This application claims the benefit of Taiwan application Serial No. 109139166, filed Nov. 10, 2020, the disclosure of which is incorporated by reference herein in its entirety.
The disclosure relates in general to a sheet metal hemming device, and more particularly to a device capable of adjusting the hemming angles.
When a conventional machine hems a sheet metal, the sheet metal needs to be supported by a bearing mold. Since the bearing mold incurs a high cost and is only applicable to single hemming angle and large batches instead of multiple hemming angles and small batches, the varied production methods for small batches cannot be used. Therefore, it is crucial for the industries to provide a sheet metal hemming device which is able to hem multiple hemming angles for small batches at high speed with high efficiency and low machining cost.
The disclosure is directed to a sheet metal hemming device, which not only saves the conventional problems that the bearing mold needs to be replaced and the device is applicable to single hemming angle only, but further automatically adjusts the hemming angles, the contact force and a combination thereof to increase production quality according to production requirements.
According to one embodiment, a sheet metal hemming device is provided. The sheet metal hemming device includes a frame and a rolling wheel, a bearing wheel, a first rotating shaft, a second rotating shaft, a sliding block, an arc-shaped guide rail and a driver which are disposed on the frame. The rolling wheel is disposed on the first rotating shaft, the bearing wheel is disposed on the second rotating shaft, and an angle or a hemming angle is set between the rolling wheel and the bearing wheel. The sliding block is slidable relative to the arc-shaped guide rail and is connected to the rolling wheel via the first rotating shaft. The driver is connected to the sliding block for driving the sliding block to slide along the arc-shaped guide rail to adjust the angle between the rolling wheel and the bearing wheel.
The above and other aspects of the disclosure will become understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
Detailed descriptions of the disclosure are disclosed below with a number of embodiments. However, the disclosed embodiments are for explanatory and exemplary purposes only, not for limiting the scope of protection of the disclosure. Similar/identical designations are used to indicate similar/identical elements.
Refer to
According to an embodiment of the disclosure, the sheet metal hemming device 100 includes a frame 110, a rolling wheel 120, a bearing wheel 130, a first rotating shaft 140, a second rotating shaft 150, a sliding block 160, an arc-shaped guide rail 162 and a driver 170. The rolling wheel 120 and the bearing wheel 130 respectively are disposed on the first rotating shaft 140 and the second rotating shaft 150 which are located on the same side of the frame 110. A flange piece 111 is disposed on top of the frame 110. The frame 110 can be assembled to a robot arm (not illustrated in the diagram) via the flange piece 111. Through the control of the robot arm, the frame 110 can be quickly moved, rotated or turned over to a suitable angle to roll or hem a sheet metal 10. The sliding block 160 is slidable relative to the arc-shaped guide rail 162 and is connected to the rolling wheel 120 via the first rotating shaft 140. Besides, the driver 170 is connected to the sliding block 160 via the crank 176 for driving the sliding block 160 to slide along the arc-shaped guide rail 162 such that the first rotating shaft 140 is rotatable relative to the second rotating shaft 150.
In an embodiment, the rolling wheel 120 is located atop of the sheet metal 10 for applying an external force on the sheet metal 10, and the bearing wheel 130 is located under the sheet metal 10 to support the sheet metal 10, such that the sheet metal 10 can be rolled between the rolling wheel 120 and the bearing wheel 130. The sheet metal 10 can be a steel plate, a galvanized plate, a copper plate or an aluminum plate. After the sheet metal 10 is cut, stamping molded, cold rolled, hot rolled, welded, riveted and splicing molded, the sheet metal 10 can be used as a sheet metal parts of a computer case, a vehicle shell, an equipment shell, an electric control box or a protective cover.
Refer to
Refer to
In an embodiment, the arc-shaped guide rail 162 can be an arced structure of a ¼ circle whose radius is the length of the first rotating shaft 140 between the sliding block 160 and the rolling wheel 120, and when the sliding block 160 is moved from one end to the other end of the arc-shaped guide rail 162, the angle θ between the rolling wheel 120 and the bearing wheel 130 is increased to 90° from 0°. That is, the angle between the rolling wheel 120 and the bearing wheel 130 is in a range of 0°-90°.
Refer to
Referring to
Additionally, the sheet metal hemming device 100 includes a controller 180, a force generator 182 and a pressure sensor 184. The controller 180 is connected to the force generator 182 and the pressure sensor 184. The force generator 182, such as a hydraulic cylinder or a pneumatic cylinder, is provided with a piston rod 183. The force generator 182 is connected between the inner frame 112 and the outer frame 114, such that the inner frame 112 can move up and down. With the force generator 182, the controller 180 can adjust the distance D between the rolling wheel 120 and the bearing wheel 130, that is, the controller 180 can adjust the contact force applied on the sheet metal 10 between the rolling wheel 120 and the bearing wheel 130. Moreover, the pressure sensor 184 can be disposed on the bearing wheel 130 to detect a sheet metal contact force between the rolling wheel 120 and the bearing wheel 130. With the pressure sensor 184, the controller 180 can adjust the upward/downward movement of the force generator 182 to adjust the distance D between the rolling wheel 120 and the bearing wheel 130.
Refer to
Refer to
As disclosed above embodiments, the sheet metal hemming device of the disclosure can roll a hemming side without using a mold, hence saving the mold cost. Furthermore, the sheet metal hemming device of the disclosure can control the contact force and the hemming angle between the rolling wheel and the sheet metal, increase the flexibility of hemming the sheet metal and increase machining quality through process optimization.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.
Number | Date | Country | Kind |
---|---|---|---|
109139166 | Nov 2020 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
7290423 | Carsley et al. | Nov 2007 | B2 |
7500373 | Quell | Mar 2009 | B2 |
7637134 | Burzlaff et al. | Dec 2009 | B2 |
7870774 | Hasegawa | Jan 2011 | B2 |
8914964 | Hasegawa et al. | Dec 2014 | B2 |
9573318 | Lee | Feb 2017 | B2 |
9993861 | Yoon et al. | Jun 2018 | B2 |
20080236236 | Toeniskoetter | Oct 2008 | A1 |
20100139350 | Smith et al. | Jun 2010 | A1 |
20100313621 | Kumagai et al. | Dec 2010 | A1 |
20160136709 | Naderer et al. | May 2016 | A1 |
20190070655 | Kim | Mar 2019 | A1 |
Number | Date | Country |
---|---|---|
101817042 | Sep 2010 | CN |
103302154 | Sep 2013 | CN |
205032526 | Feb 2016 | CN |
108235692 | Jun 2018 | CN |
209829931 | Dec 2019 | CN |
10-2009-0107827 | Oct 2009 | KR |
338989 | Aug 1998 | TW |
Entry |
---|
Esquivel et al., “A Dynamic Compensation for Roll Hemming Process”, IEEE Access, vol. 6, 2018, pp. 18264-18275. |
Gürgen, “A parametric investigation of roller hemming operation on a curved edge part”, Archives of Civil and Mechanical Engineering, vol. 19, 2019, pp. 11-19. |
Saboori et al., “Introducing Fast Robot Roller Hemming Process in Automotive Industry”, World Academy of Science, Engineering and Technology, vol. 34, 2009, pp. 503-506. |
Suresh P M et al., “Design and Analysis of A-Frame for Roller Hemming Cell”, International Journal of Applied Research & Studies, vol. II, Issue 2, Feb. 2013, pp. 1-5. |
Zubeil et al., “Improved roller hemming system for high volume part production”, Key Engineering Materials, vol. 473, 2011, pp. 168-175. |
Taiwanese Office Action and Search Report for Taiwanese Application No. 109139166, dated Oct. 14, 2021. |
Number | Date | Country | |
---|---|---|---|
20220143669 A1 | May 2022 | US |