ELECTRIC DOUBLE PANEL INWARD GLIDING DOOR AND INWARD GLIDING DOOR DRIVING APPARATUS THEREOF
20200308891 ยท 2020-10-01
Inventors
- Xiang SHI (Nanjing, CN)
- Junhai GU (Nanjing, CN)
- Wenkai ZU (Nanjing, CN)
- Dongsheng HUANG (Nanjing, CN)
- Yuncheng WEI (Nanjing, CN)
- Hanqing GE (Nanjing, CN)
- Zuxin DAI (Nanjing, CN)
- Xudong SHI (Nanjing, CN)
Cpc classification
E06B7/36
FIXED CONSTRUCTIONS
E05F15/40
FIXED CONSTRUCTIONS
B60J10/40
PERFORMING OPERATIONS; TRANSPORTING
E05F15/614
FIXED CONSTRUCTIONS
International classification
E05F15/40
FIXED CONSTRUCTIONS
E05F15/614
FIXED CONSTRUCTIONS
Abstract
Electrically-operated inward-swing double doors and inward-swing door driving devices thereof. Each inward-swing door driving device includes a sector gear in coaxial transmission with a door shaft of the inward-swing door, a driving mechanism used for driving the sector gear to rotate, and an unlocking mechanism. The driving mechanism includes a motor gear and a motor driving the motor gear to rotate.
The unlocking mechanism includes a cylinder, a cylinder push rod extending out of the cylinder, and a lock located at the end portion of the cylinder push rod. The tail end of the lock is in transmission connection with a wheel axle of the motor gear. The lock is provided with a lock rotating shaft for rotating horizontally around the lock. The lock rotating shaft is provided with an elastic element for applying twisting resilience force to the lock.
Claims
1. An inward-swing door driving device, comprising a sector gear (1) in coaxial transmission with a door shaft of an inward-swing door, a driving mechanism used for driving the sector gear (1) to rotate, and an unlocking mechanism used for separating the driving mechanism from the sector gear (1), wherein the driving mechanism comprises a motor gear (2) and a motor (3) driving the motor gear (2) to rotate; the unlocking mechanism comprises a cylinder (4), a cylinder push rod (401) extending out of the cylinder (4), and a lock (5) located at the end portion of the cylinder push rod (401); the tail end of the lock (5) is in transmission connection with a wheel axle of the motor gear (2); the lock (5) is provided with a lock rotating shaft (501) for rotating horizontally around the lock (5); the lock rotating shaft (501) is provided with an elastic element for applying twisting resilience force to the lock (5); when the cylinder (4) is unlocked for air feeding, the cylinder push rod (401) pushes the lock (5) to rotate, so that the motor gear (2) and the sector gear (1) mesh with each other and twist the elastic element; and when the cylinder (4) is unlocked for air discharge, the lock (5) rotates back under the action of the twisting resilience force of the elastic element and drives the motor gear (2) and the sector gear (1) to demesh.
2. The inward-swing door driving device according to claim 1, further comprising a door controller, wherein the driving mechanism and the unlocking mechanism are both mounted on a mounting plate (6); a trigger plate (7) is also arranged on the mounting plate (6); a stop pin (101) is arranged on the sector gear (1); the stop pin (101) is in contact with the trigger plate (7); during door closing, the stop pin (101) rotates along with the sector gear (1), and the stop pin (101) pushes the trigger plate (7) to trigger a close-in-place switch (8) when each corresponding door is closed in place; and the close-in-place switch sends a close-in-place signal to the door controller.
3. The inward-swing door driving device according to claim 2, wherein the trigger plate (7) comprises a cam and a cam reset torsional spring (701) mounted on a wheel axle of the cam; when the stop pin (101) pushes the trigger plate (7) to trigger the close-in-place switch, the cam reset torsional spring (701) is twisted; and during door opening, the stop pin (101) rotates along with the sector gear (1), and the cam reset torsional spring (701) drives the cam to rotate back to an initial position.
4. The inward-swing door driving device according to claim 2, wherein a groove (9) is formed in the mounting plate (6); the bottom portion of the lock rotating shaft (501) is connected with a lock clamping plate (503); and the tail end of the lock clamping plate (503) is fixedly mounted in the groove (9) through a fastening screw.
5. The inward-swing door driving device according to claim 1, wherein the elastic element is a torsional spring (502), and the torsional spring (502) sleeves the outer wall of the lock rotating shaft (501).
6. The inward-swing door driving device according to claim 1, wherein a motor gear bearing is arranged on the wheel axle of the motor gear (2), and the motor gear bearing is fixedly connected with the tail end of the lock (5).
7. The inward-swing door driving device according to claim 1, wherein the end portion, in contact with the lock (5), of the cylinder push rod (401) is provided with an adjustment screw (402) used for adjusting a meshing degree of the motor gear (2) and the sector gear (1).
8. The inward-swing door driving device according to claim 1, wherein the sector gear (1) and the door shaft of the inward-swing door are connected through a spline shaft (10).
9. The inward-swing door driving device according to claim 2, wherein the motor (3) is a direct-current worm wheel and worm reducing motor (3); the motor (3) is connected with a motor hall switch; and the motor hall switch detects current of the motor (3), and transmits a current signal to the door controller in real time.
10. Electrically-operated inward-swing double doors using the inward-swing door driving devices according to claim 1, comprising two inward-swing door driving devices, and further comprising door shafts (11) driven by the inward-swing door driving devices, and door leaves (12) rotating along with the door shafts (11).
11. The electrically-operated inward-swing double doors according to claim 10, wherein the door controllers are further used for monitoring current changes of the motors (3); the door controllers determine whether the door leaves (12) are blocked in the door opening and closing processes according to position signals and the current changes of the motors (3), and control the driving devices to drive the door leaves (12) to change motion states in case of blockage.
12. The electrically-operated inward-swing double doors according to claim 10, further comprising two centrosymmetric finger protection tapes, respectively being a left finger protection tape and a right finger protection tape, wherein the left finger protection tape and the right finger protection tape are respectively connected with the two door leaves (12); each finger protection tape comprises a main body portion (131); one end of the main body portion (131) extends towards a door slot to form an outer sealing lip (132), and the other end of the main body portion (131) extends towards the door slot to form a sealing corner portion (133); the end portion of the sealing corner portion (133) is inwards bent and extends to form an inner sealing lip (134); the outer sealing lip (132) and the sealing corner portion (133) are both connected with the main body portion (131) through connecting ribs; the connecting ribs, the outer sealing lip (132) and the main body portion (131) are encircled to form a cavity, and the connecting ribs, the sealing corner portion (133) and the main body portion (131) are also encircled to form a cavity; when the inward-swing double doors are closed, the outer sealing lip (132) of the left finger protection tape and the sealing corner portion (133) of the right finger protection tape are adjacent to each other, the outer sealing lip (132) of the right finger protection tape and the sealing corner portion (133) of the left finger protection tape are adjacent to each other, and the inner sealing lip (134) of the left finger protection tape and the inner sealing lip (134) of the right finger protection tape are adjacent to each other.
13. The electrically-operated inward-swing double doors according to claim 12, wherein when the inward-swing double doors are closed, the outer sealing lip (132) of the left finger protection tape and the sealing corner portion (133) of the right finger protection tape are in interference fit with each other, the outer sealing lip (132) of the right finger protection tape and the sealing corner portion (133) of the left finger protection tape are in interference fit with each other, and the inner sealing lip (134) of the left finger protection tape and the inner sealing lip (134) of the right finger protection tape are in interference fit with each other.
14. The electrically-operated inward-swing double doors according to claim 10, wherein handrails are arranged on the door leaves.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE INVENTION
[0027] The technical solutions are described in detail below through an optimal embodiment and in combination with the accompanying drawings.
[0028] As shown in
[0029] The driving mechanism includes a motor gear 2 and a motor 3 driving the motor gear 2 to rotate. The unlocking mechanism includes a cylinder 4, a cylinder push rod 401 extending out of the cylinder 4, and a lock 5 located at the end portion of the cylinder push rod 401. The end portion, in contact with the lock 5, of the cylinder push rod 401 is provided with an adjustment screw 402 used for adjusting a meshing degree of the motor gear 2 and the sector gear 1. The tail end of the lock 5 is in transmission connection with a wheel axle of the motor gear 2. As shown in the figures, a stress point of the motor gear 2 is close to the rotating center of the lock 5, so that by the use of the principle that a connecting rod passes through a dead point and a dead point approaching structure, the relatively small cylinder 4 may realize relatively high locking force. The lock 5 may rotate around a lock rotating shaft 501. One end of an arm of each of the two locks 5 forming an obtuse angle at the lock rotating shafts 501, is in contact with the cylinder push rod 401, and the other end is in transmission with the motor gear 2, and this end is the tail end.
[0030] In the present embodiment, a motor gear bearing is arranged on the wheel axle of the motor gear 2, and the motor gear bearing is fixedly connected with the tail end of the lock 5.
[0031] The lock rotating shaft 501 used for rotating horizontally around the lock 5 is arranged on the lock 5. An elastic element for applying twisting resilience force to the lock 5 is arranged on the lock rotating shaft 501. In the present embodiment, the elastic element is a torisonal spring 502. The torsional spring 502 sleeves the outer wall of the lock rotating shaft 501. When the cylinder 4 is unlocked for air feeding, the cylinder push rod 401 pushes the lock 5 to rotate, so that the motor gear 2 and the sector gear 1 mesh with each other and twist the elastic element. When the cylinder 4 is unlocked for air discharge, the lock 5 rotates back under the action of the twisting resilience force of the elastic element and drives the motor gear 2 and the sector gear 1 to demesh. A groove 9 is formed in the mounting plate 6. The bottom portion of the lock rotating shaft 501 is connected with a lock clamping plate 503. The tail end of the lock clamping plate 503 is fixedly mounted in the groove 9 through a fastening screw.
[0032] A trigger plate 7 is also arranged on the mounting plate 6. A stop pin 101 is arranged on the sector gear 1. The stop pin 101 is in contact with the trigger plate 7. During door closing, the stop pin 101 rotates along with the sector gear 1, and the stop pin 101 pushes the trigger plate 7 to trigger a close-in-place switch 8 when the corresponding door is closed in place. The close-in-place switch 8 sends a close-in-place signal to the door controller. The trigger plate 7 includes a cam and a cam reset torsional spring 701 mounted on a wheel axle of the cam. When the stop pin 101 pushes the trigger plate 7 to trigger the close-in-place switch 8, the cam reset torsional spring 701 is twisted. During door opening, the stop pin 101 rotates along with the sector gear 1, and the cam reset torsional spring 701 drives the cam to rotate back to an initial position.
[0033] In the present embodiment, the motor 3 is a direct-current worm wheel and worm reducing motor 3. The motor 3 is connected with a motor hall switch. The motor hall switch detects a position of the motor 3, and transmits a position signal to the corresponding door controller in real time. The door controller further monitors a current change of the motor 3. The door controller determines whether the corresponding door leaf 12 is blocked in the door opening and closing processes according to the position signal and the current change of the motor 3, and controls the driving device to drive the door leaf 12 to change a motion state in case of blockage. In the door opening and closing processes, in case of an obstacle, the current and hall position of the motor 3 may both change, so that the controller may realize an anti-pinch operation, thereby improving the safety and being sensitive to make a response.
[0034] Further, handrails are also arranged on the door leaves 12 to facilitate the getting on and off of passengers. Microswitches are mounted at open-in-place positions of the inward-swing doors. The microswitches are connected with the door controllers. The door controllers determine whether the doors are opened in place according to current signals and signals of the microswitches.
[0035] The overall schematic diagram of the present disclosure is shown in
[0036] 1. Electrically-operated door closing:
[0037] When the doors are in open states, air is fed into the cylinders 4, and the cylinder push rods 401 push the locks 5 to rotate to push the motor gears 2 to move towards the sector gears 1 to cause the two gears to mesh with each other. The adjustment screws 402 on the cylinder push rods 401 are adjusted to adjust a gear meshing clearance, so that the gears may mesh well.
[0038] The motors 3 are driven to rotate clockwise to drive the motor gears 2, thereby driving the sector gears 1 to rotate.
[0039] The sector gears 1 drive the door shafts 11 connected to the sector gears 1 through the spline shafts 10 to rotate, so as to realize the electrically-operated door closing.
[0040] The stop pins 101 on the sector gears 1 push the trigger plates 7 to trigger switch components, and the switch components output signals to the door controllers to cause the door controllers to complete a door closing action.
[0041] 2. Electrically-operated door opening:
[0042] When the doors are in closed states, air is fed into the cylinders 4, and the cylinder push rods 401 push the locks 5 to rotate to push the motor gears 2 to move towards the sector gears 1 to cause the two gears to mesh with each other. The adjustment screws 402 on the cylinder push rods 401 are adjusted to adjust a gear meshing clearance, so that the gears may mesh well.
[0043] The motors 3 are driven to rotate anticlockwise to drive the motor gears 2, thereby driving the sector gears 1 to rotate.
[0044] The sector gears 1 drive the door shafts 11 connected to the sector gears 1 through the spline shafts 10 to rotate, so as to realize the electrically-operated door opening.
[0045] 3. Manual door closing:
[0046] When the doors are in the open states, air is discharged from the cylinders 4, and the locks 5 are reset under the action of the lock 5 reset torisonal springs 701, and at the same time, the cylinder push rods 401 retract to cause the motor gears 2 and the sector gears 1 to demesh.
[0047] The doors are closed manually in place.
[0048] The air is fed into the cylinders 4, so that the motor gears 2 and the sector gears 1 mesh with each other to realize locking.
[0049] 4. Emergency unlocking and manual door opening:
[0050] When the doors are in the closed states, emergency unlocking devices are operated to cause the cylinders 4 to discharge air, and the locks 5 are reset under the action of the lock 5 reset torisonal springs 701, and at the same time, the cylinder push rods 401 retract to cause the motor gears 2 and the sector gears 1 to demesh.
[0051] The door opening action is completed manually.
[0052] 5. Locking in the whole process: at any position, the air is fed into the cylinders 4, and the motor gears 2 and the sector gears 1 mesh with each other, so that locking at any position is realized through a self-locking function of the worm wheel and worm motors 3.
[0053] In addition, as shown in
[0054] The end portion of the sealing corner portion 133 is inwards bent and extends to form an inner sealing lip 134. The outer sealing lip 132 and the sealing corner portion 133 are both connected with the main body portion 131 through connecting ribs. The connecting ribs, the outer sealing lip 132 and the main body portion 131 are encircled to form a cavity, and the connecting ribs, the sealing corner portion 133 and the main body portion 131 are also encircled to form a cavity.
[0055] The connecting ribs include a main connecting rib 135 connected with the main body portion 131, and an outer connecting rib 136 and a corner connecting rib 137 extending out of the main connecting rib 135. The outer connecting rib 136 is connected to the outer sealing lip 132, and the corner connecting rib 137 is connected to the sealing corner portion 133.
[0056] A through hole is formed in the center of the main body portion 131. The main body portion 131 is provided with a connecting portion assembled with the door plate at a contact position with the door plate.
[0057] When the inward-swing double doors are closed, the outer sealing lip 132 of the left finger protection tape and the sealing corner portion 133 of the right finger protection tape are adjacent to each other, the outer sealing lip 132 of the right finger protection tape and the sealing corner portion 133 of the left finger protection tape are adjacent to each other, and the inner sealing lip 134 of the left finger protection tape and the inner sealing lip 134 of the right finger protection tape are adjacent to each other. In the present embodiment, the outer sealing lip 132 of the left finger protection tape and the sealing corner portion 133 of the right finger protection tape are in interference fit with each other, the outer sealing lip 132 of the right finger protection tape and the sealing corner portion 133 of the left finger protection tape are in interference fit with each other, and the inner sealing lip 134 of the left finger protection tape and the inner sealing lip 134 of the right finger protection tape are in interference fit with each other, so as to achieve a better sealing effect.
[0058] The total width of a structure formed by matching the left finger protection tape and the right finger protection tape is less than 90 mm. When the door system is closed, in case of an obstacle, the cavities of the finger protection tapes will be compressed. Since a spacing between the cavities of the left and right finger protection tapes is smaller, the detection of smaller obstacles can be realized, and the width of a minimum obstacle detection object is 10 mm. After a smaller obstacle is pinched, the cavities are compressed to avoid pinch injury, and the obstacle can be easily pulled out. In addition, handrails are also arranged on the door leaves.
[0059] The above is only a preferred implementation mode of the present disclosure. It should be noted that those of ordinary skill in the art can further make several improvements and retouches without departing from the principle of the present disclosure. These improvements and retouches shall all fall within the protection scope of the present disclosure.