BLIND BODY ACTUATOR FOR NON-CORD WINDOW BLIND ASSEMBLY
20200399955 ยท 2020-12-24
Inventors
Cpc classification
E06B9/322
FIXED CONSTRUCTIONS
E06B9/327
FIXED CONSTRUCTIONS
E06B2009/3222
FIXED CONSTRUCTIONS
International classification
E06B9/322
FIXED CONSTRUCTIONS
Abstract
A blind body actuator used in a non-cord window blind is provided to include a casing, a winding mechanism, a set of guide units, a set of lift-cord wheels, and a set of lift cords. The winding mechanism is rotatably mounted in the casing and includes a plurality of meshed and juxtaposed winding wheels and volute springs wound around the abovementioned winding wheels. The lift-cord wheels are meshed with the winding wheels and employed to wind the lift cords. The guide units contain some cylinder rollers that are employed for winding the lift cords based on actual needs.
Claims
1. A blind body actuator for non-cord window blind assembly, comprising: a casing; a winding mechanism rotatably mounted in said casing and comprising a first bottom winding wheel, a first upper winding wheel disposed on said first bottom winding wheel, a second bottom winding wheel meshed with said first bottom winding wheel, and a second upper winding wheel disposed on said second bottom winding wheel and meshed with said first upper winding wheel, said winding mechanism further comprising an upper volute spring and a bottom volute spring, said upper volute spring having two ends thereof connected with said first and second upper winding wheel respectively and being capable of wound around said first upper winding wheel or said second upper winding wheel, said bottom volute spring having two ends thereof connected to said first and second bottom winding wheel respectively and being capable of being wound around said first bottom winding wheel or said second bottom winding wheel; a set of lift-cord wheels, being rotatably mounted in said casing and comprising a first lift-cord wheel and a second lift-cord wheel, said first lift-cord and said second lift-cord being respectively meshed with said first bottom winding wheel and said second bottom winding wheel; a set of guide units, being rotatably mounted in said casing and comprising a first guide unit and a second guide unit, said first guide unit and said second guide unit being respectively disposed adjacent to said first lift-cord wheel and said second lift-cord wheel, said first and second guide units both comprising a first cylinder roller, each of said first cylinder rollers, said first and second winding wheels, and said first and second lift-cord wheels having an axle respectively, and said axles of said first cylinder rollers, said first and second winding wheels, and said first and second lift-cord wheels being parallel to each other; and a set of lift cords, comprising two first lift cords and two second lift cords, said two first lift cords and said two second lift cords being respectively wound around said first cylinder roller of said first guide unit and said first cylinder roller of said second guide unit respectively, each of said two first lift cords having one end thereof connected to said first lift-cord wheel so that each of said first lift cords are capable of being wound around or unwound around said first lift-cord wheel by said rotation of said first lift-cord wheel, each of said two second lift cords having one end thereof connected to said second lift-cord wheel so that each of said first lift cords are capable of being wound around or unwound around said second lift-cord wheel by the rotation of said second lift-cord wheel, each of said first lift cords and said second lift cords having an opposite end thereof extended out of said casing.
2. The blind body actuator as claimed in claim 1, wherein said casing has a front side and a rear side; said two first cylinder rollers are disposed adjacent to said front side of said casing; each of said first lift cords are wound around said first cylinder roller of said first guide unit through one turn and each of said second lift cords are wound around said first cylinder roller of said second guide unit through one turn.
3. The blind body actuator as claimed in claim 1, wherein both of said first and second guide units further comprise a second cylinder roller rotatably mounted in said casing; said casing has a front side and a rear side; said two first cylinder rollers and said two second cylinder rollers of said first and second guide units are respectively disposed adjacent to said front side and said rear side of said casing respectively; said two first lift cords are wound around said first cylinder roller of said first guide unit through half turn and then wound around said second cylinder roller of said first guide unit through half turn; said two second lift cords are wound around said first cylinder roller of said second guide unit through half turn and then wound around said second cylinder roller of said second guide unit through half turn.
4. The blind body actuator as claimed in claim 1, wherein said first guide unit and said second guide unit both further comprise a second cylinder roller and a third cylinder roller; said casing comprises a front side and a rear side; said two second cylinder rollers and said two third cylinder rollers are rotatably mounted in said casing; said two first cylinder rollers are mounted adjacent to said front side; said two second cylinder rollers and said two third cylinder rollers are juxtaposed and mounted adjacent to said rear side; said two first lift cords are wound around said first cylinder roller of said first guide unit through half turn, wound around said second cylinder roller of said first guide unit through half turn, and then wound around said third cylinder roller of said first guide unit through one turn; said two second lift cords are wound around said first cylinder roller of said second guide unit through half turn, wound around said second cylinder roller of said second guide unit through half turn, and then wound around said third cylinder roller of said second guide unit through one turn.
5. The blind body actuator as claimed in claim 1, wherein said casing comprises a left side and a right side, both of which has an opening and a cross bar disposed in the corresponding said opening in such a manner that a center of said cross bar coincides with a center of the corresponding opening; said two first lift cords are extended out of said casing through said opening and peripherally abutted against said center of the corresponding cross bar at said left side; said two second lift cords are extended out of said casing through said opening and peripherally abutted against said center of the corresponding said cross bar at said right side.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE INVENTION
[0020] Referring to
[0021] The casing 20 is mounted in the headrail 12, comprising a top panel 22 and an opposing bottom panel 21 fastened to the top panel 22. The top panel 22 has two opposing through holes 26 for mounting a steering rod 18 of the window blind 1. Further, the casing 20 has two openings 23 defined between the bottom panel 21 and the top panel 22 in each of two lateral sides respectively (i.e. left side and right side of the casing 20), and two cross bar 24 each located in each of the opening 23 and fixedly connected between the bottom panel 21 and the top panel 22 in such a manner that a center of the cross bar 24 coincides with a center of a corresponding one of the opening 23.
[0022] The winding mechanism 30 comprises a first upper winding wheel 32a, a second upper winding wheel 32b, a first lower winding wheel 32c, a second lower winding wheel 32d, an upper volute spring 34a, and a lower volute spring 32b. The first upper winding wheel 32a and the second upper winding wheel 32b are juxtaposed (along a direction from the left side to the right side of the casing 20) on the top panel 22 and meshed with each other. The first lower winding wheel 32c and the second lower winding wheel 32d are juxtaposed on the top panel 22 and respectively and coaxially disposed below the first upper winding wheel 32a and the second upper winding wheel 32b. The first lower winding wheel 32c and the second lower winding wheel 32d are meshed with each other. Further, the first upper winding wheel 32a along with the first lower winding wheel 32c are connected with a first wheel axle 28 (so are the second upper winding wheel 32b and the second lower winding wheel 32d) in such a manner that the winding wheels 32a, 32b,32c,32d can rotate synchronously. The upper volute spring 34a has two opposite ends thereof respectively connected to the first upper winding wheel 32a and the second upper winding wheel 32b. Subject to relative rotation between the first upper winding wheel 32a and the second upper winding wheel 32b, the upper volute spring 34a can be fully wound around the first upper winding wheel 32a or the second upper winding wheel 32b. Similarly, the lower volute spring 34b has two opposite ends thereof respectively connected to the first lower winding wheel 32c and the second lower winding wheel 32d. Subject to relative rotation between the first lower winding wheel 32c and the second lower winding wheel 32d, the lower volute spring 34b can be fully wound around the first lower winding wheel 32c or the second lower winding wheel 32d.
[0023] The set of the lift-cord wheels 40 comprises a first lift-cord wheel 40a and a second lift-cord wheel 40b, both of which are rotatably mounted between the top panel 22 and the bottom panel 21 of the casing 20 by two corresponding second wheel axles 29. The first lift-cord wheel 40a is meshed with the first lower winding wheel 32c, and the second lift-cord wheel 40b is meshed with the second lower winding wheel 32b so that the first lift-cord wheel 40a is rotatable with the meshed first lower winding wheel 32c synchronously and the second lift-cord wheel 40b is rotatable with the meshed second lower winding wheel 32d synchronously. Further, both of the first lift-cord wheel 40a and the second lift-cord wheel 40b have a partition 41 disposed at a middle thereof. The partition 41 separates two accommodating spaces for winding the corresponding lift cords 60.
[0024] With reference to
[0025] The set of lift cords 60 has two first lift cords 60a,60b and two second lift cords 60c,60d. The two first lift cords 60a,60b each have one end thereof fixedly connected to the first lift-cord wheel 40a and respectively disposed at two sides of the partition 41 of the first lift-cord wheel 40a so that the two first lift cords 60a,60b can be wound or unwound around the first lift-cord wheels 40a by the rotation of the first lift-cord wheels 40a. Hence, the two first lift cords 60a,60b will not intertwine to each other. The two second lift cords 60c,60d each have one end thereof fixedly connected to the second lift-cord wheel 40b and respectively disposed at two sides of the partition 41 of the second lift-cord wheel 40b so that the two second lift cords 60c,60d can be wound or unwound around the second lift-cord wheels 40b by the rotation of the second lift-cord wheels 40b. Hence, the two second lift cords 60c,60d will not intertwine to each other. Further, according to various sizes of different window blinds 1, the user may employ corresponding winding methods to wind the two first lift cords 60a,60b around the cylinder rollers 51,52,53 of the first guide unit 50a. (Similarly, the user may employ corresponding methods to wind the two second lift cords 60c,60d around the cylinder rollers 51,52,53 of the second guide unit 50b.) For example, if a small size window blind 1 is applied as shown in
[0026] Based on the abovementioned structure of the blind body actuator 10, when the user wants to extend out the blind body 16 (shown in
[0027] When the user wants to receive the blind body 16 (as shown in
[0028] Either in the process of extending out the blind body 16 or receiving the blind body 16, the cylinder rollers 51,52,53 of the guide units 50a,50b can be driven to rotate by the corresponding lift cords 60 by means of the friction force generated therebetween, enhancing the stability and smoothness of the actuation of the lift cords 60, and thus, the overall operation process can achieve optimal actuation effects.