ONE-MOTOR-DUEL-DRIVE SYNCHRONOUS DRIVE DEVICE
20230366449 ยท 2023-11-16
Inventors
- Zuochao LV (Jiaxing City, CN)
- Long LI (Jiaxing City, CN)
- Chunqi CHEN (Jiaxing City, CN)
- Baowei XU (Jiaxing City, CN)
- Yiting YE (Jiaxing City, CN)
- Bin SHEN (Jiaxing City, CN)
Cpc classification
F16H1/222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/039
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present application relates to one-motor-duel-drive synchronous drive device. The drive device includes: a housing, wherein the housing is hollow, a telescopic mechanism is connected to the housing, the telescopic mechanism includes a screw rod, and one end of the screw rod extends into the housing; a transmission mechanism, wherein the transmission mechanism comprises a first transmission component rotatably connected to an inner wall of the housing, a second transmission component is fixedly connected to the screw rod, and the first transmission component and the second transmission component are staggered gears engaged with each other; a linkage lever provided between the housings, wherein two ends of the linkage lever are connected to the first transmission component, respectively; and a drive mechanism configured to act on the linkage lever to rotate the linkage lever.
Claims
1. A one-motor-duel-drive synchronous drive device, comprising: a housing, wherein the housing is hollow, a telescopic mechanism is connected to the housing, the telescopic mechanism comprises a screw rod, and one end of the screw rod extends into the housing; a transmission mechanism, wherein the transmission mechanism comprises a first transmission component rotatably connected to an inner wall of the housing, a second transmission component is fixedly connected to the screw rod, and the first transmission component and the second transmission component are staggered gears engaged with each other; a linkage lever provided between the housing, wherein two ends of the linkage lever are connected to the first transmission component, respectively; and a drive mechanism configured to act on the linkage lever to rotate the linkage lever.
2. The one-motor-duel-drive synchronous drive device according to claim 1, wherein the drive mechanism is connected to a first end of the linkage lever and comprises a rotating motor, a first engaging component is fixedly connected to an output shaft of the rotating motor, a second engaging component is rotatably connected in the housing, the first engaging component is engaged with the second engaging component, a third engaging component is rotatably connected in the housing, and the third engaging component is fixedly connected to the second engaging component and engaged with the first transmission component.
3. The one-motor-duel-drive synchronous drive device according to claim 2, wherein the first transmission component comprises a face tooth and a helical tooth, the helical tooth is rotatably connected in the housing, fixedly connected to the face tooth, and engaged with the third engaging component, and the face tooth is engaged with the second transmission component.
4. The one-motor-duel-drive synchronous drive device according to claim 1, wherein the first transmission component is defined with a non-circular hole, the linkage lever is inserted and fixed in the non-circular hole, and the linkage lever has a cross section matching with the non-circular hole.
5. The one-motor-duel-drive synchronous drive device according to claim 1, wherein the linkage lever comprises connecting rods connected to the housing and a second housing, respectively, and a flexible coupling is connected between the connecting rods.
6. The one-motor-duel-drive synchronous drive device according to claim 1, wherein the linkage lever comprises a rigid rod or a flexible rod connected between the housing.
7. The one-motor-duel-drive synchronous drive device according to claim 2, wherein a braking component sleeved on the output shaft of the rotating motor is connected to the housing, and the braking component is elastic and configured for applying a braking force opposite to a rotating direction of the output shaft of the rotating motor to the output shaft of the rotating motor.
8. The one-motor-duel-drive synchronous drive device according to claim 1, wherein the drive mechanism comprises a driving motor, a first driving component is fixedly connected to an output shaft of the driving motor, a second driving component is fixedly connected to the linkage lever, and the first driving component is engaged with the second driving component.
9. The one-motor-duel-drive synchronous drive device according to claim 8, wherein the first driving component and the second driving component are staggered gears.
10. The one-motor-duel-drive synchronous drive device according to claim 2, wherein the first engaging component and the second engaging component are staggered gears.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
DETAILED DESCRIPTION
[0036] The present application is further described in detail below in combination with
[0037] A linear driver includes a power supply and a telescopic mechanism, the telescopic mechanism includes a screw rod, a screw rod nut, a pushing rod support and a telescopic rod, and the screw rod is rotated by the power supply such as a motor, so that the screw rod nut drives the telescopic rod to ascend or descend.
[0038] A one-motor-duel-drive synchronous drive device is disclosed in embodiments of the present application.
Embodiment 1
[0039] Referring to
[0040] When the drive mechanism 5 rotates the linkage lever 4, the linkage lever 4 synchronously rotates the transmission mechanism 3 in two housings 1, so that the transmission mechanism 3 drive two telescopic mechanisms 2 to ascend or descend synchronously. Therefore, what is needed is a switch frame fixed in any one of the telescopic mechanisms 2, and two microswitches provided on the switch frame and configured to control a largest extension length and a smallest extension length of the telescopic mechanism 2.
[0041] Referring to
[0042] To limit an axially movement of the second transmission component 32 along the screw rod, in this embodiment, the second transmission component 32 is riveted with the screw rod. In other embodiments, the second transmission component 32 may be connected to the screw rod by a screw provided on an end face, so that the second transmission component 32 and the screw rod are connected as a whole body.
[0043] Referring to
[0044] Referring to
[0045] Referring to
[0046] To stably rotate the second engaging component 54 and the third engaging component 55, in this embodiment, the second engaging component 54 and the third engaging component 55 may be connected to the rotating shaft 53 via pads sleeved at both two ends of the rotating shaft 53, respectively, so that an end of the second engaging component 54 and an end of the third engaging component 55 abut against the pads, thereby limiting the second engaging component 54 and the third engaging component 55 along an axial direction; and in other embodiments, there are some steps provided at two ends of both the second engaging component 54 and the third engaging component 55, and bearings are mounted on the steps, so that the periphery of the bearings is fixed on the housing 1, so as to limit an axial movement of both the second engaging component 54 and the third engaging component 55.
[0047] Referring to
[0048] To ensure that the helical tooth 312 may synchronously rotates the face tooth 311, in this embodiment, the face tooth 311 and the helical tooth 312 are integrally molded together, and supported by the housing 1 and the bearings at two ends of both the face tooth 311 and the helical tooth 312; and in other embodiments, the face tooth 311 and the helical tooth 312 may be two independent structures, and the face tooth 311 is fixedly connected to the helical tooth 312. Each of the face tooth 311 and the helical tooth 312 is defined with a non-circular hole 56, the linkage lever 4 has a cross section matching with the non-circular hole 56, so that it can be inserted and fixed in the non-circular hole 56. In other embodiments, the linkage lever 4 and the first transmission component 31 may be integrated with each other or connected to each other via a fastener.
[0049] Secondly, the rotating shaft 53 is obliquely provided, thereby preventing an interference between the second engaging component 54 and face tooth 311, while ensuing a better engagement of the third engaging component 55 with the helical tooth 312. Since the rotating shaft 53 is oblique, the third engaging component 55 is also oblique, therefore, the helical tooth 312 is applied with a force toward the face tooth 311 when the third engaging component 55 is engaged with the helical tooth 312, so that the linkage lever 4 is more stable and balanced when the face tooth 311 is engaged and rotated with the second transmission component 32.
[0050] Referring to
[0051] Referring to
[0052] When the second transmission component 32 in one of the housings 1 adopts a face tooth, the second transmission component 32 of the other housing 1 also adopts a face tooth having a same speed reducing ratio and a same number of teeth. In other embodiments, when the second transmission component 32 in one of the housing 1 is a helical gear, the second transmission component 32 in the other housing 1 is a helical gear having a same speed reducing ratio and a same number of teeth.
[0053] Referring to
[0054] Referring to
[0055] Referring to
[0056] Referring to
[0057] An implementing principle of above embodiment is as follows. When in use, two housings 1 are connected to a fixed end of an electrical furniture, two telescopic mechanisms 2 are connected to a telescopic end or rotating end of the electrical furniture, parallel to each other and arranged at two sides of the electrical furniture, respectively, so that the electrical furniture is driven by controlling expansion and contraction of the telescopic mechanism 2, so as to improve a stability of the driving. The present application is not only applicable to the field of an electrical furniture, but also applicable to an intelligent office equipment (such as a lifting table), or an electrical medical equipment (such as an electrical medical bed). When two telescopic mechanisms 2 need to ascend or descend synchronously, the rotating motor 51 is started, so that the output shaft of the rotating motor 51 rotates the first engaging component 52 and the second engaging component 54, the second engaging component 54 rotates the third engaging component 55, the third engaging component 55, due to engagement with the helical tooth 312, rotates the connecting rod 41 connected to the helical tooth 312, one of the connecting rods 41 synchronously rotates the other connecting rod 41 via a flexible coupling 42, two connecting rods 41 synchronously rotates two face teeth 311, the face teeth 311 rotate the second transmission components 32, so that the screw rod is rotated around itself axial direction and drives the telescopic mechanism 2 to ascend or descend. Therefore, two telescopic mechanisms 2 can be synchronously driven to ascend or descend via only one rotating motor 51, reducing a cost, providing a higher synchronous coefficient, and ensuring a more stable work for the electrical furniture.
Embodiment 2
[0058] Referring to
[0059] In this embodiment, the first driving component 82 is a worm, the second driving component 83 is a worm helical gear; and in other embodiments, the first driving component 82 and the second driving component 83 may be two bevel gears engaged with each other.
Embodiment 3
[0060] This embodiment differs from Embodiment 1 in that, a rotating shaft 53 is rotatably connected to a housing 1, two ends of the rotating shaft 53 are connected to a bearing, so that a periphery of the bearing is fixed on the housing 1, and a second engaging component 54 and a third engaging component 55 are both fixed on the rotating shaft 53. Therefore, the third engaging component 55 is synchronously rotated when the first engaging component 52 rotates the second engaging component 54, so that the linkage lever 4 may synchronously drive two telescopic mechanisms 2 to ascend or descend.
Embodiment 4
[0061] This embodiment differs from Embodiment 1 in that, a face tooth 311 may be substituted by a worm, the second transmission component 32 may adopt a worm helical gear, and the worm is engaged with the worm helical gear.
[0062] The above are the preferred embodiments of the present application, which are not intended to limit the protection scope of the present application. Therefore, all equivalent changes made according to the structure, shape and principle of the present application should be covered within the protection scope of the present application.
LISTING OF REFERENCE SIGNS
[0063] 1. Housing [0064] 2. Telescopic mechanism [0065] 3. Transmission mechanism [0066] 4. Linkage lever [0067] 5. Drive mechanism [0068] 31. First transmission component [0069] 311. Face tooth [0070] 312. Helical tooth [0071] 32. Second transmission component [0072] 51. Rotating motor [0073] 52. First engaging component [0074] 53. Rotating shaft [0075] 54. Second engaging component [0076] 55. Third engaging component [0077] 56. Non-circular hole [0078] 41. Connecting rod [0079] 42. Flexible coupling [0080] 6. Receiving groove [0081] 7. Braking component [0082] 71. Ring substrate [0083] 72. Central opening [0084] 73. Connecting portion [0085] 74. Braking portion [0086] 8. Driving motor [0087] 81. Mounting housing [0088] 82. First driving component [0089] 83. Second driving component