The present invention relates to non-pull cord window blinds and more particularly, to a detachable cord rolling device for the non-pull cord window blind.
As to the non-pull cord window blind, the lift transmission cord is rolled up by the cord rolling device disposed in the top beam. Because the lift transmission cord is tied to the bottom beam, the bottom beam is gradually moved up relative to the top beam during the process that the lift transmission cord is rolled up, so that the slats of the window blind are folded up by the upwardly moving bottom beam.
The aforesaid cord rolling device is workable for normal-sized window blind. However, for the large-sized window blind, the pulling force provided by the aforesaid cord rolling device may be too small to move up the bottom beam successfully. At present, the method to solve the aforesaid problem is to use two or more than two cord rolling devices, but the increase of the number of components certainly increases the cost and the structural complication.
It is a primary objective of the present invention to provide a detachable cord rolling device for the non-pull cord window blind, which has the characteristics of convenient operation, cost lowering, and structure simplifying.
To attain the above objective, the present invention provides a detachable cord rolling device which includes a cord rolling unit, an auxiliary driving unit, and a transmission shaft. The cord rolling unit has a first base, a first torsion spring gear, a second torsion spring gear, a first torsion spring, a cord rolling gear, and a lift transmission cord. The first and second torsion spring gears are rotatably disposed on the first base and engaged with each other. The first torsion spring connects the first and second torsion spring gears. The cord rolling gear is rotatably disposed on the first base and engaged with one of the first and second torsion spring gears. The lift transmission cord is wound around the cord rolling gear. The auxiliary driving unit has a second base, a third torsion spring gear, a fourth torsion spring gear, and a second torsion spring. The second base is detachably disposed on a top surface of the first base of the cord rolling unit. The third and fourth torsion spring gears are rotatably disposed on the second base and engaged with each other. The second torsion spring connects the third and fourth torsion spring gears. The transmission shaft detachably connects the first torsion spring gear of the cord rolling unit and the third torsion spring gear of the auxiliary driving unit, thereby enabling the first and third torsion spring gears to rotate synchronously.
It can be understood from the above illustration that the cord rolling unit of the detachable cord rolling device of the invention is workable individually. Besides, the auxiliary driving unit can be installed on the cord rolling unit by the transmission shaft. Through the cooperation of the first and second torsion springs, the detachable cord rolling device of the present invention have enough rolling force to work for the large-sized window blind, so the window blind doesn't need the additionally increased cord rolling unit, thereby lowered in cost and simplified in structure.
Referring to
The cord rolling unit 20 is disposed in a top beam (not shown), and has a first base 21, a first torsion spring gear 22, a second torsion spring gear 23, a first torsion spring 24, two cord rolling gears 25, two lift transmission cords 26, and two brakes 27.
As shown in
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The auxiliary driving unit 30 has a second base 31, a third torsion spring gear 32, a fourth torsion spring gear 33, and a second torsion spring 34.
As shown in
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It can be understood from the above illustration that in the condition that the cord rolling unit 20 is used individually, when the two lift transmission cords 26 are pulled out to gradually escape from the two cord rolling gears 25, the two cord rolling gears 25 drives the first and second torsion spring gears 22 and 23 respectively, so that the first torsion spring 24 is stretched by the first and second torsion spring gears 22 and 23, and the resilient force of the first torsion spring 24 is saved. In opposite, when the resilient force of the first torsion spring 24 is applied to the first and second torsion spring gears 22 and 23, the first and second torsion spring gears 22 and 23 drive the two cord rolling gears 25 respectively, so that the two cord rolling gears 25 roll up the associated lift transmission cords 26 respectively.
In the condition that the cord rolling unit 20 is used with the auxiliary driving unit 30 cooperatively, when the first torsion spring gear 22 is driven by the cord rolling gear 25 engaged with it, the first torsion spring gear 22 drives the third torsion spring gear 32 to rotate together through the transmission shaft 40, and then the third torsion spring gear 32 further drives the fourth torsion spring gear 33, so that the second torsion spring 34 is stretched by the third and fourth torsion spring gears 32 and 33, and the resilient force of the second torsion spring 34 is saved. When the resilient force of the first torsion spring 24 is applied to the first torsion spring gear 22, the first torsion spring gear 22 also drives the third torsion spring gear 32 to rotate reversely through the transmission shaft 40, so that the stretching force applied by the third and fourth torsion spring gears 32 and 33 to the second torsion spring 34 is relieved. At this time, the resilient force of the second torsion spring 34 auxiliarily drives the third and fourth torsion spring gears 32 and 33 to rotate reversely to the original state.
In conclusion, for the detachable cord rolling device 10 of the present invention, the auxiliary driving unit 30 can be installed or removed, depending on the practical demands. Therefore, the cord rolling unit 20 can be used individually, or operated with the auxiliary driving unit 30 together. Through the cooperation of the first and second torsion springs 24 and 34 and the transmission of the transmission shaft 40, the detachable cord rolling device 10 of the invention has enough rolling force to work for the large-sized window blind, so the window blind doesn't need the additionally increased cord rolling unit 20, thereby lowered in cost and simplified in structure. Besides, the first and second torsion springs 24 and 34 may be the same or different in specification, so that the resilient force thereof may be equal or unequal, that can be modified according to practical demands. In this way, the structural arrangement is more selective and elastic.
Number | Date | Country | Kind |
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106141220 A | Nov 2017 | TW | national |
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Number | Date | Country | |
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