ROTARY SEAT AND ROTARY TABLE
20220176674 · 2022-06-09
Assignee
Inventors
- Yung-Tsai Chuo (Taichung City, TW)
- Yaw-Zen Chang (Taichung City, TW)
- Jui-Che Lin (Taichung City, TW)
- Yu-Hsien Ho (Taichun City, TW)
- Yu Liu (Taichung City, TW)
Cpc classification
B65G29/00
PERFORMING OPERATIONS; TRANSPORTING
B32B5/10
PERFORMING OPERATIONS; TRANSPORTING
B32B5/12
PERFORMING OPERATIONS; TRANSPORTING
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
B23Q1/5437
PERFORMING OPERATIONS; TRANSPORTING
International classification
B32B5/12
PERFORMING OPERATIONS; TRANSPORTING
B32B5/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A rotary seat including a base includes an outer surface, and a composite material layer attached to at least a part of the outer surface. The base also includes a recess for accommodating a turntable and including a first opening on the outer surface. The material of the composite material layer includes fibers and a resin. Therefore, the rotary seat may be more lightweight. A rotary table is also provided and includes the rotary seat, a driving device which drives the rotary seat to rotate, and a turntable which is rotatably disposed in the recess of the base.
Claims
1. A rotary seat comprising: a base, including a recess and an outer surface, wherein the recess comprises a first opening on the outer surface and is configured to accommodate a turntable, and the base is made of metal; and a composite material layer configured to being attached to at least a part of the outer surface of the base, wherein the composite material layer comprises fiber and resin.
2. The rotary seat as claimed in claim 1, wherein the composite material layer is a stacked structure and comprises a plurality of stacked layers, the plurality of stacked layers is stacked along a first axial direction perpendicular to the outer surface, the fibers of each of the plurality of stacked layers are arranged in a direction parallel to a second axial direction, the second axial directions of at least two of the plurality of stacked layers are not parallel, and the second axial direction is perpendicular to the first axial direction.
3. The rotary seat as claimed in claim 2, wherein the second axial directions of the plurality of stacked layers are symmetrically arranged in the first axial direction.
4. The rotary seat as claimed in claim 3, wherein the outer surface of the base is provided with at least one recessed region, the composite material layer further comprises at least one reinforcing layer, the at least one reinforcing layer and the plurality of stacked layers are stacked and attached to the at least one recessed region, the at least one reinforcing layer is located between the at least one recessed region and the plurality of stacked layers, fibers of the at least one reinforcing layer are arranged in a direction parallel to a third axial direction, and the third axial direction of the fibers of the at least one reinforcing layer is the same as the second axial direction of the fibers of one of the plurality of stacked layers.
5. The rotary seat as claimed in claim 1, wherein the composite material layer comprises a plurality of splicing pieces, and the plurality of splicing pieces is distributed on the outer surface and in contact with each other.
6. The rotary seat as claimed in claim 1, wherein the composite material layer is fixed on the outer surface by pasting or fastening.
7. The rotary seat as claimed in claim 1, wherein the base comprises at least one connecting portion and a carrying portion, the carrying portion is connected to the at least one connecting portion, the recess is located in the carrying portion, the connecting portion is configured to be rotatably connected to a driving device, and the composite material layer comprises a third opening to expose a junction between the connecting portion and the driving device.
8. The rotary seat as claimed in claim 1, wherein the base comprises at least one connecting portion and a carrying portion, the carrying portion is connected to the at least one connecting portion, an angle between the carrying portion and the connecting portion is greater than 0 degrees, the recess is located in the carrying portion, and the connecting portion is configured to be rotatably connected to a driving device.
9. The rotary seat as claimed in claim 1, wherein a volume of the composite material layer accounts for 20% to 50% of a sum of a volume of the base and a volume of the composite material layer.
10. A rotary table comprising: the rotary seat in claim 1; a driving device connected to the rotary seat and configured to drive the rotary seat to rotate; and a turntable rotatably arranged in the recess of the rotary seat.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] After studying the detailed description in conjunction with the following drawings, other aspects and advantages of the present invention will be discovered:
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DETAILED DESCRIPTION
[0021] In the following detailed description, many specific details are explained in order to provide a thorough understanding of the present invention. However, those of ordinary skill in the art will understand that the present invention can be practiced without these specific details. In other cases, well-known methods, procedures and/or elements have not been described in detail so as not to obscure the present invention.
[0022] Please refer to
[0023] The rotary seat 12 includes a base 121 and a composite material layer 122. The material of the base 121 is metal. The material of the composite material layer 122 includes fiber and resin. The fiber can be, for example, carbon fiber, fiberglass, boron fiber, graphite fiber, silicon carbide fiber, basalt fiber, Kevlar fiber or any combination thereof. The resin can be, for example, epoxy, thermoset, thermoplastic, cyanate ester, polyester, aramid, chlorofluorocarbon or any combination thereof. The base 121 includes at least one connecting portion 121A and a carrying portion 121B. The carrying portion 121B is detachably connected or integrally formed to the connecting portion 121A. An angle θ between the carrying portion 121B and the connecting portion 121A is greater than 0 degrees. The connecting portion 121A is connected to the output shaft 112 of the first torque motor and is driven by the output shaft 112 to rotate. The carrying portion 121B of the base 121 includes a recess Q. The recess Q includes a first opening OP1 on an outer surface S of the base 121. Therefore, the turntable 13 can be inserted into the recess Q from the first opening OP1. In this embodiment, the turntable 13 includes a disk body 131 and a second torque motor that drives the disk body 131 to rotate. The second torque motor is disposed in the recess Q, and the disk body 131 is located at the position of the first opening OP1.
[0024] The composite material layer 122 is configured to be attached to at least a part of the outer surface S of the base 121. The composite material layer 122 includes a second opening OP2. The second opening OP2 overlaps the first opening OP1, so the second opening OP2 can expose the inside of the base 121 under the composite material layer 122. The composite material layer 122 also includes a third opening OP3. The third opening OP3 exposes the junction between the connecting portion 121A and the output shaft 112 of the first torque motor of the driving device 11. The volume of the composite material layer 122 may account for 20% to 50% of the sum of the volume of the base 121 and the volume of the composite material layer 122.
[0025] The composite material layer 122 includes a plurality of stacked layers SF1, for example, 8 stacked layers SF1. The composite material layer 122 is a stacked structure formed by stacking these stacked layers SF1 upward along an axial direction D1 (referred to as first axial direction), as shown in
[0026] In this embodiment or other embodiments, the composite material layer 122 as a stacked structure may further include at least one reinforcing layer SF2, and the material of the reinforcing layer SF2 is the same as that of the stacked layer SF1. The fibers FB2 of the reinforcing layer SF2 are arranged in parallel to an axial direction D3 (referred to as third axial direction), as shown in
[0027] In this embodiment, the composite material layer 122 is a one-piece outer cover made of composite material, and is attached to the outer surface S of the base 121 in a pasting manner, as shown in
[0028] In this embodiment, the composite material layer 122 can be fixed to the outer surface S in a fastening manner instead of the pasting manner. For example, as shown in
[0029] In addition, in order to achieve a lighter weight for the rotary seat of the present invention, the metal base of the rotary seat can reduce its volume without affecting the load-bearing strength of the rotary seat and the accommodation space of the base. For example, as shown in
[0030] In addition, although the above embodiments are described based on an example of the rotary seat with only one connecting portion (that is, the rotary seat is L-shaped), the invention is not limited to this example. In other embodiments, as shown in
[0031] Although the present invention is disclosed as above in the foregoing embodiments, these embodiments are not intended to limit the present invention. Without departing from the spirit and scope of the present invention, all changes, modifications, and combinations of various implementation modes are available and fall into the scope of patent protection of the present invention. For the scope of protection defined by the present invention, please refer to the attached claims