The present invention relates to a window blind, and more particularly to a cord winding structure for window blind that has lower use cost and allows cords of the window blind to be released or rewound smoothly without the risk of becoming tangled easily.
A window blind is mounted on a window to block sun light from directly entering a room and therefore makes the room more comfortable. When the light in the room is insufficient, the window blind can be opened to increase the brightness in the room. Further, the window blind can also be used to protect the users' privacy and decorate the room.
Conventionally, a window blind includes a blind, a transmission unit, and a plurality of cords. The transmission unit is located on a top of the blind and is connected to the cords, and the blind is connected to the cords via the transmission unit. A user can pull and control the cords for the blind to open or close in response to the movements of the transmission unit and the cords. While the conventional window blind provides the effect of adjusting indoor brightness, it has a problem in operation. Since the cords of the conventional window blind are connected to the transmission unit and the blind is connected to the cords via the transmission unit, the user has to pull the cords to open or close the blind. In the event the user pulls the cords with an excessive force or releases the cords too quickly, the blind might not be accurately stopped at the user's desired position. The user might have to pull the cords several times before the blind can be opened or closed to the desired position. Therefore, the conventional window blind has poor convenience in use.
Further, when the user intends to open or close the blind but applies an uneven force to pull the cords, the cords connected to the transmission unit tend to become tangled and could not be pulled smoothly. Therefore, additional cord accessories are needed to control the cords or prevent the cords from tangling, resulting in increased use cost of the conventional window blind.
Therefore, the conventional window blind has the following disadvantages: (1) high use cost; (2) poor convenience in use; and (3) tending to cause tangled cords and accordingly unsmooth releasing and rewinding of the cords.
It is therefore tried by the inventor to develop an improved cord winding structure for window blind to overcome the drawbacks of the conventional window blind.
A primary object of the present invention is to provide a cord winding structure for window blind that enables lower use cost.
Another object of the present invention is to provide a cord winding structure for window blind that has high convenience in use and allows cords of the window blind to be released or rewound smoothly without the risk of becoming tangled easily.
To achieve the above and other objects, the cord winding structure for window blind according to a preferred embodiment of the present invention includes a cord winding assembly composed of a first plate member, a guide rod, a second plate member, a first shaft, a second shaft, a first guiding wheel, a second guiding wheel, a spiral spring, and a first cord.
The first plate member is provided with a guide rod support bracket unit, which is upward projected from one side of the first plate member, and a first hole set. The guide rod is provided with a plurality of holes that radially extend through the guide rod, and is rotatably rested on the guide rod support bracket unit. The second plate member is provided with a plurality of pulley sets, which are located on one side of the second plate member facing toward the first plate member, and a second hole set. The first shaft has two ends separately engaged with the first and the second hole set to thereby connect to the first and the second plate member. The second shaft has two ends separately engaged with the first and the second hole set to thereby connect to the first and the second plate member. The first guiding wheel has a first cord receiving groove, a top portion and a first shaft hole; the first shaft hole axially extends through the first guiding wheel and is rotatably fitted around the first shaft. The second guiding wheel has a first receiving space and a second shaft hole; the second shaft hole axially extends through the second guiding wheel and is rotatably fitted around the second shaft. The first spiral spring is fitted in the first receiving space of the second guiding wheel with an end fixedly connected to the second guiding wheel and another end extended to fasten to the first guiding wheel. The first cord is wound around the guide rod, the pulley sets, and the first cord receiving groove. By providing the upward projected guide rod support bracket unit on the first plate member to support the guide rod thereon, the cord winding structure for window blind according to the present invention can have lower use cost and high convenience in use, and allows the cord to be smoothly released or rewound without the risk of becoming tangled easily.
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
The present invention will now be described with some preferred embodiments thereof and by referring to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
Please refer to
The cord winding assembly 1 is composed of a first plate member 11, a guide rod 12, a second plate member 13, a first shaft 14, a second shaft 15, a first guiding wheel 16, a second guiding wheel 17, a first spiral spring 18, and a first cord 19.
The first plate member 11 is provided with a guide rod support bracket unit 111, which is upward projected from one side of the first plate member 11, and a first hole set 112.
The guide rod support bracket unit 111 includes a first guide rod support bracket 111a and a second guide rod support bracket 111b, which are upward projected from one side of the first plate member 11 and are respectively provided with a first receiving recess 111c and a second receiving recess 111d. The guide rod 12 is rested in the first and second receiving recesses 111c, 111d.
The first hole set 112 includes a first hole 112a and a second hole 112b.
The guide rod 12 is provided with a plurality of spaced holes 121, which radially extend through the guide rod 12. Further, the guide rod 12 is rotatably rested on the first and the second guide rod support brackets 111a, 111b of the guide rod support bracket unit 111.
On one side of the second plate member 13 facing toward the first plate member 11, there are provided a plurality of pulley sets 131 and a second hole set 132. The second hole set 132 includes a third hole 132a, a fourth hole 132b, and a fifth hole 132c. The pulley sets 131 respectively include a first pulley support 131a, a second pulley support 131b, a pulley 131c and a pulley axle 131d. The first and the second pulley support 131a, 131b are located corresponding to each other, and the pulley 131c is rotatably mounted on the first and second pulley supports 131a, 131b via the pulley axle 131d.
The first shaft 14 and the second shaft 15 both have two opposite ends engaged with the first hole set 112 on the first plate member 11 and the second hole set 132 on the second plate member 13, so as to connect to the first and the second plate member 11, 13. More specifically, the first and the second shaft 14, 15 have an end inserted in the third and the fourth hole 132a, 132b, respectively, and fixedly connected to the second plate member 13 by riveting.
The first and the second shaft 14, 15 have another opposite end correspondingly inserted in the first and the second hole 112a, 112b on the first plate member 11, respectively. And, the first shaft 14 is fixedly connected to the first plate member 11 via a screw element 6, which is extended through the first hole 112a to screw to the end of the first shaft 14 that is engaged with the first hole 112a.
The first guiding wheel 16 includes a first cord receiving groove 161, a top portion 162, and a first shaft hole 163. The first shaft hole 163 axially extends through the first guiding wheel 16 and is rotatably fitted around the first shaft 14.
The second guiding wheel 17 includes a first receiving space 171 and a second shaft hole 172. The second shaft hole 172 axially extends through the second guiding wheel 17 and is rotatably fitted around the second shaft 15. The first spiral spring 18 is fitted in the first receiving space 171 of the second guiding wheel 17, and has an end fixedly connected to the second guiding wheel 17 and another end extended to fasten to the first guiding wheel 16.
The first cord 19 is wound around the guide rod 12, the pulley sets 131 and the first cord receiving groove 161. The first cord 19 has an end extended through one of the holes 121 formed on the guide rod 12 and another end fixedly connected to the first cord receiving groove 161 of the first guiding wheel 16.
Please refer to
In the fifth preferred embodiment, the guide rod support bracket unit 111 further includes a third guide rod support bracket 111e upward projected from one side of the first plate member 11 and located adjacent to the first and second guide rod support brackets 111a, 111b. The third guide rod support bracket 111e is provided with a third receiving recess 111f. The guide rod 12 is rested in the first, second and third receiving recesses 111c, 111d, 111f.
In the fifth preferred embodiment, the first hole set 112 further includes a sixth hole 112c and a seventh hole 112d; and the second hole set 132 further includes an eighth hole 132d and a ninth hole 132e. The third and the fourth shaft 51, 52 have an end inserted in the eighth and the ninth hole 132d, 132e, respectively, and fixedly connected to the second plate member 13 by riveting. The third and the fourth shaft 51, 52 have another opposite end correspondingly inserted in the sixth and the seventh hole 112c, 112d on the first plate member 11, respectively. And, the third shaft 51 is fixedly connected to the first plate member 11 via a screw element 6, which is extended through the sixth hole 112c to screw to the end of the third shaft 51 that is engaged with the sixth hole 112c.
In the fifth preferred embodiment, the guide rod support bracket unit 111 further includes a third slide jacket 111g, which is fitted over the third guide rod support bracket 111e.
As can be seen from
As can be seen in the drawings, the first and the second plate member 11, 13 are provided on areas immediately adjacent to the structures upward projected from the first and the second plate member 11, 13, such as the guide rod support bracket unit 111, the first pulley support 131a and the second pulley support 131b, with openings having sizes the same as or closed to that of the corresponding projected structures. The first, the second and the third cord 19, 3, 4 respectively have an end extended through selected ones of these openings, and can therefore be more smoothly rewound onto or released from the guide rod 12.
In brief, the cord winding structure for window blind according to the present invention is superior to the prior art due to the following advantages: (1) lower use cost; (2) high convenience in use; and (3) allowing cords of the window blind to be released or rewound smoothly without the risk of becoming tangled easily.
The present invention has been described with some preferred embodiments thereof and it is understood that many changes and modifications in the described embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.
| Number | Date | Country | Kind |
|---|---|---|---|
| 102142226 | Nov 2013 | TW | national |