The present invention relates to non-pull cord window blinds, and more particularly, to a dual-torsion-spring cord rolling device for the non-pull cord window blinds.
As to the non-pull cord window blinds, the lift transmission cords are rolled up by the automatic cord rolling device disposed in the top beam. Owing that the lift transmission cords are connected to the bottom beam, the bottom beam is gradually moved up relative to the top beam during the process that the lift transmission cords are rolled up, so that the slats of the window blind are piled and raised by the upwardly moving bottom beam.
The aforesaid automatic cord rolling device is workable for normal-sized window blind. However, for the large-sized window blind, the pulling force provided by the aforesaid automatic 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 automatic cord rolling devices, but the increasement of the number of components certainly increases the manufacturing cost and the structural complication.
It is a primary objective of the present invention to provide a dual-torsion-spring cord rolling device for non-pull cord window blind, which can be workable along for the large-sized window blind without additional cord rolling device, thereby lowering manufacturing cost and simplifying the overall structure.
To attain the above objective, the present invention provides a dual-torsion-spring cord rolling device which includes a base, a driving unit, and a transmission unit. The driving unit has a first torsion spring gear, a second torsion spring gear, a first torsion spring, a wheel, and a second torsion spring. The first torsion spring gear is rotatably disposed in the base. The second torsion spring gear is rotatably disposed in the base and engaged with the first torsion spring gear. The first torsion spring connects the first and second torsion spring gears. The wheel is disposed in the base in a way that the wheel is rotatable freely and located adjacent to the first torsion spring gear. The second torsion spring connects the second torsion spring gear and the wheel. The transmission unit has a first transmission gear, a second transmission gear, and two lift transmission cords. The first and second transmission gears are disposed in the base in a way that the first and second transmission gears are rotatable synchronously and at least one of the first and second transmission gears is engaged with the second torsion spring gear. An end of one of the two lift transmission cords is attached to the first transmission gear, and an end of the other lift transmission cord is attached to the second transmission gear.
When the two lift transmission cords are pulled out at the same time, the first and second transmission gears rotate in opposite directions, and then the second transmission gear drives the second torsion spring gear to rotate. During the rotation of the second torsion spring gear, the second torsion spring gear drives the first torsion spring gear to rotate, and at the same time rolls up the first and second torsion springs, so that the resilient force of the first and second torsion springs is accumulated; at this time, the wheel is free to rotate. Once the resilient force of the first and second torsion springs is released, the second torsion spring gear will drive the second transmission gear to rotate reversely, and the second transmission gear will drive the first transmission gear to rotate reversely, so that the first and second transmission gears will roll up the associated lift transmission cords respectively; at this time, the wheel is free to rotate.
According to the above illustration, the cooperation of the first and second torsion springs makes the dual-torsion-spring cord rolling device of the present invention have enough rolling force to work along for large-sized window blind, so the large-sized window blind doesn't need the additional cord rolling device, thereby lowering manufacturing cost and simplifying the overall structure.
Referring to
The base 20 is fixedly mounted on a top beam (not shown) and has a top plate 21 and a bottom plate 23. The top plate 21 is provided on the bottom surface thereof with a plurality of upper peripheral pillars 22, The bottom plate 23 is provided on the top surface thereof with a plurality of lower peripheral pillars 24, The top plate 21 and the bottom plate 23 are combined in a way that the upper and lower peripheral pillars 22 and 24 are engaged with each other. Besides, the base 20 is provided on an end thereof with a plurality of first and second guiding rods 25 and 26, which are positioned symmetrically. Two ends of each of the first and second guiding rods 25 and 26 are connected with the top plate 21 and the bottom plate 23 respectively.
Referring to
The transmission unit 40 has a first transmission gear 41, a second transmission gear 42, and two lift transmission cords 43 and 44. In this embodiment, the first and second transmission gears 41 and 42 are rotatably disposed in the base 20 in a way that the first and second transmission gears 41 and 42 and the first and second torsion spring gears 31 and 32 are linearly arranged and the first and second transmission gears 41 and 42 are engaged with each other. The second transmission gear 42 is further engaged with the second torsion spring gear 32, so that the first and second transmission gears 41 and 42 and the second torsion spring gear 32 are rotatable synchronously. The two lift transmission cords 43 and 44 are wound around the first and second guiding rods 25 and 26 of the base 20 respectively. An end of the two lift transmission cords 43 and 44 are attached to the first and second transmission gears 41 and 42 respectively. The other end of the two lift transmission cords 43 and 44 are both connected with a bottom beam (not shown).
When the bottom beam is pulled down to unfold the slats, the two lift transmission cords 43 and 44 are gradually pulled out from the first and second transmission gears 41 and 42 by the bottom beam, at the same time, making the first and second transmission gears 41 and 42 rotate in opposite directions by the engagement therebetween. In the view shown in
In opposite, when the bottom beam is pushed up, the upward pushing force received by the bottom beam counteracts the weight of the bottom beam and all the slats, so that the resilient force of the first and second torsion springs 33 and 35 is released to drive the second torsion spring gear 32 to rotate. As shown in
When the bottom beam is not applied with external force, the first and second guiding rods 25 and 26 respectively provides the two lift transmission cords 43 and 44 appropriate resistance, enabling the slats to stop anytime at any height and not easily extended or fold up when the external force is relieved.
On the other hand, the first and second transmission gears 41 and 42 may be structurally modified in second embodiment. As shown in
In conclusion, through the cooperation of the first and second torsion springs 33 and 35, the dual-torsion-spring cord rolling device 10 of the invention has enough rolling force to work along for large-sized window blinds, so the large-size window blind doesn't need additional cord rolling device, thereby lowering manufacturing cost and simplifying the overall structure. Besides, the first and second torsion springs 33 and 35 may be alternatively designed in the same or different width or thickness, so that the resilient three thereof may be equal or unequal, providing multiple choices to the structural arrangement of window blind according to different practical demand and enhancing the structural design flexibility to better manipulate the resilient force generated by the dual-torsion-spring cord rolling device.
Number | Date | Country | Kind |
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106140972 | Nov 2017 | TW | national |