Y-THETA TABLE FOR SEMICONDUCTOR EQUIPMENT
20200098722 ยท 2020-03-26
Inventors
- Jan VAN EIJK (Eindhoven, NL)
- Ronald Maarten Schneider (Eindhoven, NL)
- Jasper Anne Frido Marikus Simons (Eindhoven, NL)
- Timotheus Hubertus Christiaan Groothuijsen (Eindhoven, NL)
Cpc classification
B23K20/10
PERFORMING OPERATIONS; TRANSPORTING
H01L2224/78821
ELECTRICITY
H01L2224/78801
ELECTRICITY
H01L2924/00014
ELECTRICITY
H01L2924/00014
ELECTRICITY
International classification
Abstract
A positioning table, for example for a wire bonder has first and second arms, each of said first and second arms being independently drivable linearly along a first axis, and a stage that is engaged with both the first and second arms. The stage engages with each of the first and second arms via a respective engagement mechanism such that the stage is movable both linearly along the first axis, and rotatable about a rotary axis coincident with a center-point of the stage, the rotary axis being orthogonal to the first axis. Each engagement mechanism is configured to permit a respective distance between the center-point of the stage and an end of each of the first and second arms to vary during movement of an arm along the first axis.
Claims
1. A positioning table for use in semiconductor equipment, comprising: first and second arms, each of said first and second arms being independently drivable with a movement component along a direction parallel to a first axis; and a stage, engaged with both the first and second arms; wherein the stage engages with each of the first and second arms via a respective engagement mechanism such that the stage is movable both linearly in a direction parallel to the first axis, and rotatably about a rotary axis being substantially orthogonal to the first axis.
2. The positioning table of claim 1, further comprising: first and second linear motors for linearly driving the first and second arms respectively; wherein each engagement mechanism is configured to permit rotation of the stage relative to a respective linear motor in a such a way that a point A of the stage will move along the first axis (Y) as: Y.sub.A=theta*R, where theta is an angle of rotation of the stage about the rotary axis in radians and R is a distance between a center of the engagement mechanism and point A.
3. The positioning table of claim 1, wherein each engagement mechanism is configured to permit a respective distance between the rotary axis and an end of each of the first and second arms to vary during driving of an arm along the direction parallel to the first axis.
4. The positioning table of claim 1, wherein the stage is linearly movable along the first axis when the first and second arms are driven in the same direction along the first axis.
5. The positioning table of claim 1, wherein the stage is rotatably movable about the rotary axis when the arms are driven at different velocities along the first axis.
6. The positioning table of claim 1, wherein the stage is connected to each of the first and second arms via a respective hinge, and wherein each hinge comprises first and second beams, each of said first and second beams being connected at a first end thereof to an arm, and at a second, distal end thereof to the stage.
7. The positioning table of claim 6, wherein the stage is connected to the first and second arms at diametrically opposed sections of the stage.
8. The positioning table of claim 6, wherein the first and second beams of each hinge are arranged in a crossed configuration, such that the first and second beams are non-parallel and have adjacent, overlying portions.
9. The positioning table of claim 8, wherein each beam is non-flexible and has a discrete pivot at each end, such that the hinge comprises a four-bar linkage.
10. The positioning table of claim 8, wherein each beam comprises a flexure element, such that the hinge comprises a cross-pivot flexure.
11. The positioning table of claim 10, wherein each flexure element comprises a leaf-spring.
12. The positioning table of claim 11, wherein each leaf-spring comprises a reinforcement element located at a midsection of the respective leaf-spring, for increasing the rigidity of the respective leaf-spring.
13. The positioning table of claim 1, wherein the stage frictionally engages each of the first and second arms.
14. The positioning table of claim 1, wherein each of the first and second arms comprises a toothed rack, and the stage comprises at least one toothed surface for driving by the toothed racks.
15. The positioning table of claim 14, comprising split gears for transferring drive from each toothed rack to the stage.
16. The positioning table of claim 1, comprising an elastic strip connected between the stage and one of the first and second arms, and arranged to lie between the stage and the arm in use.
17. The positioning table of claim 1, comprising first and second actuators, for respectively driving the first and second arms along the first axis.
18. A wire bonder comprising the positioning table of claim 1, and a bondhead mounted on the stage of the table.
19. A wire bonder comprising: first and second arms, each of said first and second arms being independently drivable with a movement component along a direction parallel to a first axis; and a stage, engaged with both the first and second arms; wherein the stage engages with each of the first and second arms via a respective engagement mechanism such that the stage is movable both linearly in a direction parallel to the first axis, and rotatably about a rotary axis being substantially orthogonal to the first axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The invention will now be described with reference to the accompanying drawings (not to scale), in which:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS OF THE INVENTION
[0032] A first embodiment of the present invention is schematically shown in
[0033] The stage 12 is connected to each arm 13, 14 via a respective hinge 17, 18. Each hinge 17, 18 is formed as a four-bar linkage, having first and second beams 19, 20, each of the first and second beams 19, 20 being connected at a first end thereof to an arm 13, 14, and at a second, distal end thereof to the stage 12. The first and second beams 19, 20 of each hinge 17, 18 are arranged in a crossed configuration, such that the first and second beams 19, 20 are non-parallel and have adjacent, overlying portions, which as shown are proximate the centre of each beam 19, 20. These portions do not contact each other, to avoid friction between the beams 19, 20.
[0034] Each beam 19, 20 comprises a non-flexible rigid rod, and is connected between the respective arm 13, 14 and the stage 12 via a discrete, respective pivot 21, 22 at the ends thereof. The length of the individual linkages and the angle between the linkages define the movement of the Z-axis during rotation of the stage 12, and need to be chosen carefully to ensure optimum performance. The pivots 21, 22 can be formed in various ways, for example as flexure cross-pivots, ball bearings, elastic/rubber material, or metal flexures such as leaf-springs.
[0035] This form of hinge has an advantage that the linkages have a relatively high stiffness both along the Y driving direction and the Z direction, and so are capable of supporting and driving a relatively heavy stage 12.
[0036] In the position shown in
[0037] During operation, the stage 12 is moved along the Y-axis when the first and second arms 13, 14 are driven to create a net movement of the arms along the Y-axis, for example if they are both driven in the same direction along the Y-axis. The stage 12 is rotated about a Z-axis substantially orthogonal to the Y-axis when the arms 13, 14 are driven at different velocities along the Y-axis. These linear and rotational movements may be superposed, for example if the arms 13, 14 are both driven in the positive Y direction, but one arm 14 travels faster than the other arm 13, then the stage 12 will both move in the positive Y direction and be rotated clockwise by an angle . In this case, it should be noted of course that the point A, and also the axis of rotation, will be translated along the Y direction.
[0038]
[0039] Alternative embodiments of the present invention, in which hinges comprising cross-pivot flexures are employed, are schematically shown in
[0040] In
[0041]
[0042]
[0043]
[0044]
[0045] In a related embodiment (not shown), the stage 40 may be carried by a wheel, and the wheel is pressed between the arms 41, 42 to enable the frictional driving thereof.
[0046]
[0047] Optionally, the rack and pinion system of
[0048] If required, guiding rails (not shown) can be included to constrain the other degrees of freedom.
[0049] In a related embodiment (not shown), the stage 40 may be carried by a wheel, and the wheel comprises the pinion gearing for engagement with racks 54.
[0050]
[0051] In a related embodiment (not shown), the stage 60 may be carried by a wheel, and the elastic strip connects the wheel to a respective arm 61, 62.
[0052] The above-described embodiments are exemplary only, and other possibilities and alternatives within the scope of the invention will be apparent to those skilled in the art. For example, while the stage is preferably supported by the hinges alone, support may be provided by a separate bearing (for example located underneath the stage), or by a combination thereof.
[0053] For simplicity, the apparatus described above uses arms which are driven in parallel directions, however this is not essential, and it is only required that the arms are driven with a movement component along a direction parallel to the first (Y) axis. The arms themselves also need not be parallel to each other.
[0054] While the table has been described as being of utility for wire bonders, it could equally be used for other semiconductor equipment.
REFERENCE NUMERALS USED
[0055] 10wire bonder table [0056] 11bondhead [0057] 12stage [0058] 13, 14arms [0059] 15, 16bearings [0060] 17, 18hinges [0061] 19, 20beams [0062] 21, 22pivots [0063] 23, 24leaf-springs [0064] 25reinforcement element [0065] 26cross-pivot flexure [0066] 27base [0067] 28mounting element [0068] 30wire bonder [0069] 40, 50, 60stage [0070] 41, 42, 51, 52, 61, 62arms [0071] 43, 44radiused edges [0072] 45, 55, 65bondhead [0073] 53toothed edge [0074] 54rack [0075] 66, 67elastic strip [0076] Aarbitrary point on stage [0077] L1shortest distance between the rotary axis and arm [0078] L2, L3distance between rotary axis and end of arm