Grinding device

The grinding device addresses the challenges of attaching and detaching grinding wheels by using a magnetic coupling mechanism for nearly one-touch operations, ensuring safe and efficient attachment and detachment of grinding wheels, and enabling the use of general-purpose products.

JP2026092016APending Publication Date: 2026-06-04TOKYO SEIMITSU CO LTD

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
TOKYO SEIMITSU CO LTD
Filing Date
2026-03-26
Publication Date
2026-06-04

AI Technical Summary

Technical Problem

Existing grinding devices for semiconductor wafers face challenges in safely attaching and detaching a grinding wheel to a spindle flange due to unstable connections, risk of damage during manual handling, and the need for specially shaped grinding wheels, limiting the use of general-purpose products.

Method used

A grinding device with a magnetic coupling mechanism that includes a wheel cover and coupling parts on the spindle flange and grinding wheel, allowing for nearly one-touch attachment and detachment of the grinding wheel, protecting it during the process.

Benefits of technology

The magnetic coupling mechanism enables safe and efficient attachment and detachment of the grinding wheel, protecting it from damage and allowing for the use of general-purpose products.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a grinding device that allows a grinding wheel, which has a grinding wheel on its lower side, to be safely attached to and detached from a disc-shaped spindle flange. [Solution] A grinding apparatus 10 for processing a wafer W, comprising: a grinding wheel 22 with a grinding wheel 22B on its lower side; a disc-shaped spindle flange 17 that detachably holds the grinding wheel 22 and rotates together with the grinding wheel 22; a wheel cover 24 that covers the outside of the grinding wheel 22 from the lower side of the grinding wheel 22 and is attached to the spindle flange 17; and a detachable mechanism 25 having a female part 25B and a male part 25A that is inserted into the female part 25B and detachably attached to the female part 25B, with the female part 25A provided on the spindle flange 17 and the male part 25A provided on the wheel cover 24, wherein the detachable mechanism 25 is a magnetic coupling means 32 provided on the female part 25B and the male part 25A respectively and capable of magnetically coupling with each other.
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Description

Technical Field

[0001] The present invention relates to a grinding device, and more particularly to a grinding device in which a grinding wheel having a grinding stone portion on the lower surface side can be detachably attached to a disc-shaped spindle flange.

Background Art

[0002] Conventionally, in the semiconductor manufacturing field, back grinding for grinding the back surface of a semiconductor wafer such as a silicon wafer (hereinafter referred to as "wafer") in order to form a thin film on the wafer has been performed (see, for example, Patent Document 1).

[0003] Patent Document 1 discloses a grinding device in which a ring-shaped grinding stone is attached to a spindle flange connected to the tip of a spindle. The ring-shaped grinding stone is fastened to the spindle flange with about 10 bolts (not shown) and is configured to be releasable (released) with respect to the spindle flange. However, in the grinding device described in Patent Document 1, since the ring-shaped grinding stone is attached to the spindle flange by an operator manually fastening about 10 bolts, the attachment and detachment work of the ring-shaped grinding stone tends to be complicated.

[0004] In addition, when the ring-shaped grinding stone fastened with bolts is used to attach the grinding wheel to the spindle flange, there is a risk that an operator may accidentally collide the ring-shaped grinding stone with a part of the grinding device and damage the grinding stone portion, or accidentally collide a tool used for the attachment work with the grinding stone portion and damage the grinding wheel. In particular, in recent years, the grinding stone has been miniaturized, and some grinding stones have been developed that break just by being grasped, and the protection of the grinding stone has become an important issue.

[0005] Therefore, a grinding device is known in which while using a holding member that protects the lower part of the grinding wheel when the grinding wheel is attached to the spindle flange, the other surface side of the grinding wheel is detachably fixed to a disc-shaped spindle flange (see, for example, Patent Document 2).

[0006] The holding member of the grinding apparatus disclosed in Patent Document 2 is provided with a receiving recess for accommodating the free end of the grinding wheel, and a suction cup or the like made of a material with a high coefficient of friction is provided within the receiving recess. When attaching the grinding wheel to the spindle flange, the grinding wheel is housed in the receiving recess of the holding member, and the entire lower surface of the grinding wheel is covered from the outside, and the holding member is attached to the grinding wheel by frictional force. With the holding member attached to the grinding wheel, the upper surface of the grinding wheel is temporarily fixed to the lower surface of the spindle flange. After that, the grinding wheel and the wheel mount are securely fixed together with fixing members such as bolts. After the fixing work is completed, the holding member is removed from the grinding wheel, and the installation work is completed.

[0007] Conversely, when removing the grinding wheel from the spindle flange, the free end of the grinding wheel is placed in the recess of the retaining member, covering the entire underside of the grinding wheel from the outside, and the retaining member is attached to the grinding wheel. With the retaining member attached to the grinding wheel, the grinding wheel is removed from the underside of the spindle flange. After removal is complete, the grinding wheel and retaining member are placed together in the designated storage location, thus completing the removal process. [Prior art documents] [Patent Documents]

[0008] [Patent Document 1] Japanese Patent Application Publication No. 11-309673 [Patent Document 2] Japanese Patent Publication No. 2008-207277 [Overview of the Initiative] [Problems that the invention aims to solve]

[0009] However, the holding member of the grinding apparatus disclosed in Patent Document 2 is attached to the grinding wheel by frictional force, which makes the connection between the holding member and the grinding wheel unstable. This can easily cause the holding member to detach from the grinding wheel and be damaged during the attachment and detachment of the grinding wheel to the spindle flange. Furthermore, there is a risk of damaging the grinding wheel if the work continues with the holding member detached, or damaging the grinding wheel by accidentally striking it with a tool used for attachment. In addition, there is a problem that a specially shaped grinding wheel is required, making it impossible to use general-purpose products.

[0010] Therefore, a technical problem arises that needs to be solved in order to provide a grinding apparatus that has a grinding wheel having a grinding wheel portion on the lower side of a general-purpose product, which can be safely attached to and detached from a disc-shaped spindle flange. The present invention aims to solve this problem. [Means for solving the problem]

[0011] The present invention was proposed to achieve the above objective, and provides a grinding apparatus for processing wafers, comprising: a grinding wheel having a grinding wheel on its lower side; a spindle flange that detachably holds the grinding wheel and rotates together with the grinding wheel; a wheel cover that covers the outside of the grinding wheel from the lower side and is attached to the spindle flange when the grinding wheel is replaced; a first coupling part; a second coupling part that is detachable from the first coupling part; and a detachable mechanism provided on the spindle flange with one of the first or second coupling part attached to the wheel cover, wherein the detachable mechanism is a magnetic coupling means provided on the first coupling part and the second coupling part, respectively, and capable of magnetically coupling with each other.

[0012] With this configuration, by connecting the first and second coupling parts of the attachment / detachment mechanisms provided on the grinding wheel and the wheel cover, respectively, the wheel cover can be temporarily attached to the spindle flange with almost one touch, covering the entire underside of the grinding wheel from the outside. Subsequently, when the grinding wheel is permanently fixed to the spindle flange in this state, the underside of the grinding wheel, i.e., the outside of the grinding wheel where the grinding wheel is mounted, is covered and protected by the wheel cover, allowing the grinding wheel to be permanently fixed to the spindle flange. Furthermore, after the grinding wheel has been permanently fixed to the spindle flange, the wheel cover can be removed from the spindle flange with almost one touch using the attachment / detachment mechanism, exposing the grinding wheel to the underside of the spindle flange, and grinding work can be performed using the grinding wheel. Conversely, when removing the grinding wheel from the spindle flange, the first and second coupling parts of the attachment / detachment mechanism located between the spindle flange and the wheel cover are connected to each other. This allows the wheel cover to be temporarily attached to the spindle flange, covering the entire underside of the grinding wheel from the outside, with almost a one-touch operation. With the wheel cover attached to the spindle flange, the grinding wheel can then be removed from the spindle flange while the grinding wheel and other components are protected by the wheel cover.

[0013] Furthermore, when the first and second coupling parts are brought close together, the magnetic attraction of the magnetic coupling means detachably connects the first and second coupling parts, allowing the wheel cover to be attached to the grinding wheel with virtually one touch. Conversely, to remove it, pulling the first and second coupling parts apart against the magnetic attraction of the magnetic coupling means releases the connection between the first and second coupling parts, allowing the wheel cover to be removed from the grinding wheel with virtually one touch. The magnets used in the magnetic coupling means may be permanent magnets or electromagnets that are electrically excited. In the case of electromagnets, reversing the N and S poles on the electromagnet side makes it possible to perform the connection and disconnection operation with a single touch. [Effects of the Invention]

[0014] According to the present invention, by inserting and connecting the first and second coupling parts of the attachment / detachment mechanisms provided on the spindle flange and the wheel cover, respectively, the wheel cover can be temporarily attached to the spindle flange with virtually one touch, covering the entire lower surface of the grinding wheel from the outside. When the grinding wheel is attached to the spindle flange in this state, the lower side of the grinding wheel, i.e., the outside of the grinding wheel where the grinding wheel portion is located, is covered and protected by the wheel cover, allowing the grinding wheel to be attached to the spindle flange. Furthermore, after attaching the grinding wheel to the spindle flange, the wheel cover can be removed from the spindle flange with almost a single touch using the attachment / detachment mechanism, allowing grinding work to be performed using the grinding wheel. Conversely, when removing the grinding wheel from the spindle flange, the first and second coupling parts of the attachment / detachment mechanism are inserted and coupled together, allowing the wheel cover to be attached to the grinding wheel in a nearly one-touch manner, covering the entire underside of the grinding wheel from the outside. Then, with the wheel cover attached to the spindle flange, the grinding wheel is removed from the spindle flange, and the wheel cover is then removed from the spindle flange, allowing the grinding wheel to be removed from the spindle flange while protecting the grinding wheel and other components. Therefore, in a grinding apparatus with this attachment / detachment mechanism, a grinding wheel with a grinding wheel section on its lower side can be safely attached to and detached from a disc-shaped spindle flange. [Brief explanation of the drawing]

[0015] [Figure 1]This is a schematic longitudinal cross-sectional view illustrating a semiconductor wafer grinding apparatus according to an embodiment of the present invention, where (a) shows the state before the grinding wheel is attached to the spindle flange, (b) shows the state in the process of attaching the grinding wheel to the spindle flange, and (c) shows the state after the grinding wheel has been attached to the spindle flange. [Figure 2] The above is an enlarged view of the main part of the grinding apparatus, where (a) is a longitudinal cross-sectional side view showing the wafer in the state of planar processing, (b) is a diagram showing the water flow path between the inner plate and the spindle flange, and (c) is a diagram showing the water flow path into the insertion hole of the female part. [Figure 3] This diagram illustrates the process of attaching the grinding wheel to the spindle flange. (a) shows the grinding wheel set in the wheel cover, (b) shows the grinding wheel before it is set in the spindle flange, (c) shows the grinding wheel temporarily set in the spindle flange, (d) is a magnified view showing the grinding wheel being attached to the spindle flange with the mounting bolts, and (e) shows the grinding wheel fully attached to the spindle flange with the mounting bolts. [Figure 4] These diagrams illustrate the process of removing the grinding wheel from the spindle flange. (a) shows the wheel cover positioned below the grinding wheel attached to the spindle flange. (b) shows the wheel cover attached to the spindle flange from below the grinding wheel. (c) shows the grinding wheel removed from the spindle flange and supported by the wheel cover. (d) shows the wheel cover removed from the spindle flange along with the grinding wheel. [Figure 5] This is a perspective view showing the grinding wheel attached to the underside of the spindle flange and the wheel cover removed from the grinding wheel. [Figure 6]This shows the detaching and attaching mechanism used in the above grinding device. (a) is a view seen from below the female part with the latch pin of the male part corresponding to the vertical cam of the female part. (b) is a view showing the state where the latch pin of the male part is engaged in the cylindrical cam halfway. (c) is a view showing the state where the latch pin of the male part is engaged with the end of the cylindrical cam. [Figure 7] It is a cross-sectional view showing a modified example of the detaching and attaching mechanism that can be used in the above grinding device. [Figure 8] It is a cross-sectional view showing another modified example of the detaching and attaching mechanism that can be used in the above grinding device. [Figure 9] It is an operation explanatory view of the detaching and attaching mechanism shown in FIG. 8. (a) is a view showing the disconnected state. (b) is a view showing the connected and held state. [Figure 10] It is a view showing the state where an adjusting jig is attached to the detaching and attaching mechanism provided corresponding to the axial center of the spindle flange.

Embodiments for Carrying Out the Invention

[0016] In order to achieve the object of providing a grinding device in which a grinding wheel having a grinding stone part on the lower surface side can be safely detached and attached to a disk-shaped spindle flange, the present invention is a grinding device for processing a wafer, comprising a grinding wheel provided with a grinding stone on the lower surface side, a spindle flange that detachably holds the grinding wheel and rotates together with the grinding wheel, a wheel cover that covers the outside of the grinding wheel from the lower surface side and is attached to the spindle flange when the grinding wheel is replaced, a first coupling part, and a second coupling part that is detachable from the first coupling part, wherein one of the first coupling part or the second coupling part is provided on the spindle flange, and the other of the first coupling part or the second coupling part is provided on the wheel cover, and a detaching and attaching mechanism is provided, and the detaching and attaching mechanism is realized by a configuration in which magnet coupling means provided on the first coupling part and the second coupling part respectively and capable of being coupled by magnetic force to each other.

Examples

[0017] Hereinafter, an embodiment of the present invention will be described in detail with reference to the accompanying drawings. In the following embodiments, when referring to the number, numerical values, quantities, ranges, etc., of the components, unless specifically indicated or clearly limited in principle to a particular number, the number is not limited to that particular number, and may be greater than or less than that number.

[0018] Furthermore, when referring to the shape, positional relationship, etc. of constituent elements, unless otherwise explicitly stated or in cases where it is clearly not the case in principle, this includes things that are substantially similar or analogous to those shapes, etc.

[0019] Furthermore, drawings may exaggerate features by enlarging characteristic parts to make them easier to understand, and the dimensional ratios of components may not be the same as in reality. Also, in cross-sectional views, hatching of some components may be omitted to make the cross-sectional structure of the components easier to understand.

[0020] Furthermore, in the following description, expressions indicating directions such as up and down or left and right are not absolute. They are appropriate when each part of the grinding apparatus of the present invention is depicted in that position, but should be interpreted in accordance with the change in that position. Also, the same reference numerals are used for the same elements throughout the description of the embodiments.

[0021] Figures 1 to 6 show a wafer grinding apparatus 10 and its main components according to an embodiment of the present invention. The configuration and operation of the grinding apparatus 10 will be described below using Figures 1 to 6.

[0022] Figure 1 is a schematic longitudinal cross-sectional view illustrating the wafer grinding apparatus 10, where (a) shows the state before the grinding wheel 22 is attached to the spindle flange 17, (b) shows the state in the process of attaching the grinding wheel 22 to the spindle flange 17, and (c) shows the state after the grinding wheel 22 has been attached to the spindle flange 17. Figure 2 is an enlarged view of the main parts of the grinding apparatus 10, and Figures 3 and 4 are enlarged views of the main parts of the grinding apparatus 10 that also serve to illustrate the replacement work of the grinding wheel 22.

[0023] The grinding device 10 is a surface grinding device, and as shown in Figure 1, it mainly consists of the device body 11, casing 12, moving mechanism 13, spindle casing 14, chuck table 15, turntable 16, etc., and a wheel cover 24 is provided to protect the grinding wheel 22B of the grinding wheel 22 when the grinding wheel 22 is replaced.

[0024] The casing 12 is erected on the main body 11 of the device, and a lifting mechanism (not shown) is installed inside it. The moving mechanism 13 is mounted on the casing 12 via a guide (not shown) so as to be movable in the XY direction, and is connected to the lifting mechanism installed inside the casing 12. Therefore, the moving mechanism 13 can move up and down in the vertical direction by driving the lifting mechanism.

[0025] The chuck table 15 is mounted on the turntable 16. The chuck table 15 is connected to a negative pressure source (not shown), and the wafer W to be planar ground is held in place by suction, and the held wafer W is ground here. Figure 2(a) shows an example of the cutting process.

[0026] The turntable 16 rotates together with the chuck table 15 around the axis of the chuck table 15, driven by a motor (not shown).

[0027] The spindle casing 14 is rotatably mounted on the moving mechanism 13 and is movable vertically with the moving mechanism 13. It also rotates around the axis of the spindle casing 14 by the driving force of a motor (not shown). As shown in detail in Figure 2, a spindle flange 17, which is formed in a substantially disc shape and rotates integrally with the spindle casing 14, is connected and fixed to the lower surface of the spindle casing 14. Furthermore, as shown in detail in Figures 2 and 3(d), a small-diameter projection 17B, which is circular in shape and has an outer diameter smaller than the outer diameter of the main body 17A, is integrally provided on the lower surface of the main body 17A of the spindle flange 17. On the lower surface of the small-diameter projection 17B, an inverted mortar-shaped recess 19 is formed, which has an inclined surface 18 on its inner circumference that gradually slopes towards the center as it extends upward from the lower opening. An inner plate 20 is disposed inside the recess 19.

[0028] The inner plate 20 is a disc-shaped member that can be housed within the recess 19 of the spindle flange 17, and its outer circumferential surface is provided with an inclined surface 20a corresponding to the inclined surface 18 of the recess 19. The inner plate 20 is housed within the recess 19 and attached to the underside of the spindle flange 17 with bolts (not shown).

[0029] Furthermore, a flow path 21 for transporting a fluid 100 such as water or air is formed approximately at the axial center of the spindle casing 14 and the spindle flange 17. The flow path 21 has a supply port 21a for taking in the fluid 100 from the engine, and a blower port 21b provided between the spindle flange 17 and the inner plate 20 for ejecting the fluid 100 taken in from the supply port 21a to the outside. In addition, a portion of the fluid 100 from the flow path 21 is supplied between the spindle flange 17 and the grinding wheel 22, and is used to separate the grinding wheel 22 from the spindle flange 17 and make it easier to remove when the grinding wheel 22 is removed from the spindle flange 17.

[0030] A grinding wheel 22 is detachably attached to the lower surface of the spindle flange 17 using mounting bolts 23. The grinding wheel 22 comprises an annular base portion 22A and a grinding wheel 22B installed on the lower surface of the base portion 22A. As shown in detail in Figures 3 and 4, multiple mounting holes 17c through which the mounting bolts 23 are inserted are provided at approximately equal intervals along the outer surface 17b of the spindle flange 17 on the outer peripheral end side of the main body portion 17A. In addition, multiple mounting screw holes 22f through which the mounting bolts 23 are screwed are provided on the upper surface 22d of the base portion 22A of the grinding wheel 22, corresponding to the mounting holes 17c of the main body portion 17A of the spindle flange 17. Therefore, when attaching the grinding wheel 22 to the lower surface of the spindle flange 17, the mounting screw holes 22f of the grinding wheel 22 are aligned with the mounting holes 17c of the spindle flange 17, as shown in Figure 3(c). Furthermore, in this state, as shown in Figure 3(d), the mounting bolt 23 is screwed into the mounting screw hole 22f from above the main body portion 17A of the spindle flange 17 through the mounting hole 17c, thereby tightening the gap between the main body portion 17A of the spindle flange 17 and the base metal portion 22A of the grinding wheel 22, and as shown in Figure 3(e), the grinding wheel 22 can be detachably fixed to the spindle flange 17.

[0031] The base metal portion 22A is formed in an annular shape as shown in Figure 5. Figure 5 shows the grinding wheel 22 attached to the lower surface of the spindle flange 17 and the wheel cover 24 removed from the grinding wheel 22. The cross-section of the base metal portion 22A is shown in more detail in Figures 3 and 4, and has an inclined surface 22a, an inner circumferential surface 22b, an outer circumferential surface 22c, an upper surface 22d, and a lower surface 22e, and exhibits a roughly pentagonal cross-section. The inner diameter of the base metal portion 22A is approximately equal to the outer diameter of the small diameter projection 17B of the spindle flange 17, and the outer diameter is approximately equal to the outer diameter of the main body portion 17A of the spindle flange 17. Furthermore, the thickness of the base metal portion 22A, i.e., the height of the outer circumferential surface 22c, is set to protrude significantly downward from the bottom surface of the inner plate 20 which is housed and mounted in the recess 19 provided on the lower surface of the spindle flange 17. The inclination angle of the inclined surface 20a on the inner plate 20 is approximately 30 degrees, and it slopes downward from the inner circumferential surface 22b toward the outer circumferential side.

[0032] As shown in more detail in Figures 3(d) and 5, the grinding wheels 22B are installed in multiple locations on the lower surface 22e of the base metal portion 22A, along the outer circumference of the base metal portion 22A, and are integrated with the base metal portion 22A, forming a ring-shaped grinding wheel 22.

[0033] When the grinding wheel 22 is used attached to the spindle flange 17, as shown in Figure 1(c) and Figure 2(a), the grinding wheel 22B is positioned downwards, and the upper surface 22d of the base metal portion 22A is in close contact with the outer bottom surface 17a of the spindle flange 17. The wheel is then fixed to the spindle flange 17 using mounting bolts 23. In this mounting state, the inner surface 22b of the base metal portion 22A and the outer surface 17b of the small diameter projection 17B on the spindle flange 17 are also in close contact.

[0034] The wheel cover 24 is formed in a generally circular tray shape with an open top surface, using a transparent resin material such as polyethylene terephthalate (PET). As shown in Figures 2 to 5, the wheel cover 24 has a disc portion 24A, and a cylindrical portion 24B is integrally formed on the outer circumference of the disc portion 24A, extending upward from the disc portion 24A. The inner diameter of the cylindrical portion 24B is approximately equal to the outer surface 22c of the base metal portion 22A of the grinding wheel 22. Furthermore, as shown in detail in Figure 3(d), an inclined surface 24a is formed at the open end of the cylindrical portion 24B, which opens outward from the bottom to the top to invite the base metal portion 22A to be received inside the cylindrical portion 24B.

[0035] As shown in detail in Figures 3 and 4, the disc portion 24A of the wheel cover 24 has an annular projection 24C that protrudes upward on the inside of the cylindrical portion 24B, extending along the entire circumference of the inner circumferential surface of the cylindrical portion 24B. As shown in Figure 3(d), when the inner circumferential surface of the cylindrical portion 24B contacts a predetermined position on the outer circumferential surface of the base metal portion 22A of the grinding wheel 22, the top 24d of the annular projection 24C contacts the inclined surface 22a of the base metal portion 22A, and the grinding wheel 22 and the wheel cover 24 are positioned relative to each other in a predetermined position. Furthermore, when the grinding wheel 22 and the wheel cover 24 are positioned relative to each other in a predetermined position, an annular recess 24D is formed on the underside of the grinding wheel 22B of the grinding wheel 22, and this annular recess 24D prevents the grinding wheel 22B from contacting the wheel cover 24.

[0036] The attachment / detachment mechanism 25 is provided at the axial center of the spindle flange 17 and approximately at the axial center of the wheel cover 24, which corresponds to the axial center of the spindle flange 17. The attachment / detachment mechanism 25 consists of a female part 25B as a first coupling part and a male part 25A as a second coupling part. In this embodiment, the male part 25A is provided approximately at the axial center of the disc part 24A of the wheel cover 24, along its axial center. On the other hand, the female part 25B is provided approximately at the axial center of the inner plate 20 on the spindle flange 17 side, along its axial center, as shown in more detail in Figures 2 to 5. Also, as shown in Figure 2, the tip portion of the female part 25B is mounted protruding into the flow path 21.

[0037] The male part 25A has an insertion pin 26 that penetrates vertically through the center of the disc portion 24A of the wheel cover 24 and is rotatably attached to the wheel cover 24. The tip side (upper end side) of the insertion pin 26 is provided with a pair of left and right latch pins 27 that protrude approximately perpendicularly from the outer surface of the insertion pin 26. On the other hand, the base end (lower end side) of the insertion pin 26 is provided with a knob 28 for rotating the insertion pin 26 from the underside of the wheel cover 24.

[0038] The female part 25B is a cylindrical body having an insertion hole 30 at its center for receiving the insertion of the insertion pin 26, and is provided along the rotation axis of the grinding wheel 22. Furthermore, as shown in detail in Figure 6, the insertion hole 30 has a vertical cam portion 31A that allows the latch pin 27 to escape when the insertion pin 26 is inserted, and a cylindrical cam portion 31B that allows the latch pin 27 to rotate by a predetermined amount when the insertion pin 26 is rotated around its axis at a predetermined position where the insertion pin 26 is inserted. These portions are formed on both the left and right sides of the insertion hole 30, corresponding to a pair of latch pins 27 of the insertion pin 26. A spring plunger 29 is provided inside the insertion hole 30 as a stopper to regulate the amount of insertion of the insertion pin 26.

[0039] Furthermore, the cylindrical cam portion 31B is open on the outer circumference of the female portion 25B and communicates with the flow path 21. Therefore, when the insertion pin 26 of the male portion 25A is not inserted into the insertion hole 30 of the female portion 25B, when a fluid such as water or air is sent into the flow path 21, the sent fluid such as water or air is not only blown out from the outlet 21b as shown in Figure 2(b), but also flows as a fluid such as water or air that enters the insertion hole 30 from the cylindrical cam portion 31B and is blown out from the lower end, as shown in Figure 2(c), to discharge dust and other debris from inside the insertion hole 30. Furthermore, as shown in Figure 6(c), a locking recess 31C is provided at the outer circumferential end of the cylindrical cam portion 31B, into which the latch pin 27 of the male portion 25A temporarily falls, preventing the insertion pin 26 from inadvertently returning to the outer circumferential starting end side (vertical cam portion 31A side) of the cylindrical cam portion 31B. The spring plunger 29 biases the insertion pin 26 downward, pressing the latch pin 27 against the locking recess 31C.

[0040] Next, the operation of the attachment / detachment mechanism 25 configured in this way will be explained. First, by grasping the knob 28 and aligning the latch pin 27 of the insertion pin 26 in the male part 25A with the vertical cam part 31A of the female part 25B, the insertion pin 26 can be inserted into the insertion hole 30 to a predetermined position where the tip of the insertion pin 26 strikes the spring plunger 29 in the insertion hole 30. Also, as shown in Figure 6(a), when the insertion pin 26 is inserted to a predetermined position in the insertion hole 30 and rotated clockwise around its axis, the latch pin 27 enters the cylindrical cam part 31B and rotates around its axis, as shown in Figure 6(b). Furthermore, when it is rotated to the outer peripheral end of the cylindrical cam part 31B, as shown in Figure 6(c), the latch pin 27 temporarily falls into the locking recess 31C, restricting the movement of the insertion pin 26 towards the lower end and holding the latch pin 27 so as not to inadvertently return to the vertical cam part 31A side. This ensures that the male part 25A and the female part 25B are joined together in a virtually one-touch manner, preventing them from coming loose.

[0041] Conversely, with the male part 25A and the female part 25B locked together, if the knob 28 is grasped and the insertion pin 26 is rotated counterclockwise, the latch pin 27 will come out of the locking recess 31C. Then, when the latch pin 27 is returned to the vertical cam part 31A, the engagement between the latch pin 27 and the cylindrical cam part 31B is released. During this release, the insertion pin 26 can be pulled out of the insertion hole 30 together with the latch pin 27, allowing the male part 25A to be removed from the female part 25B with virtually one touch. Therefore, with this attachment / detachment mechanism 25, the male part 25A and the female part 25B can be connected and disconnected with virtually one touch operation.

[0042] Next, the operation of attaching the grinding wheel 22 in the grinding device 10 equipped with the attachment / detachment mechanism 25 will be explained using Figures 3 and 4.

[0043] First, the case of attaching the grinding wheel 22 to the spindle flange 17 will be explained using Figures 3(a) to (e) and Figure 4(a).

[0044] When attaching the grinding wheel 22 to the spindle flange 17, as shown in Figure 3(a), the grinding wheel 22 is slowly lowered into the wheel cover 24 with the opening end of the cylindrical portion 24B facing upward and the grinding wheel 22B facing downward. Once the grinding wheel 22 is lowered to a predetermined position within the cylindrical portion 24B, the inclined surface 22a of the base metal portion 22A of the grinding wheel 22 comes into contact with the annular projection 24C of the wheel cover 24, and the grinding wheel 22 is positioned within the wheel cover 24. Figure 3(a) shows the state in which the grinding wheel 22 is positioned within the wheel cover 24. Furthermore, when the grinding wheel 22 is positioned within the wheel cover 24, the inner circumferential surface of the cylindrical portion 24B comes into contact with the outer circumferential surface 22c of the base metal portion 22A, and the grinding wheel 22B is held within the annular recess 24D without contacting the wheel cover 24.

[0045] Next, as shown in Figure 3(b), the wheel cover 24, in which the grinding wheel 22 is positioned, is lifted together with the grinding wheel 22. Then, the latch pin 27 of the male part 25A of the attachment / detachment mechanism 25, which is attached to the inner plate 20 on the spindle flange 17 side, is aligned with the vertical cam part 31A of the female part 25B of the same attachment / detachment mechanism 25, and the insertion pin 26 is inserted into the insertion hole 30 until the tip of the insertion pin 26 strikes the spring plunger 29 of the female part 25B.

[0046] Furthermore, once the insertion pin 26 is inserted into the insertion hole 30 to a predetermined position where its tip strikes the spring plunger 29, the operator grasps the knob 28 by hand and rotates the insertion pin 26 clockwise around its axis, causing the latch pin 27 to enter the cylindrical cam portion 31B. When the insertion pin is rotated until the latch pin 27 reaches the outer circumference end of the cylindrical cam portion 31B, the latch pin 27 temporarily falls into the locking recess 31C, restricting the insertion pin 26 from moving towards the lower end and preventing the latch pin 27 from unintentionally returning to the vertical cam portion 31A side. As a result, the male portion 25A and the female portion 25B are joined almost instantly, and the grinding wheel 22 is ready to go together with the wheel cover 24, with the upper surface 22d of the base metal portion 22A facing the outer circumference bottom surface 17a of the spindle flange 17. Figure 3(c) shows this ready state. In this standby state, the distance between the outer bottom surface 17a of the spindle flange 17 and the upper surface 22d of the grinding wheel 22 is approximately 8 mm.

[0047] Next, the grinding wheel 22 is rotated horizontally together with the wheel cover 24 around the insertion pin 26, so that the mounting hole 17c on the spindle flange 17 side and the mounting screw hole 22f on the base metal part 22A side are aligned vertically. Then, as shown in Figure 3(d), the mounting bolt 23 is screwed into the mounting screw hole 22f from above the main body part 17A of the spindle flange 17 through the mounting hole 17c, tightening the gap between the main body part 17A of the spindle flange 17 and the base metal part 22A of the grinding wheel 22. As a result, the grinding wheel 22 is permanently fixed to the main body part 17A of the spindle flange 17, as shown in Figure 3(e).

[0048] Furthermore, once the grinding wheel 22 is permanently fixed to the main body 17A of the spindle flange 17, the latch pin 27 is released from the locking recess 31C by grasping the knob 28 and rotating the insertion pin 26 counterclockwise. When the latch pin 27 is returned to the vertical cam portion 31A, the engagement between the latch pin 27 and the cylindrical cam portion 31B is released, and the insertion pin 26 can be pulled out from the insertion hole 30 together with the latch pin 27, allowing the male portion 25A to be removed from the female portion 25B with almost one touch. At the same time, the wheel cover 24 is moved below the grinding wheel 22, and as shown in Figure 4(a), the wheel cover 24 can be removed from the spindle flange 17 side with almost one touch while the grinding wheel 22 remains attached to the spindle flange 17. By removing the wheel cover 24, the grinding wheel 22 is exposed on the lower surface of the spindle flange 17, and grinding work can be performed using the grinding wheel 22.

[0049] Next, the operation of removing the grinding wheel 22 from the spindle flange 17 will be explained using Figures 4(a) to (d).

[0050] To remove the grinding wheel 22 from the spindle flange 17, as shown in Figure 4(a), the wheel cover 24, which is equipped with the male part 25A of the attachment / detachment mechanism 25, is brought close to the grinding wheel 22 from the underside of the grinding wheel 22, which is attached to the spindle flange 17 by mounting bolts 23, with the open end of the cylindrical part 24B facing upwards.

[0051] Furthermore, the latch pin 27 of the male part 25A of the attachment / detachment mechanism 25, which is attached to the inner plate 20 on the spindle flange 17 side, is aligned with the vertical cam part 31A of the female part 25B of the same attachment / detachment mechanism 25, and the insertion pin 26 is then inserted into the insertion hole 30 until its tip strikes the lower end of the spring plunger 29.

[0052] Furthermore, once the insertion pin 26 is inserted into the insertion hole 30 until its tip strikes the lower end of the spring plunger 29, the operator grasps the knob 28 of the insertion pin 26 with their hand and rotates the insertion pin 26 clockwise around its axis, causing the latch pin 27 to enter the cylindrical cam portion 31B. When the insertion pin 26 is rotated until the latch pin 27 moves to the outer circumference end of the cylindrical cam portion 31B, the latch pin 27 temporarily falls into the locking recess 31C. The movement of the insertion pin 26 toward the lower end is then restricted by the engagement and locking between the cylindrical cam portion 31B and the latch pin 27, and the latch pin 27 is held in place so as not to inadvertently return to the vertical cam portion 31A side. Thus, the male portion 25A and the female portion 25B are joined almost instantly, preventing them from coming apart, and the wheel cover 24 is temporarily fixed to the spindle flange 17 side. Furthermore, the inner circumferential surface of the cylindrical portion 24B of the wheel cover 24 comes into contact with the outer circumferential surface 22c of the base metal portion 22A. Figure 4(b) shows this state.

[0053] Furthermore, once the wheel cover 24 is attached to the spindle flange 17, all mounting bolts 23 that were attached to the mounting screw holes 22f of the base metal portion 22A of the grinding wheel 22 are removed. This detaches the grinding wheel 22 from the spindle flange 17, and it is dropped into the cylindrical portion 24B of the wheel cover 24. At this time, a fluid 100 such as water or air is supplied from the flow path 21 between the spindle flange 17 and the grinding wheel 22, applying a force that pulls the grinding wheel 22 away from the spindle flange 17. After the grinding wheel 22 is detached from the spindle flange 17, the inner circumferential surface of the cylindrical portion 24B of the wheel cover 24 comes into contact with the outer circumferential surface 22c of the base metal portion 22A. Also, the inclined surface 22a of the base metal portion 22A is positioned in contact with the annular convex portion 24C, and the grinding wheel 22B is held in the annular recess 24D without contacting the wheel cover 24. Figure 4(c) shows this state.

[0054] Next, when the operator grasps the knob 28 with their hand and rotates the insertion pin 26 counterclockwise, the latch pin 27 comes out of the locking recess 31C. Then, when the latch pin 27 is returned to the vertical cam portion 31A, the engagement between the latch pin 27 and the cylindrical cam portion 31B is released, and the insertion pin 26 can be pulled out from the insertion hole 30 together with the latch pin 27, allowing the male portion 25A to be removed from the female portion 25B with almost one touch. At the same time, the wheel cover 24 is also moved downward together with the grinding wheel 22, and as shown in Figure 4(d), with the grinding wheel 22 housed inside the wheel cover 24, the wheel cover 24 and the grinding wheel 22 can be removed from the spindle flange 17 side with almost one touch.

[0055] As a result, in the grinding device 10 having this attachment / detachment mechanism 25, the grinding wheel 22 having the grinding wheel 22B on its lower side can be safely attached to and detached from the disc-shaped spindle flange 17.

[0056] Furthermore, on the grinding wheel 22 side, the same fluid 100, such as water or air, used when removing the grinding wheel 22 from the spindle flange 17, is flowed from the passage 21 to the area surrounding the attachment / detachment mechanism 25. Since this passage 21 is also used as a fluid passage for water or air to discharge grinding debris, the fluid flowing over the upper surface of the spindle flange 17 can discharge grinding debris adhering to the upper surface of the spindle flange 17 to the outside, and grinding debris that has entered the insertion hole 30 of the female part 25B can be discharged to the outside, preventing clogging inside the insertion hole 30 of the female part 25B. As a result, the insertion pin 26 of the male part 25A can be smoothly inserted into the insertion hole 30 of the female part 25B, ensuring a secure connection between the male part 25A and the female part 25B. Alternatively, instead of a flow path 21 that serves as a passage for discharging grinding debris by flowing a fluid such as water or air around the attachment / detachment mechanism 25, a passage that serves as a passage for discharging grinding debris by flowing water (pure water) around the attachment / detachment mechanism 25 may be provided.

[0057] Furthermore, in the above embodiment, a structure is disclosed in which the male part 25A of the attachment / detachment mechanism 25 is provided on the wheel cover 24 side and the female part 25B is provided on the spindle flange 17 side. However, conversely, a structure in which the female part 25B is provided on the wheel cover 24 side and the male part 25A is provided on the spindle flange 17 side may also be used. Note that in Figures 7 and 8, the components that are denoted by the same reference numerals as in Figures 1 to 6 correspond to the components in Figures 1 to 6.

[0058] Furthermore, as a connecting structure that enables the attachment and detachment of the male part 25A and the female part 25B of the attachment / detachment mechanism 25, it is also possible to employ a connecting structure such as that shown in Figures 7 and 8.

[0059] The attachment / detachment mechanism 25 shown in Figure 7 is a modified example of an attachment / detachment mechanism 25 that can be used in the grinding device 10 instead of the attachment / detachment mechanism 25 shown in Figures 1 to 6. The attachment / detachment mechanism 25 shown in Figure 7 is equipped with a magnetic coupling means 32, which includes an iron piece 32A on the tip of the insertion pin 26 in the male part 25A, which is the second coupling part, and a permanent magnet 32B that magnetically attracts the iron piece 32A of the insertion pin 26 to the wall at the end of the insertion hole 30 in the female part 25B, which is the first coupling part.

[0060] In the structure of the attachment / detachment mechanism 25 shown in Figure 7, when the insertion pin 26 is inserted into the insertion hole 30, the permanent magnet 32B magnetically attracts the iron piece 32A with magnetic flux force, allowing the female part 25B and the male part 25A to be attached and detached with almost a single touch. Furthermore, when separating the female part 25B and the male part 25A, the connection can be easily broken by pulling the iron piece 32A and the permanent magnet 32B apart against the magnetic flux attraction.

[0061] Furthermore, if the magnetic coupling means 32 is constructed such that the iron piece 32A is a permanent magnet and the permanent magnet 32B is an electromagnet, and when creating a coupled state, the opposing poles are set to opposite poles (N pole and S pole), and when releasing the coupled state, the opposing poles are set to the same poles (N pole and N pole or S pole and S pole) to repel each other, it is possible to instantly release the coupling.

[0062] The attachment / detachment mechanism 25 shown in Figure 8 represents yet another modified version of the attachment / detachment mechanism 25 that can be used in the grinding device 10 in place of the attachment / detachment mechanism 25 shown in Figures 1 to 6. Figure 9 is a diagram showing an example of the operation of the attachment / detachment mechanism 25 shown in Figure 8.

[0063] In Figures 8 and 9, the attachment / detachment mechanism 25 has a pin-shaped operating member 33 with a circular cross-section that is axially slidable relative to the insertion pin 26, located at the center of the insertion pin 26 in the male part 25A, which is the second coupling part. The insertion pin 26 here has a pin-shaped outer casing member 34 that forms the outer shape of the insertion pin 26, which is inserted into the insertion hole 30 of the female part 25B, which is the first coupling part. Inside the outer casing member 34, there is a housing space 35 for housing the main shaft 33A of the operating member 33 and a position regulating space 36 for housing the position regulating part 33B of the operating member 33, which are integrally provided along the axial direction. The position regulating space 36 also has an opening 36a that opens to the lower surface of the outer casing member 34.

[0064] Furthermore, the tip of the exterior member 34 is provided with a window 37 to which an expandable and retractable ball 39 made of elastic material is attached approximately concentrically with the axial center of the exterior member 34. The inner diameter of the ball 39 is smaller than the outer diameter of the operating member 33, and its outer diameter is approximately the same as the outer diameter of the exterior member 34.

[0065] An annular groove 38 is formed on the outer circumferential surface of the tip end of the operating member 33. The upper and lower surfaces of the groove 38 are inclined surfaces 38a. The operating member 33 is mounted in the housing space 35, with the position restricting part 33B positioned in the position restricting space 36 as shown in Figure 8, so that it can selectively slide between a disengaged position (where the position restricting part 33B hits the upper end of the position restricting space 36) and a connected position (where the position restricting part 33B hits the lower end of the position restricting space 36) on the axial center of the exterior member 34. As shown in Figure 8, when the operating member 33 is moved to the lower end, i.e., the connected position, the groove 38 is in a position detached from the ball 39. Therefore, the ball 39 is positioned on the outer circumferential surface of the operating member 33 detached from the groove 38, and the operating button 33C is in a state where it protrudes significantly outward from the lower surface of the exterior member 34, i.e., the connected state. Figures 8 and 9(b) show the operating member 33 in the connected position. Furthermore, when the operating member 33 is positioned in the connection position, the inner portion of the ball 39 is pushed against the outer circumference of the operating member 33, causing the outer portion of the ball 39 to protrude outward from the window portion 37 of the exterior member 34. A portion of this protruding outer portion engages with the annular positioning groove 40 provided on the inner surface of the female portion 25B. This engagement prevents the insertion pin 26 of the male portion 25A from coming out of the insertion hole 30 of the female portion 25B.

[0066] On the other hand, when the operating button 33C of the operating member 33, which is positioned at the connection position, is pushed up from the lower outer surface of the outer casing member 34, and the operating member 33 is slid to the disconnection position where the position restricting portion 33B hits the upper end of the position restricting space 36, the groove 38 of the operating member 33 is positioned to correspond to the ball 39. Then, as shown in Figure 9(a), the ball 39 falls into the groove 38 and is housed there. The ball 39 then moves to the inside of the outer casing member 34, and the engagement between the ball 39 and the annular positioning groove 40 is released. This allows the insertion pin 26 of the male part 25A to come out of the insertion hole 30 of the female part 25B.

[0067] Therefore, in the structure of the attachment / detachment mechanism 25 shown in Figures 8 and 9, the operation button 33C is pushed up to the release position, and with the ball 39 released into the groove 38, the insertion pin 26 of the male part 25A is inserted into the insertion hole 30 of the female part 25B. When the tip of the exterior member 34 hits the back wall of the insertion hole 30, the operating member 33 is moved downward to the connection position via the operation button 33C. As a result, the ball 39 comes out of the groove 38 and, as shown in Figures 8 and 9(b), the ball 39 is positioned on the outer surface of the detached operating member 33 and the groove 38, and the overall diameter of the ball 39 is increased. This causes the outer part of the ball 39 to engage with the positioning groove 40 of the insertion hole 30 in the female part 25B, preventing the insertion pin 26 of the male part 25A from coming out of the insertion hole 30 of the female part 25B, and enabling instantaneous connection between the male part 25A and the female part 25B.

[0068] Conversely, to release the connection between the male part 25A and the female part 25B, the operating button 33C is pushed up from the lower outer surface of the outer casing member 34 to the connection position, causing the groove 38 of the operating member 33 to be positioned corresponding to the ball 39. Then, as shown in Figure 9(a), the ball 39 falls into the groove 38 and escapes, reducing the diameter of the ball 39. As this reduction in diameter occurs, the outer portion of the ball 39 escapes from the positioning groove 40 into the outer casing member 34, releasing the engagement between the ball 39 and the positioning groove 40. This allows for the instantaneous release of the connection between the male part 25A and the female part 25B.

[0069] Figure 10 shows a state in which a threaded portion 25a is provided on the female portion 25B of the attachment / detachment mechanism 25, which is provided corresponding to the axis center of the spindle flange 17, and a (measuring) jig 50 is attached to the threaded portion 25a. As shown in Figure 10, the parallelism of the chuck table can be measured by measuring the height of any position on the chuck table 15 with a dial gauge 50a. By providing a threaded portion 25a on the female portion 25B in this way, adjustment operations are not hindered even in a grinding apparatus equipped with the attachment / detachment mechanism 25 of the present invention.

[0070] Furthermore, the present invention can be modified in various ways without departing from the spirit of the invention, and it goes without saying that the present invention extends to such modified forms. [Explanation of symbols]

[0071] 10: Grinding equipment 11: Main unit of the device 12: Casing 13: Moving mechanism section 14: Spindle casing 15: Chuck Table 16: Turntable 17: Spindle flange 17A: Main body 17B: Small diameter protrusion 17a: Bottom of outer periphery 17b: Outer surface 17c: Mounting hole 18: Inclined surface 19: Recess 20: Inner plate 20a: Inclined surface 21: Flow path 21a: Supply port 21b: Air outlet 22: Grinding Wheel 22A: Base metal part 22B: Sharpening stone 22a: Inclined surface 22b: Inner peripheral surface 22c: Outer surface 22d:Top surface 22e: Bottom surface 22f: Mounting screw holes 23: Mounting bolts 24: Wheel cover 24A: Disc section 24B: Cylindrical section 24C: Annular protrusion 24D: Annular recess 24a:Introduction slope 24d:Top 25: Detachable mechanism 25A: Male part (second joint) 25B: Female part (first joint) 26: Insertion pin 27: Latch pin 28: Snacks 29: Spring plunger (stopper) 30: Insertion hole 31A: Vertical cam section 31B: Cylindrical cam section 31C: Locking recess 32:Magnetic coupling means 32A: Iron piece 32B: Permanent magnet 33: Operating component 33A: Main shaft 33B:Position regulation part 33C: Operation Buttons 34: Exterior components 35: Containment space 36: Location-restricted space 36a: Opening 37: Window section 38: Concave groove 38a: Inclined surface 39: Ball 40: Positioning groove 100: Fluid (water or air) W: wafer

Claims

[Claim 1] A grinding apparatus for processing wafers, A grinding wheel with a grinding wheel on its underside, A spindle flange that detachably holds the grinding wheel and rotates together with the grinding wheel, A wheel cover is attached to the spindle flange, covering the outside of the grinding wheel from the lower side when the grinding wheel is replaced, A detachable mechanism comprising a first coupling portion and a second coupling portion detachable from the first coupling portion, wherein one of the first coupling portion or the second coupling portion is provided on the spindle flange, and the other of the first coupling portion or the second coupling portion is provided on the wheel cover, Equipped with, The grinding apparatus is characterized in that the attachment / detachment mechanism is a magnetic coupling means provided at the first coupling portion and the second coupling portion, respectively, and capable of coupling with each other by magnetic force.