The present invention relates to window blinds and more particularly, to a double-layer cord rolling device for a non-pull cord window blind.
In general, as to the non-pull cord window blind, it uses its cord rolling device disposed in the top beam thereof to roll up the lift transmission cords. Owing that the lift transmission cords are connected to the bottom beam, the bottom beam can be gradually moved up relative to the top beam when the lift transmission cords are being rolled up, so that the slats of the window blind can be piled up and raised by upwardly moving the bottom beam.
The aforesaid cord rolling device is workable for normal-sized window blind. However, for the special-sized (e.g. long narrow type) window blinds, subject to the length of the aforesaid cord rolling device, the cord rolling device is likely to interfere with other components of the window blind. Therefore, it would be a desired goal in the window blind field to shorten the length of the aforesaid cord rolling device appropriately without affecting the functioning of the cord rolling device.
It is a primary objective of the present invention to provide a double-layer cord rolling device for the non-pull cord window blind, which is shorter in length, thereby attaining the effect of miniaturization.
To attain the above objective, the double-layer cord rolling device of the present invention includes a driving unit, a cord rolling unit, and a first transmission shaft. The driving unit has an upper base, a first torsion spring gear, a second torsion spring gear, and a torsion spring. The first and second torsion spring gears are rotatably disposed in the upper base and engaged with each other. The torsion spring connects the first and second torsion spring gears. The cord rolling unit has a lower base, a first cord rolling wheel, a second cord rolling wheel, and two lift transmission cords. The lower base is connected with the upper base of the driving unit. The first and second cord rolling wheels are disposed in the lower base in a way that the first and second cord rolling wheels are capable of rotating synchronously and coaxial with the first and second torsion spring gears of the driving unit respectively. An end of one of the two lift transmission cords is connected to the first cord rolling wheel, and an end of the other lift transmission cord is connected to the second cord rolling wheel, so that the two lift transmission cords can be wound around the first and second cord rolling wheels or released from the first and second cord rolling wheels through the rotation of the first and second cord rolling wheels respectively. The first transmission shaft connects the first torsion spring gear of the driving unit and the first cord rolling wheel of the cord rolling unit, enabling the first torsion spring gear and the first cord rolling wheel to rotate synchronously.
According to the above description of the double-layer cord rolling device of the present invention, the driving unit and the cord rolling unit are combined together in a stacking manner, and the first transmission shaft enables the driving unit to drive the cord rolling unit to operate with the driving unit synchronously. As a result, the double-layer cord rolling device is shortened in length on the whole without affecting its functioning, thereby attaining the effect of miniaturization.
Preferably, the first cord rolling wheel has a first axial portion, a first upper toothed disc portion and a first lower toothed disc portion; the first axial portion is connected with a corresponding one of the lift transmission cords; the first upper toothed disc portion is connected to a top end of the first axial portion; the first lower toothed disc portion is connected to a bottom end of the first axial portion; the second cord rolling wheel has a second axial portion, a second upper toothed disc portion and a second lower toothed disc portion; the second axial portion is connected with a corresponding one of the lift transmission cords the second upper toothed disc portion is connected to a top end of the second axial portion and engaged with the first upper toothed disc portion of the first cord rolling wheel; the second lower toothed disc portion is connected to a bottom end of the second axial portion and engaged with the first lower toothed disc portion of the first cord rolling wheel. As a result, the first and second cord rolling wheels can rotate synchronously through the engagement and transmission therebetween.
Preferably, the second torsion spring gear of the driving unit and the second cord rolling wheel of the cord rolling unit are connected by a second transmission shaft. Besides, the first cord rolling wheel has a first axial portion, a first upper disc portion and a first lower disc portion; the first axial portion is connected with a corresponding one of the lift transmission cords; the first upper disc portion is connected to a top end of the first axial portion; the first lower disc portion is connected to a bottom end of the first axial portion; the second cord rolling wheel has a second axial portion, a second upper disc portion and a second lower disc portion; the second axial portion is connected with a corresponding one of the lift transmission cords; the second upper disc portion is connected to a top end of the second axial portion and separated from the first upper disc portion of the first cord rolling wheel by a predetermined distance therebetween; the second lower disc portion is connected to a bottom end of the second axial portion and separated from the first lower disc portion of the first cord rolling wheel by a predetermined distance therebetween. As a result, the first and second cord rolling wheels can be driven by the first and second torsion spring fears respectively to rotate synchronously.
Further scope of applicability of the present invention will become apparent from the detailed description given hereinafter. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the invention, are given by way of illustration only, since various changes and modifications within the spirit and scope of the invention will become apparent to those skilled in the art from this detailed description.
First of all, it is to be mentioned that same reference numerals used in the following preferred embodiments and the appendix drawings designate same or similar elements or structural features thereof.
Referring to
The driving unit 20 has an upper base 21, a first torsion spring gear 22, a second torsion spring gear 23, and a torsion spring 26.
The upper base 21 has a first top plate 211 and a first bottom plate 212. The first top and bottom plates 211 and 212 are connected by a plurality of first supporting posts 213. Each of the first supporting posts 213 is provided at the bottom end thereof with a hook portion 214. Besides, in this embodiment, the first bottom plate 212 is provided on the bottom surface thereof with a bottom hole 215, as shown in
The first and second torsion spring gears 22 and 23 are rotatably disposed in the upper base 21 and engaged with each other, so that the first and second torsion spring gears 22 and 23 are rotatable synchronously. As shown in
The torsion spring 26 connects the first and second torsion spring gears 22 and 23 for providing resilient force to drive the first and second torsion spring gears 22 and 23 to rotate synchronously.
The cord rolling unit 30 has a lower base 31, a first cord rolling wheel 32, a second cord rolling wheel 33, and two lift transmission cords 34.
The lower base 31 has a second top plate 311 and a second bottom plate 312. The second top and bottom plates 311 and 312 are connected by a plurality of second supporting posts 313. The second top plate 311 is provided on the top surface thereof with a top hole 315. As shown in
The first and second cord rolling wheels 32 and 33 are rotatably disposed in the lower base 31. In this embodiment, as shown in
As shown in
The first transmission shaft 40 is hexagon-shaped in cross section. The top of the first transmission shaft 40 is inserted through the bottom hole 215 of the first bottom plate 212 of the upper base 21 and engaged with the first upper polygonal axial hole 24 of the first torsion spring gear 22, as shown in
According to the above illustration, when the two lift transmission cords 34 are pulled out to gradually escape from the first and second cord rolling wheels 32 and 33, the first and second cord rolling wheels 32 and 33 rotate synchronously. The first cord rolling wheel 32 drives the first torsion spring gear 22 through the first transmission shaft 40, so that the first torsion spring gear 22 drives the second torsion spring gear 23 through the engagement therebetween. At this time, the torsion spring 26 is stretched by the first and second torsion spring gears 22 and 23 so as to save resilient force. When the pulling force applied on the two lift transmission cords 34 is relieved, the resilient force of the torsion spring 26 is applied on the first and second torsion spring gears 22 and 23 to cause the first and second torsion spring gears 22 and 23 to rotate reversely and synchronously. The first torsion spring gear 22 drives the first cord rolling wheel 32 through the first transmission shaft 40, and then the first cord rolling wheel 32 drives the second cord rolling wheel 33 through the engagement therebetween, so that the first and second cord rolling wheels 32 and 33 roll up the associated lift transmission cords 34 respectively.
On the other hand, as shown in
Besides, as shown in
Referring to
Specifically speaking, the driving unit 20 in this embodiment, which has an upper base 21, a first torsion spring gear 22, a second torsion spring gear 23 and a torsion spring 26, is slightly and structurally different from that in the aforesaid embodiment in that the first bottom plate 212 of the upper base 21 has two bottom holes 215. One of the bottom holes 215 corresponds to the first upper polygonal axial hole 24 of the first torsion spring gear 22, as shown in
The cord rolling unit 30 in this embodiment, which has a lower base 31, first cord rolling wheel 50, a second cord rolling wheel 60 and two lift transmission cords 34, is slightly and structurally different from that in the aforesaid embodiment in that the second top plate 311 of the lower base 31 has two top holes 315. One of the top holes 315 corresponds to the first lower polygonal axial hole 54 of the first cord rolling wheel 50, as shown in
Except for the first transmission shaft 40, a second transmission shaft 42 is further provided in this embodiment. The second transmission shaft 42 is hexagon-shaped in cross section. The top of the second transmission shaft 42 is inserted through the secondary bottom hole 215 of the first bottom plate 212 of the upper base 21 and engaged with the second upper polygonal axial hole 25 of the second torsion spring gear 23, as shown in
According to the above illustration that when the two lift transmission cords 34 are pulled out to gradually escape from the first and second cord rolling wheels 50 and 60, the first and second cord rolling wheels 50 and 60 rotate synchronously. The first cord rolling wheel 50 drives the first torsion spring gear 22 through the first transmission shaft 40, and the second cord rolling wheel 60 drives the second torsion spring gear 23 through the second transmission shaft 42. At this time, the torsion spring 26 is stretched by the first and second torsion spring gears 22 and 23 so as to save resilient force. When the pulling force applied on the two lift transmission cords 34 is relieved, the resilient force of the torsion spring 26 is applied on the first and second torsion spring gears 22 and 23 to cause the first and second torsion spring gears 22 and 23 to rotate synchronously. The first torsion spring gear 22 drives the first cord rolling wheel 50 through the first transmission shaft 40, and the second torsion spring gear 23 drives the second cord rolling wheel 60 through the second transmission shaft 42, so that the first and second cord rolling wheels 50 and 60 roll up the associated lift transmission cords 34 respectively.
In conclusion, in the double-layer cord rolling device 10 or 12 of the present invention, the driving unit 20 and the cord rolling unit 30 are combined together in a stacking manner, and at least one transmission shaft is used for transmitting power. As a result, the double-layer cord rolling device is shortened in length on the whole without affecting the functioning thereof, thereby attaining the effect of miniaturization.
Number | Date | Country | Kind |
---|---|---|---|
107109438 A | Mar 2018 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
6508293 | Huang | Jan 2003 | B1 |
6536503 | Anderson | Mar 2003 | B1 |
9272875 | Lin | Mar 2016 | B2 |
9574396 | Toti | Feb 2017 | B2 |
20120032019 | Chen | Feb 2012 | A1 |
20140224431 | Lin | Aug 2014 | A1 |
20170107075 | Hung | Apr 2017 | A1 |
20170204656 | Chen | Jul 2017 | A1 |
20170211321 | Chen | Jul 2017 | A1 |
20170254144 | Chen | Sep 2017 | A1 |
20190162016 | Chen | May 2019 | A1 |
20190162278 | Chen | May 2019 | A1 |
20190211624 | Lei | Jul 2019 | A1 |
Number | Date | Country | |
---|---|---|---|
20190292845 A1 | Sep 2019 | US |