System and method for aligning an ingot with mounting block
09950402 ยท 2018-04-24
Assignee
Inventors
Cpc classification
B28D5/0082
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23Q1/25
PERFORMING OPERATIONS; TRANSPORTING
B24B5/50
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An alignment system for aligning an ingot of semiconductor or solar-grade material is provided. The alignment system includes a mounting block for attachment to the ingot, an optical device for aligning a predetermined centerline of the ingot with a reference line, and adjustable supports configured for supporting the ingot on at least four support points and configured to adjust the position of the ingot. The mounting block is movable between a horizontal position and a vertical position.
Claims
1. An alignment system for aligning an ingot of semiconductor or solar-grade material comprising: a mounting block for attachment to the ingot, the mounting block operatively connected to a pivot and configured to rotate about the pivot between a horizontal position and a vertical position; an optical device for aligning a predetermined centerline of the ingot with a reference line; and two pairs of adjustable supports configured for supporting the ingot on at least four support points, each adjustable support of each pair of adjustable supports configured to engage a circumferential surface of the ingot and configured to move in a first direction generally parallel to a longitudinal axis of the ingot and in a second direction perpendicular to the first direction, wherein each adjustable support is configured to move independently of each of the other adjustable supports in at least the second direction to adjust the position of the ingot.
2. An alignment system as set forth in claim 1 wherein each adjustable support includes an inclined plane configured to support the ingot along the circumferential surface.
3. An alignment system as set forth in claim 2 wherein each inclined plane is disposed at an angle of about 45 degrees with respect to horizontal.
4. An alignment system as set forth in claim 1 wherein the optical device includes at least one laser.
5. An alignment system as set forth in claim 4 wherein the at least one laser includes two lasers disposed along a coincidental axis and wherein the two lasers face each other.
6. An alignment system as set forth in claim 5 wherein a center of the mounting block coincides with the axis along which the two lasers are disposed when the mounting block is positioned in the vertical position.
7. An alignment system as set forth in claim 1 further comprising a first pair of rails disposed on opposite sides of the longitudinal axis of the ingot and extending in a direction substantially parallel to the longitudinal axis of the ingot.
8. An alignment system as set forth in claim 7 wherein the adjustable supports are slidingly coupled to at least one of the rails of the first pair of rails.
9. An alignment system as set forth in claim 7 further comprising a second pair of rails disposed beneath the adjustable supports and above the first pair of rails and extending in a direction perpendicular to the first pair of rails wherein each rail of the second pair of rails is coupled to two adjustable supports disposed on opposite sides of the ingot.
10. An alignment system as set forth in claim 1 further comprising adjusters, wherein each adjustable support is coupled to one of the adjusters and wherein each adjuster is configured to move one of the adjustable supports laterally inward or outward with respect to the ingot.
11. An alignment system as set forth in claim 10 wherein each adjuster includes an adjustment screw.
12. An alignment system as set forth in claim 1 in combination with the ingot as mounted on the mounting block.
13. An alignment system for aligning an ingot of semiconductor or solar-grade material comprising: a mounting block for attachment to the ingot; at least one laser for aligning a predetermined centerline of the ingot with a reference line; two pairs of adjustable supports configured for supporting the ingot on at least four support points, each adjustable support of each pair of adjustable supports configured to engage a circumferential surface of the ingot to adjust the position of the ingot; and a plurality of adjusters, wherein each adjustable support is coupled to one of the adjusters and wherein each adjuster is configured to move one of the adjustable supports independently of each of the other adjustable supports laterally inward or laterally outward with respect to the ingot.
14. An alignment system as set forth in claim 13 wherein the at least one laser includes two lasers disposed along a coincidental axis and wherein the two lasers face each other.
15. An alignment system as set forth in claim 14 wherein a center of the mounting block coincides with the axis along which the two lasers are disposed.
16. An alignment system as set forth in claim 13 further comprising a pair of rails disposed beneath the adjustable supports and extending in a direction substantially perpendicular to the longitudinal axis of the ingot wherein each rail of the pair of rails is coupled to two adjustable supports disposed on opposite sides of the ingot.
17. An alignment system as set forth in claim 13 wherein each adjustable support includes an inclined plane configured to support the ingot along the circumferential surface.
18. An alignment system as set forth in claim 17 wherein each inclined plane is disposed at an angle of about 45 degrees with respect to horizontal.
19. An alignment system as set forth in claim 13 wherein the mounting block is operatively connected to a pivot, the mounting block configured to rotate about the pivot between a horizontal position and a vertical position.
20. An alignment system as set forth in claim 1 further comprising a frame, wherein the mounting block is attached to the frame, wherein the optical device is attached to the frame and oriented to project a light beam along an axis that intersects a center of the mounting block when the mounting block is in the vertical position, and wherein the mounting block does not intersect the light beam axis when the mounting block is in the horizontal position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(7) Like reference symbols used in the various drawings indicate like elements.
DETAILED DESCRIPTION
(8) Referring now to
(9) As shown in
(10) As shown in
(11) Alignment system 100 also includes a plurality of adjusters, indicated generally at 116. Each adjustable support 110 is coupled to one of the adjusters 116. Adjusters 116 are configured to move the adjustable supports 110 coupled thereto inwardly and outwardly with respect to the longitudinal axis of ingot 102. Adjuster 116 can include, but is not limited to, rods, hydraulic cylinders, screws, bolts, and other devices suitable for moving adjustable supports 110 inwardly and outwardly with respect to the longitudinal axis of ingot 102. In this embodiment, each adjuster 116 comprises an adjustment screw 118 coupled to a handle 120.
(12) Adjustment screw 118 is connected to support bracket 130 at a threaded opening 122 in support bracket 130 and is coupled to base 112 at receiving end 124. Threaded opening 122 is threaded so as to engage the threads of adjustment screw 118 when handle 120 is rotated. Receiving end 124 includes a U-clamp or bracket 126 for coupling adjustment screw 118 to base 112. Rotating handle 120 about the longitudinal axis of adjustment screw 118 causes the threads of adjustment screw 118 to engage the threads of threaded opening 122, thereby causing adjustment screw 118 to move inwardly or outwardly with respect to the ingot 102. In turn, adjustment screw 118 exerts a force on base 112 at receiving end 124, thereby causing adjustable support 110 to move inwardly or outwardly with respect to the ingot 102. Adjustment screws 118 may be finely threaded to allow for precise alignment of ingot 102.
(13) By moving adjustable supports 110 independently of or in conjunction with one another via adjusters 116, ingot 102 can be moved in four degrees of freedom. Specifically, ingot 102 can be moved in the x and y directions of an x, y, z orthogonal coordinate system defined so that the face 142 of mounting block 140 is disposed in the x, y plane and the z-axis is perpendicular to mounting block face 142 when mounting block 140 is in a generally vertical position. Ingot 102 can also be rotated about the y-axis and the x-axis of the x, y, z orthogonal coordinate system by moving adjustable supports 110 independently of or in conjunction with one another via adjusters 116. Ingot 102 can be moved in an additional degree of freedomthe z direction of the x, y, z orthogonal coordinate systemby sliding adjustable supports 110 in unison along rails 134a and 134b. The ease with which ingot 102 can be moved permits faster and more accurate alignment of ingot 102 with mounting block 140. Further, because adjustable supports 110 can be moved independently of one another in the x-direction, the operator (not shown) of alignment system 100 can account for imperfections in the ingot's diameter or deviations along the longitudinal axis of the ingot without the use of shims or other time consuming corrections. Additionally, because adjustable supports 110 can be moved independently of one another in the x-direction, a predetermined ingot centerline 108 can be aligned with the center of the mounting block 140.
(14) The predetermined ingot centerline 108 is the line about which ingot 102 is cut once the ingot 102 is mounted on the mounting block 142 as described herein. The predetermined ingot centerline 108 is based upon a desired cross-sectional shape of the ingot 102 to be cut (e.g., a pseudo-square), and is determined based upon manual and/or computer aided measurements and calculations.
(15) A mounting block 140 is positioned adjacent to one of the ingot faces 104. Mounting block 140 is capable of being moved from a generally horizontal position to a generally vertical position (shown with dashed lines in
(16) One or more optical devices are positioned within alignment system 100 to aid the operator (not shown) in aligning predetermined ingot centerline 108 with mounting block 140. In this embodiment, the one or more optical devices include two lasers 160 disposed on opposite ends of alignment system 100. Lasers 160 are mounted to frame 170 facing each other such that the laser beam emitted by one laser coincides with the laser beam emitted from the other laser. The beams of lasers 160 thus define a single axis 162. Lasers 160 are further positioned within alignment system 100 such that the single axis 162 defined by lasers 160 coincides with the axis defined by the center 144 of mounting block 140 when mounting block 140 is in a generally vertical position. When mounting block 140 is in a generally horizontal position, the beams emitted by lasers 160 are incident upon the respective ingot faces 104.
(17) In operation, a mark 106 is placed on each ingot face 104 for use in connection with the one or more optical devices. Any mark may be used for mark 106 (e.g., a dot, an X, a circle, a ring, and the like).
(18) In this embodiment, a mark 106 is placed on each ingot face 104 indicating the point to be aligned with the beam emitted by laser 160. The line defined by the center of marks 106 coincides with the predetermined ingot centerline 108 to be aligned with mounting block center 144. In the embodiment shown in
(19) Referring now to
(20) As shown in
(21) As shown in
(22) In accordance with the present disclosure, ingots of semiconductor or solar-grade material can be aligned or positioned with the center of a mounting block faster and more accurately than prior art devices and methods. As further described herein, use of one or more optical devices and adjustable supports to align or position the ingot relative to the mounting block allows for faster and more accurate positioning and aligning of the ingot. Additionally, a predetermined centerline of an ingot of semiconductor or solar-grade material can be aligned with the center of a mounting block. As further described herein, use of independent adjustable supports allows for alignment of a predetermined ingot centerline with the center of a mounting block.
(23) Various directional components of the foregoing systems and methods are described with reference to the ingot 102. Because ingot 102 is not perfectly cylindrical, these directional components may not be purely perpendicular to or purely parallel to the longitudinal axis of ingot 102 or the ingot face 104. Additionally, because ingot 102 is capable of being rotated about the x- and y-axes during use, these directional components may not be purely parallel to the longitudinal axis of ingot 102 or the ingot face 104. Accordingly, the term substantially is used in connection with these various directional components to account for the non-perpendicular or non-parallel component of these directional components.
(24) When introducing elements of the present invention or the embodiment(s) thereof, the articles a, an, the and said are intended to mean that there are one or more of the elements. The terms comprising, including and having are intended to be inclusive and mean that there may be additional elements other than the listed elements. The use of terms indicating a particular orientation (e.g., top, bottom, side, etc.) is for convenience of description and does not require any particular orientation of the item described.
(25) As various changes could be made in the above constructions and methods without departing from the scope of the invention, it is intended that all matter contained in the above description and shown in the accompanying drawings shall be interpreted as illustrative and not in a limiting sense.