The subject matter herein generally relates to positioning devices, and particularly to a positioning device with manual control mechanism.
Positioning devices can be semi-automatic and include a server and motors to move an operation platform. However, the positioning device occupies a large space.
Implementations of the present technology will now be described, by way of example only, with reference to the attached figures.
It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures and components have not been described in detail so as not to obscure the related relevant feature being described. Also, the description is not to be considered as limiting the scope of the embodiments described herein. The drawings are not necessarily to scale and the proportions of certain parts have been exaggerated to better illustrate details and features of the present disclosure.
Several definitions that apply throughout this disclosure will now be presented.
The term “coupled” is defined as connected, whether directly or indirectly through intervening components, and is not necessarily limited to physical connections. The connection can be such that the objects are permanently connected or releasably connected. The term “substantially” is defined to be essentially conforming to the particular dimension, shape or other word that substantially modifies, such that the component need not be exact. For example, substantially cylindrical means that the object resembles a cylinder, but can have one or more deviations from a true cylinder. The term “comprising,” when utilized, means “including, but not necessarily limited to”; it specifically indicates open-ended inclusion or membership in the so-described combination, group, series and the like.
The present disclosure is described in relation to a positioning device including a base, an extension arm fixed to the base, a Z-axis control mechanism located on the extension arm, a pressing member located on the Z-axis control mechanism, and a manual control mechanism. The manual control mechanism includes an X-axis control mechanism, a Y-axis control mechanism, and an operation platform. The X-axis control mechanism includes a position limiting plate and a latching pin. The position limiting plate is arranged along an X-axis and defines a plurality of X-axis position limiting holes. The latching pin is configured to be alternatively inserted into one of the plurality of X-axis position limiting holes. The Y-axis control mechanism includes a position limiting plate and a latching pin. The position limiting plate is arranged along a Y-axis and defines a plurality of Y-axis position limiting holes. The Y-axis is perpendicular to the X-axis. The latching pin of the Y-axis control mechanism is configured to be alternatively inserted into one of the plurality of Y-axis position limiting holes.
The manual control mechanism 13 can include an operation platform 130, an X-axis control mechanism 131, a Y-axis control mechanism 132, a first fixing plate 1351, and a second fixing plate 1361. The operation platform 130 can be located above the first fixing plate 1351 and the second fixing plate 1361. The second fixing plate 1361 can be substantially parallel to the first fixing plate 1351. The positioning device 1 can further include a Z-axis control mechanism 121 located on the extension arm 12. A pressing member 122 can be coupled to the Z-axis control mechanism 121. The Z-axis control mechanism 121 can include a macro-adjusting mechanism 123, and a micro-adjusting mechanism 124 coupled to the macro-adjusting mechanism 123. The pressing member 122 can be coupled to the macro-adjusting mechanism 123. The macro-adjusting mechanism 123 can be configured to broadly adjust a Z-coordinate position of the pressing member 122. The micro-adjusting mechanism 124 can be configured to precisely adjust the Z-coordinate position of the pressing member 122.
In this embodiment, a workpiece (not shown) can be positioned below the operation platform 130, and above the X-axis control mechanism 131 and the Y-axis control mechanism 132. The operation platform 130 can define a plurality of through holes 1301. The pressing member 122 can be moved by the macro-adjusting mechanism 123 and the micro-adjusting mechanism 124 to pass through a corresponding through hole 1301 and press the workpiece. A deformation of the workpiece produced by the pressing of the pressing member 122, in addition to a force applied by the pressing member 122, can be used to determine a hardness of the workpiece.
Referring to
The X-axis guiding mechanism 1311 can include an X-axis guiding member 1331 and an X-axis guiding rail 1341. The X-axis guiding rail 1341 can be located on a top surface of the first fixing plate 1351. The X-axis guiding member 1331 can be coupled to a bottom surface of the second fixing plate 1361. Thus, the X-axis guiding rail 1341 can engage the X-axis guiding member 1331 to allow the second fixing plate 1361 to move along the X-axis. The operation platform 130 can be coupled to a top surface of the second fixing plate 1361. Thus, the operation platform 130 can move together with the second fixing plate 1361 along the X-axis.
The X-axis position setting mechanism 1312 can include a position limiting plate 111 arranged along the X-axis, and a latching pin 1342. The position limiting plate 111 can be located on a side surface of the first fixing plate 1351 corresponding to the X-axis. The position limiting plate 111 can define a plurality of X-axis position limiting holes 1332 arranged along the X-axis.
Referring to
The X-axis position setting mechanism 1312 can further include a guiding block 1302. The guiding block 1302 can be fixed to the second fixing plate 1361. The guiding block 1302 can define a stepped through hole 1303. The stepped through hole 1303 can include a wide portion and a narrow portion (both shown in
The X-axis position setting mechanism 1312 can further include an elastic member 1392. The elastic member 1392 can be sleeved on the threaded coupling portion 1372 of the latching pin 1342. A first end portion of the elastic member 1392 can resist against the blocking portion 1352, and a second end portion of the elastic member 1392 can resist against a boundary between the wide portion and the narrow portion of the stepped through hole 1303 of the guiding block 1302 (shown in
Referring again to
The Y-axis guiding mechanism 1321 can include a Y-axis guiding member 1431 and a Y-axis guiding rail 1441. The Y-axis guiding rail 1441 can be located on a top surface of the base 11, and the Y-axis guiding member 1431 can be coupled to a bottom surface of the first fixing plate 1351. Thus, the Y-axis guiding rail 1441 can engage with the Y-axis guiding member 1431 to allow the first fixing plate 1351 to move along the Y-axis. Because the second fixing plate 1361 and the operation platform 130 are coupled to the first fixing plate 1351, the operation platform 130 and the second fixing plate 1361 can move together with the first fixing plate 1351 along the Y-axis. The Y-axis position setting mechanism 1322 can include a position limiting plate 1411 arranged along the Y-axis, and a latching pin 1442. The position limiting plate 1411 can be located on a side surface of the base 11 corresponding to the Y-axis. The position limiting plate 1411 can define a plurality of Y-axis position limiting holes 1432 arranged along the Y-axis.
Referring to
The Y-axis position setting mechanism 1322 can further include a guiding block 1402. The guiding block 1402 can be fixed to the first fixing plate 1351. The guiding block 1402 can define a stepped through hole 1403. The stepped through hole 1403 can be substantially similar to the stepped through hole 1303 of the guiding block 1302. The stepped through hole 1403 can include a wide portion and a narrow portion. A size of the blocking portion 1452 can be substantially equal to a size of the wide portion of the stepped through hole 1403. The threaded coupling portion 1472 can pass through the stepped through hole 1403 and thread with the button 1482. When the latching pin 1442 is inserted into one of the Y-axis position limiting holes 1432, movement of the first fixing plate 1351, of the second fixing plate 1361, and of the operation platform 130 is restricted along the Y-axis. Thus, the first fixing plate 1351, the second fixing plate 1361, and the operation platform 130 are positioned along the Y-axis. When the latching pin 1442 is removed from the corresponding Y-axis position limiting hole 1432, a position of the first fixing plate 1351, of the second fixing plate 1361, and of the operation platform 130 can be adjusted along the Y-axis.
The Y-axis position setting mechanism 1322 can further include an elastic member 1492. The elastic member 1492 can be sleeved on the threaded coupling portion 1472 of the latching pin 1442. A first end portion of the elastic member 1492 can resist against the blocking portion 1452, and a second end portion of the elastic member 1492 can resist against a boundary between the wide portion and the narrow portion of the stepped through hole 1303 of the guiding block 1402. In the illustrated embodiment, the elastic member 1492 can be a spring.
Referring to
When a position of the operation platform 130 needs to be adjusted along the X-axis direction, the button 1382 can be pulled outward. When the button 1382 is pulled outward, the latching pin 1342, which is threaded with the button 1382, is moved outward. Thus, the post 1362 can be removed from the corresponding X-axis position limiting hole 1332, and the elastic member 1302 can be compressed. When a pushing force is applied to the button 1382 along the X axis, the button 1382 can move the second fixing plate 1361 and the operation platform 130 along the X-axis. The second fixing plate 1361 and the operation platform 130 can be moved along the X-axis until the post 1362 aligns to a desired X-axis position limiting hole 1332. When the post 1362 aligns to the desired X-axis position limiting hole 1332, the button 1382 can be released, thereby allowing the elastic member 1392 to elastically restore and push the latching pin 1342 into the desired X-axis position limiting hole 1332. Thus, a position of the operation platform 130 along the X-axis can be adjusted easily.
A position of the first fixing plate 1351, the second fixing plate 1361, and the operation platform 130 can be adjusted along the Y-axis direction in a way substantially similar to adjusting the position of the second fixing plate 1361 and the operation platform 130 along the X axis, as described above.
The embodiments shown and described above are only examples. Many details are often found in the art such as the other features of a positioning device. Therefore, many such details are neither shown nor described. Even though numerous characteristics and advantages of the present technology have been set forth in the foregoing description, together with details of the structure and function of the present disclosure, the disclosure is illustrative only, and changes may be made in the detail, including in matters of shape, size and arrangement of the parts within the principles of the present disclosure up to, and including the full extent established by the broad general meaning of the terms used in the claims. It will therefore be appreciated that the embodiments described above may be modified within the scope of the claims.
Number | Date | Country | Kind |
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2013102601501 | Jun 2013 | CN | national |