Roll molding device
09724855 ยท 2017-08-08
Assignee
Inventors
- Tomoyuki Takamura (Kariya, JP)
- Keiji Hashimoto (Kariya, JP)
- Tomio Kinoshita (Toyota, JP)
- Manabu Kinoshita (Toyota, JP)
Cpc classification
B21B27/02
PERFORMING OPERATIONS; TRANSPORTING
B29D16/00
PERFORMING OPERATIONS; TRANSPORTING
B21D28/12
PERFORMING OPERATIONS; TRANSPORTING
B29C2043/464
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29D16/00
PERFORMING OPERATIONS; TRANSPORTING
B21B27/02
PERFORMING OPERATIONS; TRANSPORTING
B21B1/22
PERFORMING OPERATIONS; TRANSPORTING
B21D28/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In the present invention, when synchronization is lost due to backlash, and deviation between the rotational phases of a first processing roll and a second processing roll occurs, deviation between the rotational phases of dummy rotating bodies also occurs, and dummy blade parts of the dummy rotating bodies interfere with each other before blade parts of cutting blades of the first processing roll and the second processing roll (40) interfere with each other. Thus, interference between the blade parts is prevented.
Claims
1. A roll forming machine comprising: a pair of processing rolls arranged to face each other, the pair of processing rolls each including cutting parts formed on an outer circumferential portion such that the cutting parts mesh with each other to machine a sheet inserted between the processing rolls; and interference preventing mechanism including a pair of dummy rotating bodies arranged on rotary shafts of the pair of processing rolls, each dummy rotating body including dummy cutting parts the number of which is equal to the number of the cutting parts of each processing roll, wherein, in response to rotational phase deviation between the processing rolls, the interference preventing mechanism is configured to prevent interference between the cutting parts of the processing rolls based on rotational phase deviation that simultaneously occurs between the dummy rotating bodies, wherein the interference preventing mechanism is configured to set a first clearance between the dummy cutting parts of the dummy rotating bodies to be smaller than a second clearance between the cutting parts of the processing rolls, and in response to the rotational phase deviation, the interference preventing mechanism is configured to cause interference to occur between the dummy cutting parts of the dummy rotating bodies.
2. The roll forming machine according to claim 1, wherein the dummy cutting parts have a thickness that is set greater than a thickness of the cutting parts.
3. The roll forming machine according to claim 1, wherein the dummy cutting parts are set harder than the cutting parts.
4. The roll forming machine according to claim 1, wherein, the interference preventing mechanism includes: a clearance detecting unit, which detects a first clearance between the dummy cutting parts of the dummy rotating bodies; and a controller, which stops a drive source that drives the rotary shafts when the first clearance detected by the clearance detecting unit becomes less than a threshold value.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
First Embodiment
(11) A roll forming machine according to a first embodiment of the present invention will now be described with reference to
(12) As shown in
(13) Gears 16a, 18a, which mesh with each other, are secured to the right ends of the first rotary shaft 16 and the second rotary shaft 18. A sprocket 18b is further secured to the right end of the second rotary shaft 18. The sprocket 18b is rotated by a non-illustrated electric motor via a non-illustrated endless chain looped over the sprocket 18b. When the sprocket 18b is rotated, the gears 16a, 18a rotate the first rotary shaft 16 in synchronization with the second rotary shaft 18 at the same speed.
(14) Since the first processing roll 20 and the second processing roll 40 have the same structure, only the structure and peripheral members of the first processing roll 20 will be described. The corresponding structure and peripheral members of the second processing roll 40 will be given reference numbers obtained by adding 100 to the reference numbers of the structure and peripheral members of the first processing roll 20, and detailed explanation is omitted.
(15) As shown in
(16) Protruding cutting parts 26 are formed at a predetermined pitch on the outer circumferential portion of the cutting blades 22 as shown in
(17) As shown in
(18) In the present embodiment, when a workpiece is fed between the first processing roll 20 and the second processing roll 40 of the roll forming machine and pressed, projections and recesses are continuously formed in a row as shown in
(19) In
(20) As shown in
(21) As shown in
(22) As shown in
(23) The second clearance C2 is a gap between the distal end of each cutting part 26 and the proximal end of the corresponding cutting part 126 (the recess 127), which mesh with each other, or a gap between the distal end of each cutting part 126 and the proximal end of the corresponding cutting part 26 (the recess 27), which mesh with each other, while pressing the metal plate (workpiece) in a state where there is no rotational phase deviation between the rolls. Furthermore, the first clearance C1 is a gap between the distal end of each dummy cutting part 56 and the proximal end of the corresponding dummy cutting part 66 (the dummy recess 67), or a gap between the distal end of each dummy cutting part 66 and the proximal end of the corresponding dummy cutting part 56 (the dummy recess 57) when the distal end of each cutting part 26 and the proximal end of the corresponding cutting part 126 (the recess 127) mesh with each other with the second clearance C2 in between.
(24) In a case in which the dummy rotating bodies 50, 60 are not provided, when rotational phase deviation occurs between the rolls due to backlash of the gears, the clearance between the rolls is eliminated, causing each cutting part 26 to interfere with the corresponding cutting part 126.
(25) In contrast, according to the present embodiment, the first clearance C1 is set smaller than the second clearance C2. If rotational phase deviation occurs between the first processing roll 20 and the second processing roll 40, the dummy cutting parts 56, 66 of the dummy rotating bodies 50, 60 interfere with each other before the cutting parts 26, 126 of the first processing roll 20 and the second processing roll 40 interfere with each other, thus preventing the interference of the cutting parts 26, 126.
(26) The dimension of the second clearance C2 may be any value as long as it is less than or equal to the thickness of the metal sheet W. If the second clearance C2 is less than the thickness of the metal sheet W, slits are formed by the meshing of the cutting parts 26, 126 as shown in
Operation of Embodiment
(27) Operation of the roll forming machine configured as described above will now be described.
(28) In a state in which the first processing roll 20 and the second processing roll 40 are rotated in the direction of arrows shown in
(29) The present embodiment has the following features.
(30) (1) In the roll forming machine of the present embodiment, the first processing roll 20 and the second processing roll 40 (the pair of processing rolls) are arranged to face each other. As the cutting parts 26, 126 provided on the outer circumferential portion of the rolls mesh with each other, a sheet inserted between the rolls is processed. The pair of dummy rotating bodies 50, 60 is arranged on the first rotary shaft 16 and the second rotary shaft 18 of the first processing roll 20 and the second processing roll 40. The dummy rotating bodies 50, 60 include the dummy cutting parts 56, 66, the number of which is equal to the number of the cutting parts of the rolls. The present embodiment includes interference preventing means, which prevents interference between the cutting parts of the processing rolls by rotational phase deviation of the dummy rotating bodies 50, 60 that occurs simultaneously when rotational phase deviation occurs between the first processing roll 20 and the second processing roll 40.
(31) According to the interference preventing means, the second clearance C2 between the cutting parts of the first processing roll 20 and the second processing roll 40 is set greater than the first clearance C1 between the dummy cutting parts 56, 66 of the dummy rotating bodies 50, 60 so that when rotational phase deviation occurs between the rolls, the dummy cutting parts 56, 66 of the dummy rotating bodies 50, 60 interfere with each other. Consequently, according to the present embodiment, when rotational phase deviation occurs between the processing rolls, the cutting parts of the processing rolls are prevented from interfering with each other, and the cutting parts are prevented from being damaged.
(32) (2) According to the roll forming machine of the present embodiment, the thickness of the dummy cutting parts 56, 66 is set greater than the thickness of the cutting parts 26, 126. Thus, damage on the dummy cutting parts when the dummy cutting parts interfere with each other is smaller than the case in which the thickness is set smaller.
Second Embodiment
(33) A second embodiment will now be described with reference to
(34) As shown in
(35) The imager 70 includes, for example, a CCD camera or a CMOS camera. A high-speed shutter of the imager 70 is capable of taking images of the dummy cutting parts 56 and the dummy cutting parts 66, which are rotating. The image processor 80 outputs a signal indicating that the first clearance C1 calculated for each image frame has become less than a previously determined threshold value, or that interference may occur. Upon receipt of the signal, the controller 90 stops the electric motor M. In the present embodiment, the imager 70 and the image processor 80 configure a clearance detecting unit. The electric motor M is one example of a driving source.
(36) The present embodiment has the following features.
(37) (1) The roll forming machine of the present embodiment includes, as the interference preventing means, the imager 70, which detects the first clearance C1 between the dummy cutting parts 56, 66 of the pair of dummy rotating bodies 50, 60, the image processor 80 (clearance detecting unit), and the controller 90, which stops the electric motor M (driving source) for driving the second rotary shaft 18 when the first clearance C1 detected by the imager 70 and the image processor 80 becomes less than the threshold value. As a result, according to the present embodiment, when the first clearance C1 becomes less than the threshold value, it is determined that rotational phase deviation has occurred between the first processing roll 20 and the second processing roll 40, and the controller 90 stops the electric motor M (driving source), which drives the second rotary shaft 18. This prevents the cutting parts of the first processing roll 20 and the second processing roll 40 from interfering with each other, thus preventing the cutting parts from being damaged.
(38) The embodiments of the present invention are not limited to the above illustrated embodiments, but may be modified as follows.
(39) In the above illustrated embodiments, the dummy rotating bodies 50, 60 are mounted on the first rotary shaft 16 and the second rotary shaft 18 between the gears 16a, 18a and the bearings 14, 15. However, the positions on the first rotary shaft 16 and the second rotary shaft 18 where the dummy rotating bodies 50, 60 are mounted are not limited. For example, the dummy rotating bodies 50, 60 may be provided at positions rightward of the gears 16a, 18a on the first rotary shaft 16 and the second rotary shaft 18 shown in
(40) Alternatively, the dummy rotating bodies 50, 60 may be provided on the first rotary shaft 16 and the second rotary shaft 18 between the first and second processing rolls 20, 40 and the bearings 14, 15.
(41) In the above illustrated embodiments, the hardness of the dummy cutting parts 56, 66 of the dummy rotating bodies 50, 60 is not specified. However, the dummy cutting parts 56, 66 may be harder than the cutting parts 26, 126. If the dummy cutting parts 56, 66 are harder than the cutting parts 26, 126 of the first processing roll 20 and the second processing roll 40, damage on the dummy cutting parts 56, 66 is reduced in a case in which the dummy cutting parts 56, 66 interfere with each other.
(42) In the above illustrated embodiments, the case of synchronization via the gear mechanism is explained. However, the above illustrated invention may be applied to a roll forming machine that employs the technology of synchronous control explained in the conventional device.
(43) The roll forming machine of the above embodiment machines the metal sheet W. However, the material of the sheet is not limited to metal, but may be plastic or paper.
(44) The driving source is not limited to an electric motor, but may be anything that rotates the rotary shaft. For example, linear motion of a linear driving source (for example, a linear motor) can be converted to rotary motion using a rotation converting mechanism to rotate the rotary shaft. The linear driving source may therefore be employed as the driving source.
DESCRIPTION OF THE REFERENCE NUMERALS
(45) C1, C2 . . . first and second clearances, M . . . electric motor (driving source), 20 . . . first processing roll, 22 . . . cutting blade, 26, 126 . . . cutting parts, 40 . . . second processing roll, 50, 60 . . . dummy rotating bodies, 56, 66 dummy cutting parts, 90 . . . controller, 122 . . . cutting blade, 126 . . . cutting parts.