near the middle of a right-left direction of the carrier portion. Moreover, the main plate 6 is fixed on both lateral sides of the carrier portion 2, instead of being fixed on the bottom plate 3a as described hereinafter.
[0082] The lift portion 3 is configured in such a way that most of the lift portion 3 may be accommodated within the carrier portion 2. The lift portion 3 includes: a rectangular bottom plate 3a, being slightly smaller than a bottom opening of the carrier portion 2; a support 3b, erected on the rectangular bottom plate 3a; an lifting auxiliary arm 3c, installed on the support 3b and configured to slide in an up-down direction along the support 3b; and a fixation handle 19, configured for locking the lifting auxiliary arm 3c at a designated position whereby preventing the lifting auxiliary arm 3c from moving in the vertical direction.
[0083] The carrier portion 2 and the lift portion 3 are configurations that can be freely translated along the X-Z plane relative to each other through the support connection of the guide mechanism 5. More specifically, a longitudinal rail 5a is arranged on one side of the main plate 6 along the up-down direction; and the longitudinal rail 5a is provided with a longitudinal slider 5b, configured to slide along the longitudinal rail 5a. On the other hand, the bottom plate 3a is provided with a horizontal rail 5c along a front-rear direction; and the horizontal rail 5c is provided with a horizontal slider 5d, configured to slide along the horizontal rail 5c. The longitudinal slider 5b and the horizontal slider 5d are connected by a slider connector 5f. As a result, through the guide mechanism 5, it is possible for both the main plate 6, which is fixed on two sides of the carrier portion 2, and the bottom plate 3a, which is a component of the lift portion 3, to realize the freely translational movement in the up-down direction and the front-rear direction (that is, along the XZ plane). In other words, through the guide mechanism 5, the carrier portion 2 and the lift portion 3 can be installed together in a manner that the relative postures thereof do not change, that is, without relative rotation, and only transitional movement occurs relative to each other.
[0084] The driver mechanism 4 is a mechanism to induce the above-mentioned translational movement, and comprises a gear motor (driver source) 7 and the circulation moving mechanism 8. In this embodiment, the gear motor is installed next to one side of the main plate 6.
[0085] The circulation moving mechanism 8 is embedded in the main plate 6. For facilitating the understanding of the configuration of the circulation moving mechanism 8, some of the components including the main plate 6 are taken out and shown in
[0086] As a result of such a configuration, when the sprockets 21 and 27 rotate synchronously, the rollers 22 meshing with the sprockets 21 and 27 move cyclically in a manner of being sequentially pushed out along the guide slot (fixed and closed track) 26. In such condition, a specific one of the plurality of the rollers 22 is coaxially connected to a driving pin (moving member) 20, and the driving pin 20 is connected at the pillar 3b, which is a component of the lift portion 3, near an upper end of the pillar 3b. As a result, as the driving pin 20 circulates, the lift portion as a whole moves along a track of the guide slot 26 relative to the carrier portion 2, that is, transitional movement.
Lifting Action of the Stair Lift
[0087] Actions of going upstairs of the stair lift 1 whose configuration has been described in the above will be described hereinbelow with reference to
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[0089] Also,
[0090] Next, as shown in
[0091] As the driving pin 20 continues moving in the clockwise direction, as shown in
[0092] Then, as shown in
[0093] Next, as shown in
[0094] Finally, as shown in
[0095] Then, the action of going upstairs onto another next step is carried out, however, when a width of the step surface of the stair is greater than a shift in the front-rear direction of the track (the guide slot 26) (the left-right direction as indicated in
[0096] In addition, the action of going downstairs (descending) is a reverse sequence of the aforementioned actions of going upstairs. The stair lift moves forward through the front and rear casters 14, and the time when the brake wheel 13 traverses the steps and falls is the opportunity of descending. In case that the opportunity of descending is required to be automatically detected, it is a good choice to install a sensor configured to detect the falling of the brake wheel 13.
[0097] The embodiment as described in the above corresponds to claims 1-2. The embodiment comprises: a carrier portion 2, configured for carrying a person or an object; a lift portion 3, configured for moving relative to the carrier portion 2; and a driver mechanism 4, configured for inducing the relative movement. The carrier portion 2 and the lift portion 3 are connected and supported via a guide mechanism 5, and are configured for freely translating along an X-Z plane relative to each other. The driver mechanism 4 includes: a single gear motor (driver source) 7 and a circulation moving mechanism 8; and the circulation moving mechanism 8 includes a driving pin (moving member) 20, which is configured for moving along a predetermined closed track guide slot 26 under the driving of the single gear motor (driver source) 7. The driving pin 20 is connected to the lift portion 3, such that the carrier portion 2 and the lift portion 3 are configured for moving relative to each other along the track, whereby enabling the stair lift to go upstairs or downstairs.
[0098] Herein, the circulation moving mechanism 8 comprises: a guiding slot 26 arranged along the track; a plurality of rollers (cylinders or stepped cylinders) 22, vertically arranged in a row, with one end of each roller in an axis direction being inserted into the guide slot 26 and configured for circulating along the guide slot 26; and two sprockets 21 and 27, configured for acquiring a driving force from the gear motor 7, whereby rotating and meshing with outer peripheries of the rollers 22. Through the rotation of the sprockets 21 and 27, the rollers 22 circulate along the guide slot 26, in the meanwhile, a specific one of the rollers 22 is connected to the driving pin 20 which serves as the moving member.
[0099] Based on such configuration, the carrier portion 2 and the lift portion 3 can circulate along the track relative to each other with constant postures, and perform the translational movement, thereby going up or down the stair. In addition, because the driver mechanism 4 that includes the circulation moving mechanism 8 only needs one gear motor as the driver source, as well as only one drive shaft, the control of the driver mechanism 4 can be easily carried out, and therefore, the stair lift with a simple structure can be realized.
[0100] In addition, in the above embodiment, in the movement of the carrier portion 2 during the actions of going upstairs or downstairs of the stair lift, the stair lift 1 is supported by the bottom plate 3a and the lifting auxiliary arm 3c of the lift portion 3 to traverse two step surfaces. In this way, the going upstairs or downstairs of the stair lift can be realized by keeping a normal state (horizontal state) thereof without requiring special means, thereby achieving the purpose of improved safety.
[0101] In addition, the above embodiments are not only applicable to linear stairs, but also applicable to non-linear stairs. Since it is the step surface, rather than the edge of the step surface, that is used as a supporting base surface of the apparatus, this is advantageous in preventing the stairs from being damaged during the going upstairs or downstairs of the stair lift.
[0102] In addition, the circulation moving mechanism 8 is not restricted to the above-described configuration example, but can also adopt other structures as described hereinbelow. In other configurations of the circulation moving mechanism 8 as described hereinbelow, only the circulation moving mechanism 8 is taken out for illustration. It should also be noted that parts with configurations or functions similar to those described in embodiment 1 are labeled by the same reference numerals, and repeated descriptions have been deleted.
[0103] The circulation moving mechanism 8 as shown in
[0104] The circulation moving mechanism 8 as shown in
[0105] The circulation moving mechanism 8 as shown in
[0106] The circulation moving mechanism 8 as shown in
[0107] The circulation moving mechanism 8 as shown in
[0108] The circulation moving mechanism 8 as shown in
[0109] The circulation moving mechanism 8 as shown in
[0110] The circulation moving mechanism 10 as shown in
[0111] The circulation moving mechanism 9 as shown in
[0112] Regarding the guide mechanism 5, two mechanisms (including those of similar type of mechanism) are chosen from: the linear guide mechanism which is classified as a moving pair, the translational moving mechanism which utilizes a motion track of the connection rod in the parallel crank mechanism, and an approximate linear guide mechanism which utilizes an approximate linear motion track of one point on a swing arm with a very small swing angle range, so as to constitute the guide mechanism of the present application. In addition, if the parallel crank mechanism is used as the circulation moving mechanism, since such mechanism also functions as the guide mechanism, the guide mechanism can be the same parallel crank mechanism. When the guide mechanism as shown in
[0113] In order to improve the safety of the stair lift implemented by the above embodiments and various deformations, no matter the carrier portion or the lift portion is in a supported state, from the view of increasing the front-rear distance of the support surface, a desired motion track of the circulation moving mechanism is a quadrilateral motion track, however, closed tracks of other types, such as in a circle or an approximate triangle, may also be possible. For example, if a circular motion track is used, the stair lift can be constructed with a simpler structure. If an approximate triangle motion track is used, compared with a quadrilateral motion track, for the stair of the same size, it is possible to perform the going upstairs or downstairs efficiently due to the shortened length of the motion track.
Other Configurations of the Stair Lift
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[0115] The driver mechanism 230 of this embodiment includes: a gear motor 231, a first gear 232, and a second gear 233, which belong to a driver source, and a bracket 234 that supports the gear motor 231. The gear motor has a body part and an output shaft, and the body part is pivotally supported by the bracket 234 (the body part itself is supported by a pivot that can rotate on the same axis as the output shaft). The first gear 232 is installed on the output shaft, and the second gear 233 is installed on the body part.
[0116] An up-down directional moving mechanism 240 includes: an up-down rack 241; an up-down rail 207; an up-down slider 208; a first support plate 242; and a first locking mechanism 243. The first support plate 242 is fixedly connected to a lift portion 203, the up-down rail 207, and the up-down rack 241. The up-down rack meshes with the first gear 232. In addition, the up-down rail 207 and the up-down slider 208 constitute a moving pair.
[0117] A front-rear directional moving mechanism 250 includes: a front-rear rack 251; a front-rear rail 210; a front-rear slider 211; a second support plate 252; and a second locking mechanism 253. The second support plate 252 is fixedly connected with the carrier portion 202, the front-rear rail 210, and the front-rear rack 251. The front-rear rack 251 meshes with the second gear 233. In addition, the front-rear rail 210 and the front-rear slider 211 form a moving pair.
[0118] When the up-down directional moving mechanism 240 is driven, the second locking mechanism 253 provided at one side of the front-rear directional moving mechanism 250 operates to restrict the rotation of the second gear 233, in the meanwhile, the first locking mechanism 243 provided at one side of the up-down directional moving mechanism 243 is unlocked. As a result, under the driving of the gear motor 231, the first gear 232 rotates and drives the up-down directional moving mechanism 240. And the carrier portion 202 and the lift portion 203 move in the up-down direction relative to each other under the driving of the up-down directional moving mechanism 240.
[0119] When the front-rear directional moving mechanism 250 is driven, the second locking mechanism 253 is unlocked, and at the same time the first locking mechanism 243 provided at one side of the up-down directional moving mechanism 240 operates to restrict the rotation of the first gear 232. As a result, under the driving of the gear motor 231, the body part of the gear motor 231 rotates, and the second gear 233 rotates accordingly. As a result, the front-rear directional moving mechanism 250 is driven. And the carrier portion 202 and the lift portion 203 move in the front-rear direction relative to each other under the driving of the front-rear directional moving mechanism 250.
[0120] At the same time, in this embodiment, a pair of stair step height detection means 260 are arranged at both the left and the right on an upper front part of the carrier portion 202. The stair step height detection means 260 can use an optical sensor or the like. In addition, contact sensors 203s are arranged at the left and right of a bottom surface of the bottom plate 203a of the lift portion 203.
[0121] Here, by referring to
[0122] Also, when the stair lift 201 of the second embodiment goes downstairs, the contact sensors 203s installed on the bottom surface of the bottom plate 203a of the lift portion 203 detect the contact with the next step surface to determine the opportunity to switch from the up-down directional movement to the front-rear directional movement of the stair lift 201. In this way, both the up-down directional movement and the front-rear directional movement are realized, depending on different output forms of the driver mechanism configured with a single driver source, so that it is possible to provide a compact stair lift.
[0123] In addition, the first locking mechanism 243 and the second locking mechanism 253 in the second embodiment may not be two independent locking mechanisms. For example, a locking mechanism with at least two or more locking actions is also possible, for example, a locking mechanism with different locking actions occurring at different moving positions of the same actuator; and a locking mechanism where the elastic force of an electromagnet and an elastic member are used, and two locking actions are triggered by an ON state and an OFF state of the electromagnetic, etc.
[0124] As described above, the stair lift 201 of the second embodiment includes: a carrier portion 202, configured to carry people or things; a lift portion 203; a driver mechanism 230, provided with a gear motor 231 as a single driver source; an up-down directional moving mechanism 240, configured for inducing a relative movement between the carrier portion 202 and the lift portion 203 in an up-down direction; a front-rear directional moving mechanism 250, configured for inducing a relative movement between the carrier portion 202 and the lift portion 203 in a front-rear direction; a first locking mechanism 243, configured for locking the up-down directional moving mechanism 240 and belonging to a first locking means; and a second locking mechanism 253, configured for locking the front-rear directional moving mechanism 250 and belonging to a second locking means. The up-down directional moving mechanism 240 and the front-rear directional moving mechanism 250 are respectively driven by different output forms of the driver mechanism 230, in order to alternately lock the first locking mechanism 243 belonging to the first locking means and the second locking mechanism belonging to the second locking means, and at the same time, the driver mechanism 230 sequentially moves the carrier portion 202 and the lift portion 203 relative to each other in the front-rear direction or the up-down direction. The lift portion 203 and the carrier portion 202 perform translational movements relative to each other along a closed circulation motion track with constant postures, whereby going upstairs or downstairs.
[0125] Here, the different output forms of the driver mechanism mentioned in the second embodiment above are as follows. Since the necessary movements in the above-mentioned second embodiment are two independent movements in the up-down direction and the front-rear direction, the driver mechanism is required to have two different output forms. Based on this, the “different output forms of the driver mechanism” mentioned here means that for a driver mechanism where the relative movement between the components becomes uncertain once the degree of freedom of a moving pair contained therein increases by one, a determined output motion will be different when different one degree of freedom is restricted. The present application is not limited to the above-mentioned second embodiment. Various modified embodiments can be implemented within the scope of the present application including the different output forms of the driver mechanism. For example, in addition to the driver mechanism that uses the main body and the drive shaft of the gear motor in a relative driving relationship with one being fixed and the other outputting so as to output two different output forms; other driver mechanisms may be exemplified one by one, for example, a driver mechanism that adopts a planetary gear mechanism (wave gear mechanism), in which, one of the sun gear, the internal gear, and the planetary gear is used as the input end, and the rotation of one of the remaining two gears is used as the output end, thereby having two different output forms; a driver mechanism which adopts a screw mechanisms with different output forms caused by nut rotation or movement; a driver mechanism that adopts a linear moving mechanism, including a rack and a pinion, and possessing two different output forms due to the linear movement of the rack or the linear movement of the pinion; and a driver mechanism that also adopts a linear movement mechanism formed by a rack and a pinion, with the rack provided with double linear guides, thereby possessing two different output forms by fixing any one of the double linear guides.
[0126] The above are only preferred embodiments of the present application and are not intended to limit the present application. For those skilled in the art, the present application may have various modifications and changes. Any modification, equivalent replacement, improvement, etc., made within the spirit and principle of the present application should be included within the scope of the claims of the present application.