Mechanism, assembly and sheet material dispenser for manually actuating rotation of a roller
11179011 · 2021-11-23
Assignee
Inventors
Cpc classification
International classification
Abstract
A mechanism is provided for manually actuating rotation of a roller of a sheet material dispenser for dispensing a predetermined length of sheet material. The mechanism includes a frame member; a driven member configured for coupling with the roller; an actuating member configured to rotate about a rotation axis in a first direction through manual actuation by a user; and a driver member coupled with the actuating member. The rotation axis is movably mounted on the frame member to be movable between a first position allowing rotation of the roller caused by rotation of the actuating member in the first direction, and a second position preventing rotation of the roller caused by rotation of the actuating member in the first direction. The mechanism includes a first urging member configured to urge the rotation axis in the first position. A related assembly and dispenser including the mechanism are also provided.
Claims
1. A mechanism for manually actuating rotation of a roller of a sheet material dispenser for dispensing a predetermined length of sheet material, said mechanism comprising: a frame member configured for attachment to a housing of the dispenser; a driven member configured for coupling with the roller; an actuating member configured to rotate about a rotation axis in a first direction through manual actuation by a user; a driver member coupled with the actuating member; wherein the rotation axis is movably mounted on the frame member so as to be movable between a first position in which the driver member and the driven member are connected to one another to allow rotation of the roller caused by rotation of the actuating member in the first direction, and a second position in which the driver member and the driven member are disconnected from one another to prevent rotation of the roller caused by rotation of the actuating member in the first direction, and wherein the mechanism comprises a first urging member configured to urge the rotation axis in the first position.
2. The mechanism of claim 1, wherein the rotation axis is movably mounted directly on the frame member.
3. The mechanism of claim 2, wherein: the rotation axis is slidably movable between the first and second positions, the rotation axis is arranged to move between the first and second positions along a trajectory contained in a plane perpendicular to an orientation of the rotation axis in the first position, the first position is arranged to be closer to the driven member than is the second position, and wherein the actuating member is arranged to rotate away from the driven member when rotating in the first direction, the first urging member comprises at least one spring, the driven member comprises a first gear member, wherein the driver member comprises a second gear member, and wherein the driven member and driver member are respectively connected to and disconnected from one another through a meshing engagement movement and a meshing disengagement movement of the second gear member relative to the first gear member, the driver member and the actuating member are rigidly coupled to one another in rotation, the driver member and the actuating member are formed as separate elements or are integrally formed as a single element, and the first urging member is further configured to urge the actuating member in a second direction of rotation opposite the first direction.
4. The mechanism of claim 1, comprising a mobile member through which the rotation axis is movably mounted on the frame member.
5. The mechanism of claim 4, wherein one of the mobile member and frame member comprises a guided portion, and the other one of the mobile member and frame member comprises a guiding portion configured to cooperate with the guided portion to guide movement of the mobile member between the first and second positions.
6. The mechanism of claim 5, wherein: the rotation axis is slidably movable between the first and second positions, the rotation axis is arranged to move between the first and second positions along a trajectory contained in a plane perpendicular to an orientation of the rotation axis in the first position, the first position is arranged to be closer to the driven member than is the second position, and wherein the actuating member is arranged to rotate away from the driven member when rotating in the first direction, the first urging member comprises at least one spring, the at least one spring includes a first end arranged to contact a surface of the frame member, and a second end arranged to contact a surface of the mobile member, the driven member comprises a first gear member, wherein the driver member comprises a second gear member, and wherein the driven member and driver member are respectively connected to and disconnected from one another through a meshing engagement movement and a meshing disengagement movement of the second gear member relative to the first gear member, the driver member and the actuating member are rigidly coupled to one another in rotation, the driver member and the actuating member are formed as separate elements or are integrally formed as a single element, the first urging member is further configured to urge the actuating member in a second direction of rotation opposite the first direction, and the mechanism further comprising a second urging member distinct from the first urging member and configured to urge the actuating member in a second direction of rotation opposite the first direction.
7. The mechanism of claim 1, wherein the rotation axis is slidably movable between the first and second positions.
8. The mechanism of claim 1, wherein the rotation axis is arranged to move between the first and second positions along a trajectory contained in a plane perpendicular to an orientation of the rotation axis in the first position.
9. The mechanism of claim 1, wherein the first position is arranged to be closer to the driven member than is the second position, and wherein the actuating member is arranged to rotate away from the driven member when rotating in the first direction.
10. The mechanism of claim 1, wherein the first urging member comprises at least one spring.
11. The mechanism of claim 10, wherein the at least one spring includes a first end arranged to contact a surface of the frame member, and a second end arranged to contact a surface of a mobile member through which the rotation axis is movably mounted on the frame member.
12. The mechanism of claim 1, wherein the driven member comprises a first gear member, wherein the driver member comprises a second gear member, and wherein the driven member and driver member are respectively connected to and disconnected from one another through a meshing engagement movement and a meshing disengagement movement of the second gear member relative to the first gear member.
13. The mechanism of claim 1, wherein the driver member and the actuating member are rigidly coupled to one another in rotation.
14. The mechanism of claim 1, wherein the driver member and the actuating member are formed as separate elements.
15. The mechanism of claim 1, wherein the driver member and the actuating member are integrally formed as a single element.
16. The mechanism of claim 1, comprising a second urging member distinct from the first urging member and configured to urge the actuating member in a second direction of rotation opposite the first direction.
17. The mechanism of claim 1, wherein the first urging member is further configured to urge the actuating member in a second direction of rotation opposite the first direction.
18. An assembly comprising: a roller; and the mechanism of claim 1.
19. A sheet material dispenser comprising: a housing; a roller; and the mechanism of claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will be described in detail with reference to the attached figures. It is to be understood that the drawings are designed solely for the purpose of illustration and are not intended as a definition of the limits of the present disclosure, for which reference should be made to the appended claims. It should be further understood that the drawings are not necessarily drawn to scale and that, unless otherwise indicated, they are merely intended to schematically illustrate the structures and methods described herein. The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate one or more embodiments of the invention and, together with the general description given above and the detailed description given below, explain the one or more embodiments of the invention.
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DETAILED DESCRIPTION
First Embodiment
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(15) In this example, the housing has a casing 160 and a cover 180 that is mounted on the casing 160 so as to be movable between an opened position for maintenance (shown on
(16) In this example, a strip of the material to be dispensed is incorporated into the dispenser 100 and supplied in a rolled configuration forming a roll 200 which, in this example, has a central core. More specifically, in this example, the mechanism 1 has two arms 12A, 12B, both extending from the frame member 10, and having respective sleeves 13 for insertion into the central core of the roll 200.
(17) In this example, the mechanism 1 is suitable for dispensing a predetermined length of sheet material, by manually actuating rotation of the roller 130. The mechanism 1 has a frame member 10 configured for attachment to the housing, and more specifically the casing 160 of the housing in this example. The frame member 10 is configured to be stationary with respect to the housing, when the frame member 10 is attached to the housing.
(18) Also, the mechanism 1 has a driven member 30 configured for coupling with the roller 130. In this example, the driven member 30 and the roller 130 are configured to be rigidly coupled to one another during movement, and more specifically during rotation. However, without departing from the scope of the present disclosure, the driven member 30 and the roller 130 may alternatively be configured to be coupled in movement, particular in rotation, while allowing relative movement with respect to each other.
(19) Mechanism 1 also includes a mobile member 50, which is clearly visible on
(20) Also, in this example, the actuating member 70 includes a push bar 72 arranged to be pushed by the user in order to rotate the actuating member 70 in the first direction R1. However, without departing from the scope of the present disclosure, the actuating member 70 may be provided with a different arrangement, such as a lever or a rotatable crank.
(21) In addition, the mechanism 1 has a driver member 90 coupled with the actuating member 70. In this example, the driver member 90 and the actuating member 70 are rigidly coupled to one another in movement, and more specifically in rotation. It is understood, without departing from the scope of the present disclosure, that the driver member 90 and the actuating member 70 may alternatively be coupled to one another in movement, particularly in rotation, in such a manner than so as to allow relative movement with respect to each other. Also, in this example, the driver member 90 and the actuating member 70 are formed as separate elements attached to each other. However, they may alternatively be integrally formed as a single element without departing from the scope of the present disclosure.
(22) Moreover, in this example, the driven member 30 includes a first gear member, the driver member 90 includes a second gear member, and the driven and driver members are respectively connected to and disconnected from one another through a meshing engagement movement and a meshing disengagement movement of the second gear member relative to the first gear member. However, without departing from the scope of the present disclosure, the driven and driver members may be arranged differently, provided that their respective shapes are suitable for allowing and preventing motion transmission from the driver member to the driven member by respectively connecting and disconnecting from each other through relative displacements.
(23) Furthermore, in this example, the rotation axis X1 is movably mounted on the frame member 10 through the mobile member 50. To be more specific, the mobile member 50 is movably mounted on the frame member 10 so as to allow movement of the rotation axis X1 between a first position P1 (shown in
(24) More specifically, in this example, the mobile member 50 is slidably movable to allow the rotation axis X1 to slidably move between the first and second positions P1, P2. However, without departing from the scope of the present disclosure, the mobile member 50 may alternatively be movably mounted on the frame member 10 so as to follow a different trajectory, such as rotation or a more complex trajectory. Also, in this example and as shown on
(25) In addition, in this example, the rotation axis X1 is arranged to move between the first and second positions P1, P2 along a trajectory contained in a plane YZ perpendicular to the orientation of the rotation axis X1 in the first position P1. More specifically, this trajectory is linear in the present example, as a result of the sliding arrangement described above. Also, in this example, the rotation axis X1 of the actuating member 70 is configured to be oriented along a direction X perpendicular to a dispensing direction, along which a user can grab the material and pull it in order to dispense a sheet. Also, in this example, the rotation axis X1 is configured to be oriented parallel to a rotation axis of the roller 130. Further, in this example, the rotation axis X1 is configured to be oriented parallel to a rotation axis of a roll 200, when the roll 200 is incorporated into the dispenser 100. However, the present disclosure is not limited to these particular relative orientations of the rotation axis X1, so that the latter may be oriented so as to achieve only part or none of these particular relative orientations. In addition, since the actuating member 70 and the driver member 90 are rigidly coupled to one another in rotation (in this particular example), the rotation axis X1 of the actuating member 70 is also a rotation axis of the driver member 90.
(26) Furthermore, in this example, the first and second positions P1, P2 are respectively defined by the distance, in the plane YZ and along a direction Y intended to be horizontal when the dispenser 100 is in use, which separates the rotation axis X1 of the actuating member 70 from the rotation axis of the driven member 30. Also, by comparing the difference between the first and second positions P1, P2 shown on
(27) In addition, as shown on
(28) Also, in this example, the spring 20 is in the form of a compression spring configured to be compressible along a direction Y, which is perpendicular to the direction X of the rotation axis X1, and which is tangent to the portion of circle that is described by the rotational movement of a given point of the actuating member 70 when the latter is rotated. However, within the scope of the present disclosure, the spring 20 is not limited to a compression spring and may have a variety of other designs. For instance, in addition to or alternatively to a compression, the spring 20 may be arranged to exert an urging force through an extension and/or a torsion and/or another kind of deformation of the spring 20. In particular, the spring 20 may be an extension spring, a torsion spring, or a spring with another design.
(29) In addition, in this example, the first urging member is arranged to exert an urging force on the mobile member 50 so as to indirectly urge the rotation axis X1 in the first position P1. However, without departing from the scope of the present disclosure, the first urging member may alternatively exert an urging force directly on the rotation axis X1 so as to urge the rotation axis X1 in the first position P1, or on the driver member 90 or the actuating member 70 so as to indirectly urge the rotation axis X1 in the first position P1.
(30) Moreover, as shown on
(31) In addition, in this example, the second urging member is configured to directly urge the actuating member 70 in the second direction of rotation. However, without departing from the scope of the present disclosure, the second urging member may alternatively be arranged to urge the driver member 90 or the rotation axis X1 so as to indirectly urge the actuating member 70 in the second direction of rotation.
(32) In addition, a dispenser including a mechanism 1 according to the first embodiment may be operated as follows. Various situations can arise where it is desirable to manually actuate rotation of the roller 130 for dispensing a predetermined length of sheet material contained in the dispenser. For example, when a paper jam, a load of an excessive wad of paper or other sources of blocking within the dispenser occur, the sheet material is likely to tear inside the housing of the dispenser, instead of being accessible to the user. Also, when the dispenser is arranged to be automatically operated during normal operation, for instance by providing the dispenser with an electrical device, a situation can arise where this automatic operation cannot be achieved so that a tail of the sheet material is likely to be confined inside the housing of the dispenser.
(33) In these situations, the user can manually actuate the actuating member 70 in order to rotate the actuating member 70 in the first direction R1, from an initial position of the actuating member that allows a rotation of the actuating member 70 in the first direction R1. When a second urging member is provided, this initial position may be a rest position toward which the second urging member urges the actuating member 70. In this case, when the user causes a rotation of the actuating member 70 in the first direction R1 through his manual actuation of the actuating member 70, the second urging member urges the actuating member 70 in the second direction of rotation opposite the first direction R1, for instance through deformation when the second urging member includes at least one spring 40.
(34) When the force exerted by the user on the actuating member 70 does not overcome the urging force exerted by the first urging member, that is, during normal actuation of the actuating member 70, the rotation axis X1 is forced to remain in the first position P1 by the first urging member, so that the driver member 90 and the driven member 30 are connected to one another, thereby causing rotation of the roller 130 as the actuating member 70 rotates in the first direction R1. This rotation of the roller 130 causes dispensing of certain length of sheet material. After that operation, the user can stop exerting a force on the actuating member 70, which is then automatically returned in the rest position by the second urging member.
(35) Conversely, when the force exerted by the user on the actuating member 70 overcomes the urging force exerted by the first urging member, that is, when an excessive load is applied on the mechanism, the rotation axis X1 is moved from the first position P1 to the second position P2 against the urging force of the first urging member (for instance through deformation of the first urging member, when the first urging member includes at least one spring 20), which causes a disconnection of the driver member 90 and the driven member 30 from one another, thereby preventing rotation of the roller 130 during rotation of the actuating member 70 in the first direction R1. When the user stop exerting a force on the actuating member 70, the rotation axis X1 is automatically returned in the first position P1 by the first urging member, and the actuating member 70 is automatically returned in the rest position by the second urging member.
Second Embodiment
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(37) In the second embodiment, unlike the first embodiment, the rotation axis X1 is movably mounted directly on the frame member 10′. More specifically, in the second embodiment, the rotation axis X1 takes the form of a pivot movably mounted in a moving path of the frame member 10′ so as to be movable between first and second positions P1′, P2′. In the first position P1′ the driver member 90 and the driven member 30 are connected to one another so as to allow rotation of the roller 130 caused by rotation of the actuating member in the first direction R1. In the second position P2′ the driver member 90 and the driven member 30 are disconnected from one another, which is effective to prevent rotation of the roller 130 caused by rotation of the actuating member 70 in the first direction R1. However, without departing from the scope of the present disclosure, the moving path may be included in a mobile member movably mounted on the frame member so as to allow movement of the rotation axis X1 between the first and second positions P1′, P2′.
(38) In the second embodiment, the rotation axis X1 is slidably movable between the first and second positions P1′, P2′. In this example, the moving path of the frame member 10′ has a linear path in which the rotation axis X1 is slidably movable between the first and second positions P1′, P2′. To be more specific, in the second embodiment, the moving path is formed by an elongated opening, slot, recess or the like (in particular an elongated slot 18 as shown on
(39) In the second embodiment, the rotation axis X1 is rigidly coupled in movement, and more specifically in rotation, with the actuating member 70. However, without departing from the scope of the present disclosure, the rotation axis may be coupled with the actuating member so as to allow movement, such as rotation, relative to one another.
(40) In addition, unlike the first embodiment, the mechanism according to the second embodiment is arranged so that the first and second positions P1′, P2′ are respectively defined by the distance, in the plane YZ and along a direction oblique to direction Y, which has been described in more detail in relation with the first embodiment, and whose description is omitted here for the sake of conciseness. For example, the linear path, and more specifically the linear portion may have a direction oriented along that direction oblique.
(41) Moreover, unlike the first embodiment, the mechanism according to the second embodiment is configured so that the first urging member is arranged to exert an urging force on the driver member 90 so as to indirectly urge the rotation axis X1 in the first position P1′. However, without departing from the scope of the present disclosure, the first urging member may alternatively exert an urging force directly on the rotation axis X1 so as to urge the rotation axis X1 in the first position P1′, or on the actuating member 70 so as to indirectly urge the rotation axis X1 in the first position P1′. More specifically, the first urging member includes a single spring 20′, which could be a metallic spring or some other type of spring. Furthermore in this example, spring 20′ is in the form of an extension spring. Alternatively, without departing from the scope of the present disclosure, another number of springs, such as two or more than two, may be provided. Also, within the scope of the present disclosure, the spring 20′ is not limited to an extension spring and may have a variety of other designs. For instance, in addition to or alternatively to an extension, the spring 20′ may be arranged to exert an urging force through a compression and/or a torsion and/or another kind of deformation of the spring 20′. In particular, the spring 20′ may be a compression spring, a torsion spring, or a spring with another design.
(42) In addition, unlike the first embodiment, the first urging member of the second embodiment (and more specifically the spring 20′) is further configured to urge the actuating member 70 in a second direction of rotation opposite the first direction R1. Thus, in addition to being configured to urge the rotation axis X1 in the first position P1′, the first urging member can simultaneously perform a second function of urging the actuating member to return to a rest position.
(43) Exception made of the differences developed above, the second embodiment may have features similar to those of the first embodiment. Description of these features in relation with the second embodiment is omitted for the sake of conciseness. However, within the scope of the present disclosure, these features have to be considered as also disclosed in combination with the second embodiment.
(44) In addition, a dispenser including a mechanism 1′ according to the second embodiment may be operated in a manner similar as the one described in relation with the first embodiment, exception made that the urging functions of the first and second urging members described in the first embodiment are simultaneously achieved by a single urging member (for instance a single spring 20′) in the second embodiment.
(45) The embodiments described above are only descriptions of preferred embodiments of the present invention, and are not intended to limit the scope of the present invention. Various variations and modifications can be made to the technical solution of the present invention by those of ordinary skills in the art, without departing from the design of the present invention. The variations and modifications should all fall within the claimed scope defined by the claims of the present invention.