The present invention relates to window shutter technical field and, more particularly to a window shutter actuation device.
A window shutter actuation device is used for actuating slats of a window shutter to perform flipping or lifting, to realize the opening and closing operation of the window shutter. A current window shutter actuation device mainly includes a cord connected to the slats, a retracting mechanism for retracting the cord, and a brake mechanism for controlling a speed of retracting the cord. According to different positioning of window shutter products, the retracting mechanism may be manually operated by operators, or may be actuated by an automated power actuation mechanism. A cord of a current actuation device is directly extended into the brake mechanism after extending from the retracting mechanism. In use, it is easy to cause a great deviation of the position of the cord in the retracting mechanism, resulting in a change in the tightness of the cord winding, which eventually causes the flipping or lifting of the slats to be not in place, affecting the normal opening and closing of the window shutter.
Therefore, the technical problem to be solved by the embodiments of the present invention is to provide a window shutter actuation device, which is capable of effectively ensuring the tightness of a cord in a retracting mechanism.
To solve the above-mentioned technical problems, an embodiment of the present invention provides a window shutter actuation device including a cord for driving window shutter slats to move, a retracting mechanism for winding an end of the cord away from the window shutter slats, a brake mechanism arranged between the retracting mechanism and the window shutter slats for controlling a retracting or releasing speed of the cord, and a power mechanism for driving the retracting mechanism to rotate to wind the cord. The retracting mechanism includes a frame, a reel rotatably mounted to the frame for winding the cord, and a wheel arranged outside and adjacent to an end of the reel. The end of the cord wound on the reel passes about the wheel and then extends to the brake mechanism after extending from the reel.
Furthermore, the power mechanism includes at least one spring actuation box, and a transmission shaft for transmitting power between the at least one spring actuation box and the retracting mechanism. Each of the at least one spring actuation box includes a box body, a spring wheel and an output shaft mounted in the box body, and a planar scroll spring with two ends respectively wound on the spring wheel and the output shaft. The output shaft of a corresponding one of the at least one spring actuation box extends out of the box body and is connected to an end of the transmission shaft. An opposite end of the transmission shaft is connected to the reel of the retracting mechanism.
Furthermore, the power mechanism includes at least two spring actuation boxes each including an output shaft, and a transmission shaft. The at least two spring actuation boxes are connected end to end in an axial direction of the output shafts. An end of the output shaft of each spring actuation box extends out of the box body to form a plug, and an opposite end of the output shaft is concaved to form a socket. The plug of one of two neighboring spring actuation boxes is engaged in the socket of the other one of the two neighboring spring actuation boxes to realize transmission connection. An outer end of an output shaft of one of the two spring actuation boxes at the first and last ends is connected with an adapter. The adapter is connected to the corresponding end of the transmission shaft.
Furthermore, opposite ends of each spring actuation box respectively form a hook and a slot. The hook of one of two neighboring spring actuation boxes is engaged in the slot of the other one of the two neighboring spring actuation boxes, to connect the two neighboring spring actuation boxes together.
Furthermore, an end of each output shaft extends out of the corresponding box body to form a plug, and an opposite end of the output shaft is concaved to form a socket. The plug and the socket each is connected with an adapter. The adapter is connected to the corresponding transmission shaft.
Furthermore, an end of the adapter connected to the plug of the output shaft forms a socket engaged with the plug. An end of the adapter connected to the socket of the output shaft forms a plug engaged with the socket. Cross sections of the plugs and the sockets are matched and non-circular.
Furthermore, an end surface of the spring actuation box connected with the adapter is mounted with a cover. The cover defines a through hole, through which a corresponding end of the adapter extends. An end of the adapter adjacent to the box body forms a block located between an end surface of the box body and the corresponding cover.
Furthermore, opposite ends of the spring actuation box respectively form a hook and a slot. The covers respectively form a slot and a hook. The hook and the slot of the covers are respectively engaged with the slot and the hook of the box body.
Furthermore, each of the at least one brake mechanism includes a base, and a pressing plate rotatably mounted to the base through a rotation shaft. A side of the base facing the pressing plate forms a plurality of first friction axes, and a side of the pressing plate facing the base forms a plurality of second friction axes misaligned with the plurality of first friction axes. An end of the pressing plate away from the rotation shaft forms a fixing rod. The corresponding cord passed about the wheel and then extended to the brake mechanism extends between the plurality of first friction axes and the plurality of second friction axes, and is connected to the window shutter slats after passing about the fixing rod. When the window shutter slats are active, the pressing plate is actuated by the corresponding cord to rotate about the rotation shaft and between a clamping position and a release position. When the pressing plate is in the clamping position, the plurality of second friction axes actuates the corresponding cord to extend between the plurality of first friction axes and the plurality of second friction axes.
Furthermore, the brake mechanism is arranged outside an end of the reel opposite to the wheel.
By adopting the above-mentioned technical solutions, the beneficial effects of the inventive embodiment of the present invention are as follows. The embodiment of the present invention is provided with a wheel located outside an end of the reel, and an end of the cord is passed about the wheel and then extended into the brake mechanism after extending out of the reel. Therefore, it can be well ensured that the position of the cord on the reel will not be offset, and the tightness of the cord will not change, which allows the retracting mechanism to accurately move the window shutter slats to flip or lift in place when retracting or releasing the cord.
The present application will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be understood that the following illustrative embodiments and illustrations are only used to explain the present invention and are not intended to limit the invention, and that the features of the embodiments and embodiments of the present application may be combined with each other.
Referring to
Referring to
In the embodiment, the wheel 44 is arranged outside and adjacent to the end of the reel 42, and the end of the cord 3 wound on the reel 42 is extended from the reel 42, extended about the wheel 44, and then extended to the brake mechanism 5. Therefore, it can be well ensured that the position of the cord 3 on the reel 42 does not be offset, and the tightness of the cord 3 wound on the reel 42 does not change, so that the retracting mechanism 4 can accurately move the slats 2 to flip or lift in place when retracting or releasing the cord 3.
Referring to
Referring to
In an alternative embodiment, two opposite ends of the box body 600 of the spring actuation box 60 respectively form a hook 605 and a slot 607. The hook 605 of one of two neighboring spring actuation boxes 60 is correspondingly engaged in the slot 607 of the other one of the two neighboring spring actuation boxes 60, so as to connect the two neighboring spring actuation boxes 60. In the embodiment, the ends of the box body 600 of the spring actuation box 60 form the hook 605 and the slot 607. Therefore, the spring actuation boxes 60 can be connected end to end in a convenient manner by using the snap fit of the hooks 605 and the slots 607, and the structure is simple and easy to do assembly and disassembly operation.
In the embodiment illustrated in
Referring to
In an alternative embodiment, end surfaces of the box bodies 600 of the spring actuation boxes 60 respectively mounted with the adapters 64 and 66 are mounted with covers 68. The covers 68 define through holes 680, through which ends of the adapters 64 and 66 extend out. Ends of the adapters 64 and 66 adjacent to the box bodies 600 respectively form blocks 642 and 662 located between the end surfaces of the corresponding box bodies 600 and the corresponding covers 68. In the embodiment, the covers 68 are mounted to the end surfaces of the box bodies 600, so that the adapters 64 and 66 can be assembled more stably. Furthermore, the stability of the adapters 64 and 66 in the axial direction is limited by the blocks 642 and 662. Therefore, the adapters 64 and 66 transmit the rotary power more smoothly.
Referring to
In an alternative embodiment, the brake mechanism 5 includes a base 50, and a pressing plate 54 rotatably mounted to the base 50 through a rotation shaft 52. A side of the base 50 facing the pressing plate 54 forms a plurality of first friction axes 56. A side of the pressing plate 54 facing the base 50 forms a plurality of second friction axes 58 misaligned with the first friction axes 56. An end of the pressing plate 54 away from the rotation shaft 52 forms a fixing rod 59. The cord 3 passed about the wheel 44 and then extended to the brake mechanism 5 extends between the first friction axes 56 and the second friction axes 58, and is connected to the slats 2 after passing about the fixing rod 59. When the slats 2 are active, the pressing plate 54 is actuated by the cord 3 to rotate about the rotation shaft 52 and between a clamping position and a release position relative to the base 50. When the pressing plate 54 is in the clamping position, the second friction axes 58 actuate the cord 3 to extend between the first friction axes 56 and the second friction axes 58. In the embodiment, the first friction axes 56 and the second friction axes 58 adopt misalignment settings, to allow the cord 3 to extend between the first friction axes 56 and the second friction axes 58, so as to apply sufficient frictional resistance to the cord 3 to control the releasing speed of the cord 3. The cord 3 is connected to the slats 2 after passing about the fixing rod 59, so during the process of releasing the cord 3, the tension of the cord 3 against the fixing rod 59 allows the pressing plate 54 to be better held in the clamping position relative to the base 50, which is similar to a self-locking effect.
In an alternative embodiment, the brake mechanism 5 is arranged outside the end of the reel 42 away from the wheel 44. In the embodiment, the brake mechanism 5 is arranged outside the end of the reel 42 away from the wheel 44, which is convenient for arranging the retracting mechanism 4 and the brake mechanism 5, so as to optimize the structural design of the entire window shutter actuation device.
The specific embodiments described above further explain the objectives, technical solutions, and beneficial effects of the present invention. It is to be understood that the foregoing description is only specific embodiments of the present invention, and is not intended to limit the scope of the present invention. Any modifications, equivalent substitutions, improvements made within the spirit and scope of the present invention are intended to be included in the scope of the present invention.
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