This application claims priority of Taiwanese Utility Model Patent Application No. 109209288, filed on Jul. 21, 2020.
The disclosure relates to an adjustable bed, and more particularly to an adjustable bed having a lumbar support unit.
A conventional adjustable bed disclosed in U.S. Patent Publication No. US20140041121 includes a head board, a back board, a thigh board, a calf board and a lumbar support, all of which are adjustable for comfort of the user.
However, to provide such adjustability, the conventional adjustable bed includes a total of four motors to drive movements of the head board, the back board, the calf board and the lumbar support, respectively, which can be quite power-consuming and cost-ineffective.
Therefore, the object of the disclosure is to provide an adjustable bed that can alleviate the drawback of the prior art.
According to the disclosure, an adjustable bed includes a base frame unit, a front bed frame unit, a first jack member and a lumbar support unit.
The base frame unit extends in a longitudinal direction. The front bed frame unit includes a back board which is hingedly connected relative to the base frame unit at a first axis extending in a transverse direction relative to the longitudinal direction. The back board is convertible between a back normal position, where an end of the back board distal from the first axis is proximate to the base frame unit, and a back elevated position, where the end of the back board is distal from the base frame unit.
The first jack member is coupled between the front bed frame unit and the base frame unit so as to permit the back board to be driven by the first jack member to convert between the back normal position and the back elevated position.
The lumbar support unit includes two linking bars, a lumbar support and two lever bars.
The linking bars are disposed at a side of the back board same as the base frame unit, and are spaced apart from each other in the transverse direction. Each of the linking bars extends lengthwise to terminate at a first bar end and a second bar end which is pivoted to the base frame unit at a second axis extending in the transverse direction.
The lumbar support extends in the transverse direction and is disposed at another side of the back board opposite to the linking bars.
The lever bars are spaced apart in the transverse direction, and extend respectively through two apertures of the back board. Each of the lever bars has a pivot end, a connected end and a middle region.
The pivot end is connected pivotally to the first bar end of a respective one of the linking bars. The connected end is connected to the lumber support. The middle region is disposed between the pivot end and the connected end, and is pivoted to the back board at a third axis extending in the transverse direction such that in response to movement of the back board to the back elevated position from the back normal position, the lumbar support is moved to a remote position from a close position relative to the back board.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment with reference to the accompanying drawings, of which:
Referring to
The base frame unit 1 extends in a longitudinal direction (X). In an embodiment shown in
The front bed frame unit 2 includes a back board 21 which is hingedly connected relative to the base frame unit 1 at a first axis (A1) extending in a transverse direction (Y) relative to the longitudinal direction (X). The back board 21 is convertible between a back normal position (see
The first drive mechanism 4 includes a first jack member 43 which is coupled between the front bed frame unit 2 and the base frame unit 1 so as to permit the back board 21 to be driven by the first jack member 43 to convert between the back normal position and the back elevated position.
The lumbar support unit 6 includes two linking bars 61, a lumbar support 63 and two lever bars 62.
The linking bars 61 are disposed at a side of the back board 21 same as the base frame unit 1, and are spaced apart from each other in the transverse direction (Y). Each of the linking bars 61 extends lengthwise to terminate at a first bar end 611 and a second bar end 612 which is pivoted to the base frame unit 1 at a second axis (A2) extending in the transverse direction (Y). The lumbar support 63 extends in the transverse direction (Y) and is disposed at another side of the back board 21 opposite to the linking bars 61. The lever bars 62 are spaced apart in the transverse direction (Y), and extend respectively through two apertures 211 of the back board 21 (see
Specifically, each of the lever bars 62 has a pivot end 621, a connected end 622 and a middle region 623.
The pivot end 621 is connected pivotally to the first bar end 611 of a respective one of the linking bars 61. The connected end 622 is connected to the lumber support 63. The middle region 623 is disposed between the pivot end 621 and the connected end 622, and is pivoted to the back board 21 at a third axis (A3) extending in the transverse direction (Y) such that in response to movement of the back board 21 to the back elevated position from the back normal position, the lumbar support 63 is moved to a remote position (
Furthermore, a first angle (01) formed between the base frame unit 1 and the back board 21 may range from 0 to 100 degrees (e.g., 0 degree in
In an embodiment shown in
In an embodiment shown in
The first support units 41 are disposed between the base frame unit 1 and the front bed frame unit 2, and are spaced apart from each other in the transverse direction (Y). Each of the first support units 41 includes a first arm 411 having one end which is pivotably connected to the base frame unit 1 at a fourth axis (A4) extending in the transverse direction (Y), and another end which is coupled to be slidable relative to the front bed frame unit 2 between a first distal position and a first proximate position. When at the first distal position, as shown in
The first actuated beam 42 extends in the transverse direction (Y) to interconnect the first arms 411 of the first support units 41. The first jack member 43 is coupled between the first actuated beam 42 and the base frame unit 1 so as to permit the first actuated beam 42 to be actuated by the first jack member 43 to turn about the second axis (A2), thereby moving the another end of the first arm 411 between the first distal and first proximate positions.
In an embodiment shown in
In an embodiment shown in
The rail 412 of each of the first support units 41 has a first rail end 4121 pivotally connected to the back board 21, a second rail end 4122 configured to slidably support the head board 22, and a rail body 4123 disposed between the first and second rail ends 4121, 4122 to permit the another end of the first arm 411 to be slidable relative thereto.
Specifically, each of the first support units 41 may further include a first roller 413 and a second roller 414. The first roller 413 is rotatably connected to the another end of the first arm 411, and is in rolling contact with the rail body 4123 of the rail 412 so as to permit the another end of the first arm 411 to be coupled to slidable relative to the front bed frame unit 2. The second roller 414 is rotatably connected to the second rail end 4122 of the rail 412, and is in rolling contact with the head board 22 so as to permit the second rail end 4122 to slidably support the head board 22. A second angle (02) formed between the head board 22 and the back board 21 may range from 120 to 180 degrees (e.g., 180 degrees in
In an embodiment shown in
The first cylinder 431 is pivotally connected to the base frame unit 1. The first piston rod 432 is slidably received in the first cylinder 431, and is flanked between and pivotally connected to the second coupling ends 452 of the first angle pieces 45 so as to permit the first actuated beam 42 to be actuated by the first jack member 43 through the first angle pieces 45. The first motor 44 is coupled to drive sliding movement of the first piston rod 432.
In an embodiment shown in
The middle frame unit 7 is fixedly mounted on the base frame unit 1, and has a front panel 71 to which the back board 21 is hingedly connected about the first axis (A1), and a rear panel 72 opposite to the front panel 71 in the longitudinal direction (X).
The rear bed frame unit 3 is disposed on the base frame unit 1 rearwardly of the middle frame unit 7, and includes a thigh board 31 and a calf board 32. The thigh board 31 is hingedly connected to the rear panel 72 at a sixth axis (A6) that extends in the transverse direction (Y). The calf board 32 has a front end 321 hingedly connected to a rear end 311 of the thigh board 31 distal from the sixth axis (A6) at a seventh axis (A7) that extends in the transverse direction (Y).
The second drive mechanism 5 includes a second jack member 54 coupled between the rear bed frame unit 3 and the base frame unit 1 so as to drive the rear bed frame unit 3 to convert between a leg normal position and a leg elevated position. When at the leg normal position, as shown in
In an embodiment shown in
In an embodiment shown in
The second arms 51 are disposed between the base frame unit 1 and the rear bed frame unit 3, and are spaced apart from the rear bed frame unit 3 in the transverse direction (Y). Each of the second arms 51 has one end which is pivotably connected to the base frame unit 1 at an eighth axis (A8) extending in the transverse direction (Y), and another end which is slidable relative to the calf board 32 between a second distal position and a second proximate position. When at the second distal position, as shown in
The second actuated beam 53 extends in the transverse direction (Y) to interconnect the second arms 51. Each of the second angle pieces 56 has two opposite coupling ends 561, 562. The coupling end 561 is coupled to the second jack member 54, and the coupling end 562 is coupled to the second actuated beam 53 so as to permit the second actuated beam 53 to be driven by the second jack member 54 to turn about the eighth axis (A8), thereby moving the another ends of the second arms 51 between the second distal position and the second proximate position.
In an embodiment shown in
In an embodiment shown in
When each of the first and second jack members 43, 54 is at its retracted state, the back board 21 is at the back normal position, the lumbar support 63 is at the close position, and the second bed frame unit 3 is at the leg normal position (see
When the first jack member 43 is driven by the first motor 44 to extend (i.e., the first piston rod 432 slides away from the first cylinder 431), the first arms 411 are actuated thereby to rotate about the fourth axis (A4), resulting in the first rollers 413 raising the rails 412 upwardly while simultaneously rolling on back surfaces of the rail bodies 4123 of the rails 412. Consequently, the back board 21 and head board 22 are elevated and the lumbar support 6, following the movement of the back board 21, is raised upwardly.
Finally, when the first jack member 43 reaches its fully extended state, the back board 21 is at the back elevated position, and the lumbar support 63 is at the remote position (see
Similarly, when the second jack member 54 is driven by the second motor 55 to extend (i.e., the second piston rod 542 slides away from the second cylinder 541), the second arms 51 are actuated thereby to rotate about the eighth axis (A8), resulting in the second rollers 52 raising the calf board 32 and simultaneously rolling on a back surface of the calf board 32, which in turn elevates the thigh board 31 and decreases the third angle (03).
Finally, when the second jack member 54 reaches its fully extended state, the second bed frame unit 3 is at the leg elevated position (see
In summary, in virtue of the above-mentioned configurations of the first drive mechanism 4 and the lumbar support unit 6, only one motor (i.e., the first motor 44) is needed to drive movements of the back board 21, the head board 22 and the lumbar support 63. In addition, movements of the thigh board 31 and the calf board 32 are driven by only one motor as well (i.e., the second motor 55). Thus, compared with the prior art, which includes four motors, the adjustable bed according to the disclosure is power-efficient and cost-effective.
In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment. It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to “one embodiment,” “an embodiment,” an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects, and that one or more features or specific details from one embodiment may be practiced together with one or more features or specific details from another embodiment, where appropriate, in the practice of the disclosure.
While the disclosure has been described in connection with what is considered the exemplary embodiment, it is understood that this disclosure is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.