Transfer box
By designing the structure of the transfer box and utilizing the combination of the receiving component and the cover component, efficient bonding and protection of the crystal were achieved, solving the problems of low efficiency and insufficient protection of the existing device, and improving the bonding success rate and mass production capability of the crystal.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FUJIAN CASTECH CRYSTALS
- Filing Date
- 2025-06-03
- Publication Date
- 2026-04-17
AI Technical Summary
Existing bonding devices have low bonding efficiency for crystals and cannot provide protection, making crystals easily damaged during transport, which affects mass production efficiency and cost control.
A transfer box is designed, comprising a receiving part, a mounting part, and a cover part. By setting the mounting part and the cover part inside the receiving part, and utilizing the detachable connection between the cover part and the receiving part, external force is transferred to the workpiece to be bonded, and the workpiece to be bonded is protected during the bonding process.
This improves the efficiency of crystal bonding, reduces crystal damage during the bonding process, and ensures crystal integrity and mass production capability.
Smart Images

Figure CN224131710U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of crystal bonding device technology, specifically to a transfer box. Background Technology
[0002] In the production process of acousto-optic crystals, bonding devices are often required to bond the crystals to be bonded. These devices mainly utilize the metal bonds in the metal to bond the crystals. Before bonding, a metal film needs to be deposited on the crystal, and the bonding of the crystals to be bonded is completed by applying pressure and pressing.
[0003] Existing bonding devices primarily achieve bonding through the mutual force applied by two planes. While these devices typically have a simple structure, they require high bonding forces. Furthermore, to ensure the strength and lifespan of each bonded crystal, bonding must be performed on a single pair of crystals at a time. Each bonding session typically takes over an hour. Therefore, for crystals requiring mass production, a large number of bonding devices are needed, and the bonding efficiency is low, hindering mass production and cost control. Additionally, existing bonding devices cannot protect the crystals, potentially leading to secondary damage such as chipping, cracking, and scratching during transport, thus affecting crystal yield. Utility Model Content
[0004] In view of this, the present invention provides a transfer box to solve the problems of low bonding efficiency of existing bonding devices for crystals and inability to provide protection for crystals.
[0005] In a first aspect, this utility model provides a transfer box, comprising:
[0006] A receiving member having a receiving cavity with an opening on one side;
[0007] The mounting component is adapted to be disposed within the receiving cavity, and the mounting component has a plurality of spaced mounting portions, each of which is adapted to place a component to be bonded.
[0008] The cover is detachably connected to the open end of the receiving member. The cover is provided with a plurality of cover portions, and each cover portion corresponds to one of the mounting portions.
[0009] When the cover member is connected to the open end of the receiving member, the cover member is adapted to abut against the component to be bonded placed in the mounting portion, and under the action of external force, the cover member is adapted to move toward the mounting portion to transmit the external force to the component to be bonded.
[0010] Beneficial effects: The receiving cavity of the receiving component accommodates the mounting component, and the mounting portion on the mounting component accommodates the component to be bonded. When the cover pressure component is connected to the receiving component, the covering portion on the cover pressure component can abut against the component to be bonded placed in the mounting portion. Thus, when an external force is applied to the cover pressure component, the covering portion on the cover pressure component can move towards the mounting portion and transmit the external force to the component to be bonded, thereby bonding the component to be bonded through the external force. Since each mounting portion on the mounting component contains the component to be bonded, when the cover pressure component receives an external force, all the covering portions on the cover pressure component can transmit the external force to the corresponding component to be bonded, thereby improving the bonding efficiency of the component to be bonded. At the same time, by accommodating the component to be bonded through the mounting portions on the receiving component and the mounting component, the component to be bonded can be shielded when the cover pressure component is connected to the receiving component, thereby protecting the component to be bonded during the bonding process and preventing damage to the component to be bonded from the outside.
[0011] In one optional embodiment, the cover pressing part is a cover pressing block, the mounting part is a mounting groove, and the cross-sectional dimension of the cover pressing block is smaller than the cross-sectional dimension of the mounting part.
[0012] Beneficial effects: By setting the cover pressure part as a cover pressure block, setting the mounting part as a mounting groove, and setting the cross-sectional size of the cover pressure block to be smaller than the cross-sectional size of the mounting part, the part to be bonded can be placed in the mounting part, and the cover pressure part can extend into the mounting part and abut against the part to be bonded. Then, when an external force is applied to the cover pressure part, the cover pressure part can move toward the mounting part and transfer the external force to the part to be bonded.
[0013] In one alternative embodiment, when the mounting member is installed in the receiving cavity, the peripheral sidewall of the mounting member abuts against the inner sidewall of the receiving cavity.
[0014] Beneficial effects: By abutting the peripheral sidewall of the mounting component against the inner sidewall of the cavity when the mounting component is installed in the cavity, an interference fit is achieved between the peripheral sidewall of the mounting component and the inner sidewall of the cavity. This allows the inner sidewall of the cavity to fix the peripheral sidewall of the mounting component in place, preventing displacement of the mounting component during installation and thus affecting the bonding success of the components to be bonded.
[0015] In one alternative embodiment, when the component to be bonded is placed in the mounting portion, a portion of the peripheral sidewall of the component to be bonded abuts against the inner wall of the groove of the mounting portion to fix the component to be bonded in the mounting portion.
[0016] Beneficial effect: By placing a portion of the peripheral sidewall of the part to be bonded into the mounting section and making it abut against the inner wall of the groove of the mounting section, the part to be bonded is fixed in the mounting section by the inner wall of the groove of the mounting section, so as to avoid the part to be bonded from moving during the bonding process and affecting the bonding success rate.
[0017] In one optional embodiment, the cover is provided with a plurality of insertion portions, and the opening end of the receiver is provided with a plurality of positioning portions, each positioning portion corresponding to one of the insertion portions. Under the action of external force, any one of the insertion portions is adapted to be inserted into one of the positioning portions, so as to detachably connect the cover and the opening end of the receiver.
[0018] Beneficial effects: By setting two insertion parts on the cover and two positioning parts on the opening end of the receiver, the insertion parts are insertion blocks in this embodiment, and the positioning parts are positioning grooves in this embodiment. The two insertion parts are respectively set at both ends of the cover, and the two positioning parts are respectively opened on both sides of the opening end of the receiver, and each positioning part corresponds to one insertion part. Thus, when the cover and the opening end of the receiver are connected under the action of external force, each insertion part can be inserted into a positioning part to realize the positioning between the cover and the opening end of the receiver, and to realize the detachable connection between the cover and the opening end of the receiver.
[0019] In an alternative embodiment, a buffer is further included, the buffer being adapted to be disposed within the receiving cavity and between the mounting member and the receiving member, the buffer being configured to have an elastic force that deforms under external force.
[0020] Beneficial effects: By using a buffer element, which is a rubber pad in this embodiment, disposed within the receiving cavity, the buffer element is specifically positioned between the mounting part and the receiving part. When the part to be bonded is placed in the mounting part, the end of the part to be bonded extending into the mounting part will abut against the buffer element. In addition, the buffer element is configured to have elasticity that deforms under external force. Thus, when the part to be bonded receives external force, the part to be bonded will squeeze the buffer element, causing the buffer element to deform and have elasticity. This elasticity then buffers the part to be bonded, preventing the part to be bonded from directly contacting the receiving part and causing damage.
[0021] In one alternative embodiment, when the buffer is installed in the receiving cavity, the peripheral sidewall of the buffer abuts against the inner sidewall of the receiving cavity.
[0022] Beneficial effects: By abutting the peripheral wall of the buffer against the inner wall of the cavity when the buffer is installed in the cavity, an interference fit is achieved between the peripheral wall of the buffer and the inner wall of the cavity. This fixes the peripheral wall of the buffer in place, preventing displacement of the buffer during installation and thus affecting the bonding success of the parts to be bonded.
[0023] In an alternative embodiment, a silk cloth is further included, which is disposed between the mounting member and the buffer member, and when the member to be bonded is disposed within the mounting portion, the end of the member to be bonded is adapted to abut against the silk cloth.
[0024] Beneficial effect: By setting the silk cloth between the mounting part and the buffer part, when the part to be bonded is placed in the mounting part, the end of the part to be bonded that extends into the mounting part will abut against the silk cloth. Thus, when the part to be bonded receives external force for bonding, the silk cloth will always be in contact with the end of the part to be bonded that extends into the mounting part, so as to avoid the part to be bonded directly contacting and rubbing with the receiving part and generating stains.
[0025] In one alternative embodiment, when the silk fabric is installed in the receiving cavity, the peripheral sidewall of the silk fabric abuts against the inner sidewall of the receiving cavity.
[0026] Beneficial effects: When the fabric is installed in the receiving cavity, the peripheral wall of the fabric abuts against the inner wall of the receiving cavity, thereby achieving an interference fit between the peripheral wall of the fabric and the inner wall of the receiving cavity. This allows the inner wall of the receiving cavity to fix the peripheral wall of the fabric, preventing the fabric from shifting when installed in the receiving cavity and affecting the bonding success of the parts to be bonded.
[0027] In one alternative embodiment, the components to be bonded are two crystals that are bonded together.
[0028] Beneficial effects: By setting the parts to be bonded as two crystals that are in contact with each other, when the parts to be bonded are placed in the mounting part, the two crystals can continue to be in contact with each other through the mounting part, and then when the cover pressure part moves toward the mounting part, the cover pressure part can bond the two crystals. Attached Figure Description
[0029] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0030] Figure 1This is an exploded view of the structure of a transfer box according to an embodiment of the present utility model;
[0031] Figure 2 This is a schematic diagram of the installation structure of the bonding component of a transfer box according to an embodiment of the present utility model.
[0032] Explanation of reference numerals in the attached figures:
[0033] 1-Receiving component; 11-Receiving cavity; 12-Positioning part; 2-Mounting component; 21-Mounting part; 3-Covering component; 31-Covering part; 32-Insert part; 4-Buffer component; 5-Component to be bonded. Detailed Implementation
[0034] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0035] The following is combined Figure 1 and Figure 2 The following describes embodiments of the present invention.
[0036] According to an embodiment of the present invention, a transfer box is provided, such as... Figure 1 and Figure 2 As shown, the device includes a receiving member 1, a mounting member 2, and a cover member 3. The receiving member 1 has a receiving cavity 11 with an opening on one side. The mounting member 2 is adapted to be disposed in the receiving cavity 11 and has a plurality of spaced mounting portions 21. Each mounting portion 21 is adapted to place a component 5 to be bonded. The cover member 3 is detachably connected to the open end of the receiving member 1. The cover member 3 has a plurality of cover portions 31, each cover portion 31 corresponding to a mounting portion 21. When the cover member 3 is connected to the open end of the receiving member 1, the cover portion 31 is adapted to abut against the component 5 to be bonded placed in the mounting portion 21. Under the action of external force, the cover portion 31 is adapted to move toward the mounting portion 21 to transmit the external force to the component 5 to be bonded.
[0037] The aforementioned transfer box comprises a mounting member 2 disposed within a receiving member 1 and a cover member 3 connected to the receiving member 1. In this embodiment, the receiving member 1, the mounting member 2, and the cover member 3 are respectively a receiving box, a mounting block, and a cover plate. The receiving member 1 has a receiving cavity 11 with an opening on one side. The mounting member 2 can be disposed within the receiving cavity 11 through the opening. The mounting member 2 has several spaced mounting portions 21. In this embodiment, the mounting portions 21 are mounting grooves. Each mounting portion 21 can hold the component to be bonded 5. Thus, the component to be bonded 5 can be installed within the receiving cavity 11.
[0038] Meanwhile, the cover 3 can be detachably connected to the open end of the receiving part 1. When it is necessary to place the part to be bonded 5 in the mounting part 21, the cover 3 can be separated from the receiving part 1, and the part to be bonded 5 can be placed in the mounting part 21. When the part to be bonded 5 is placed in the mounting part 21, the cover 3 can be connected to the open end of the receiving part 1.
[0039] In addition, the cover member 3 is provided with a plurality of cover parts 31. In this embodiment, the cover parts 31 are cover blocks. All the cover parts 31 are provided on the same side of the cover member 3, and each cover part 31 is provided with a mounting part 21. Thus, when the cover member 3 is connected to the open end of the receiving member 1, each cover part 31 can abut against the part 5 to be bonded placed in the mounting part 21. Under the action of external force, the cover part 31 can move toward the mounting part 21 and transmit the external force to the part 5 to be bonded, thereby bonding the part 5 to be bonded by the external force.
[0040] In summary, the mounting member 2 is accommodated by the receiving cavity 11 of the receiving member 1, and the component to be bonded 5 is accommodated by the mounting portion 21 on the mounting member 2. Thus, when the cover member 3 is connected to the receiving member 1, the cover portion 31 on the cover member 3 can abut against the component to be bonded 5 placed in the mounting portion 21. Therefore, when an external force is applied to the cover member 3, the cover portion 31 on the cover member 3 can move towards the mounting portion 21 and transmit the external force to the component to be bonded 5, thereby bonding the component to be bonded 5 through the external force. Each mounting part 21 contains a component 5 to be bonded, so that when the cover pressure member 3 is subjected to external force, all the cover pressure parts 31 on the cover pressure member 3 can transmit the external force to the corresponding component 5 to be bonded, thereby improving the bonding efficiency of the component 5 to be bonded. At the same time, by accommodating the component 5 to be bonded through the mounting parts 21 on the receiving member 1 and the mounting member 2, the component 5 to be bonded can be shielded when the cover pressure member 3 is connected to the receiving member 1, so as to protect the component 5 to be bonded during the bonding process and avoid damage to the component 5 from the outside.
[0041] In one embodiment, such as Figure 1 and Figure 2As shown, the cover pressing part 31 is a cover pressing block, and the mounting part 21 is a mounting groove. The cross-sectional dimension of the cover pressing block is smaller than the cross-sectional dimension of the mounting part 21.
[0042] The aforementioned transfer box, by setting the cover pressing part 31 as a cover pressing block, setting the mounting part 21 as a mounting groove, and setting the cross-sectional size of the cover pressing block to be smaller than the cross-sectional size of the mounting part 21, allows the part to be bonded 5 to be placed in the mounting part 21, and allows the cover pressing part 31 to extend into the mounting part 21 and abut against the part to be bonded 5. Furthermore, when an external force is applied to the cover pressing part 3, the cover pressing part 31 can move toward the mounting part 21 and transmit the external force to the part to be bonded 5.
[0043] In one embodiment, such as Figure 2 As shown, when the mounting component 2 is installed in the receiving cavity 11, the peripheral side wall of the mounting component 2 abuts against the inner side wall of the receiving cavity 11.
[0044] The aforementioned transfer box, when the mounting part 2 is installed in the receiving cavity 11, makes the peripheral side wall of the mounting part 2 abut against the inner side wall of the receiving cavity 11, thereby achieving an interference fit between the peripheral side wall of the mounting part 2 and the inner side wall of the receiving cavity 11. This allows the inner side wall of the receiving cavity 11 to fix the peripheral side wall of the mounting part 2, preventing the mounting part 2 from shifting when installed in the receiving cavity 11, which would affect the bonding success of the bonding component 5 to be bonded.
[0045] In one embodiment, such as Figure 2 As shown, when the component to be bonded 5 is placed in the mounting part 21, a portion of the peripheral sidewall of the component to be bonded 5 abuts against the inner wall of the groove of the mounting part 21 to fix the component to be bonded 5 in the mounting part 21.
[0046] The aforementioned transfer box, when the part to be bonded 5 is placed in the mounting part 21, causes a portion of the peripheral sidewall of the part to be bonded 5 to abut against the inner wall of the groove of the mounting part 21, thereby fixing the part to be bonded 5 in the mounting part 21 by the inner wall of the groove of the mounting part 21, so as to prevent the part to be bonded 5 from moving during the bonding process and affecting the bonding success rate.
[0047] In one embodiment, such as Figure 1 and Figure 2 As shown, the cover 3 is provided with a plurality of insertion parts 32, and the opening end of the receiving part 1 is provided with a plurality of positioning parts 12. Each positioning part 12 is provided with a corresponding insertion part 32. Under the action of external force, each insertion part 32 is suitable to be inserted into a positioning part 12 so as to detachably connect the opening end of the cover 3 and the receiving part 1.
[0048] The aforementioned transfer box, by providing two insertion parts 32 on the cover pressing member 3 and two positioning parts 12 opened at the opening end of the receiving member 1, wherein the insertion part 32 is an insertion block in this embodiment and the positioning part 12 is a positioning groove in this embodiment, the two insertion parts 32 are respectively provided at both ends of the cover pressing member 3, and the two positioning parts 12 are respectively opened on both sides of the opening end of the receiving member 1, and each positioning part 12 corresponds to one insertion part 32, so that when the cover pressing member 3 is connected to the opening end of the receiving member 1 under the action of external force, each insertion part 32 can be inserted into a positioning part 12 to achieve positioning between the cover pressing member 3 and the opening end of the receiving member 1, and to achieve detachable connection between the cover pressing member 3 and the opening end of the receiving member 1.
[0049] In one embodiment, such as Figure 1 As shown, it also includes a buffer 4, which is adapted to be disposed in the receiving cavity and disposed between the mounting member 2 and the receiving member 1. The buffer 4 is configured to have an elastic force that deforms under the action of external force.
[0050] The aforementioned transfer box, through a buffer 4 disposed within the receiving cavity, wherein the buffer 4 is a rubber pad in this embodiment, is specifically disposed between the mounting member 2 and the receiving member 1, such that when the component to be bonded 5 is disposed within the mounting portion 21, one end of the component to be bonded 5 extending into the mounting portion 21 will abut against the buffer 4. In addition, the buffer 4 is configured to have elasticity that deforms under external force, so that when the component to be bonded 5 receives external force, the component to be bonded 5 will squeeze the buffer 4, causing the buffer 4 to deform and have elasticity, thereby buffering the component to be bonded 5 through this elasticity, preventing the component to be bonded 5 from directly contacting the receiving member 1 and being damaged.
[0051] In one embodiment, such as Figure 1 and Figure 2 As shown, when the buffer 4 is installed in the receiving cavity 11, the peripheral side wall of the buffer 4 abuts against the inner side wall of the receiving cavity 11.
[0052] The aforementioned transfer box, when the buffer 4 is installed in the receiving cavity 11, makes the peripheral side wall of the buffer 4 abut against the inner side wall of the receiving cavity 11, thereby achieving an interference fit between the peripheral side wall of the buffer 4 and the inner side wall of the receiving cavity 11. This allows the inner side wall of the receiving cavity 11 to fix the peripheral side wall of the buffer 4, preventing the buffer 4 from shifting when installed in the receiving cavity 11, which would affect the bonding success of the bonding component 5.
[0053] In one embodiment, such as Figure 1 and Figure 2 As shown, it also includes a silk cloth, which is disposed between the mounting part 2 and the buffer part 4. When the part to be bonded 5 is disposed in the mounting part 21, the end of the part to be bonded 5 is adapted to abut against the silk cloth.
[0054] The aforementioned transfer box, through the silk cloth placed between the mounting member 2 and the buffer member 4, ensures that when the component to be bonded 5 is placed in the mounting part 21, the end of the component to be bonded 5 extending into the mounting part 21 will abut against the silk cloth. Thus, when the component to be bonded 5 receives external force for bonding, the silk cloth will always be in contact with the end of the component to be bonded 5 extending into the mounting part 21, thereby avoiding direct contact and friction between the component to be bonded 5 and the receiving member 1, which would cause stains.
[0055] In one embodiment, such as Figure 2 As shown, when the silk cloth is installed in the receiving cavity 11, the peripheral wall of the silk cloth abuts against the inner wall of the receiving cavity 11.
[0056] The aforementioned transfer box, when the fabric is installed in the receiving cavity 11, makes the peripheral wall of the fabric abut against the inner wall of the receiving cavity 11, thereby achieving an interference fit between the peripheral wall of the fabric and the inner wall of the receiving cavity 11. This allows the inner wall of the receiving cavity 11 to fix the peripheral wall of the fabric, preventing the fabric from shifting when installed in the receiving cavity 11 and affecting the bonding success rate of the bonding component 5.
[0057] In one embodiment, such as Figure 2 As shown, the bonding component 5 consists of two crystals that are bonded together.
[0058] The aforementioned transfer box, by setting the bonding component 5 to be bonded as two crystals that are bonded to each other, allows the two crystals to continue to bond to each other through the mounting part 21 when the bonding component 5 is placed in the mounting part 21, and then allows the cover pressure part 31 to bond the two crystals when it moves toward the mounting part 21.
[0059] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by the appended claims.
Claims
1. A transfer case characterized by, include: The receiving member (1) has a receiving cavity (11) with an opening on one side; Mounting component (2), the mounting component (2) is adapted to be disposed in the receiving cavity (11), the mounting component (2) is provided with a plurality of spaced mounting portions (21), and any mounting portion (21) is adapted to place the component to be bonded (5); Covering member (3), the covering member (3) and the opening end of the receiving member (1) are detachably connected, the covering member (3) is provided with a plurality of covering parts (31), and any one of the covering parts (31) is provided with a mounting part (21); When the cover member (3) is connected to the open end of the receiving member (1), the cover member (31) is adapted to abut against the bonding member (5) placed in the mounting part (21), and under the action of external force, the cover member (31) is adapted to move toward the mounting part (21) to transmit the external force to the bonding member (5).
2. The transfer case of claim 1, wherein, The cover pressing part (31) is a cover pressing block, the mounting part (21) is a mounting groove, and the cross-sectional dimension of the cover pressing block is smaller than the cross-sectional dimension of the mounting part (21).
3. The transfer case of claim 2, wherein, When the mounting member (2) is installed in the receiving cavity (11), the peripheral side wall of the mounting member (2) abuts against the inner side wall of the receiving cavity (11).
4. The transfer case of claim 3, wherein, When the component to be bonded (5) is placed in the mounting part (21), a portion of the peripheral sidewall of the component to be bonded (5) abuts against the inner wall of the groove of the mounting part (21) to fix the component to be bonded (5) in the mounting part (21).
5. The transfer case of claim 4, wherein, The cover (3) is provided with a plurality of insertion parts (32), and the opening end of the receiving part (1) is provided with a plurality of positioning parts (12). Each positioning part (12) is provided corresponding to an insertion part (32). Under the action of external force, each insertion part (32) is suitable to be inserted into a positioning part (12) so as to detachably connect the opening end of the cover (3) and the receiving part (1).
6. The transfer case of any one of claims 1-5, wherein, It also includes a buffer (4) adapted to be disposed within the receiving cavity and disposed between the mounting member (2) and the receiving member (1), the buffer (4) being configured to have an elastic force that deforms under external force.
7. The transfer case of claim 6, wherein, When the buffer (4) is installed in the receiving cavity (11), the peripheral side wall of the buffer (4) abuts against the inner side wall of the receiving cavity (11).
8. The transfer case of claim 7, wherein, It also includes a silk cloth, which is disposed between the mounting member (2) and the buffer member (4), and when the bonding member (5) is disposed in the mounting part (21), the end of the bonding member (5) is adapted to abut against the silk cloth.
9. The transfer case of claim 8, wherein, When the silk fabric is installed in the receiving cavity (11), the peripheral sidewall of the silk fabric abuts against the inner sidewall of the receiving cavity (11).
10. The transfer case of claim 1, wherein, The bonding components (5) are two crystals that are bonded together.