Quick-release electrodeposition apparatus
Patent Information
- Application Number
- CN202522105265.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-29
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-09-29
AI Technical Summary
[0006]本实用新型提供一种快速拆装的电沉积装置,用以解决现有技术中通过手套箱间接地操作电沉积槽的螺纹连接造成不便的缺陷,实现适用于手套箱这一特定沉积工艺环境的、仅用单次操作即可完成装配或拆卸的电沉积装置
[0008]根据本实用新型提供的快速拆装的电沉积装置,基板开设有供相对应的偏心轮沿其滚动的轨道,轨道从基板的边缘向内延伸预定距离。
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Figure CN224728650U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electrodeposition equipment technology, and in particular to an electrodeposition device that can be quickly assembled and disassembled. Background Technology
[0002] 63 Ni radioactive sources are high-purity... 63 Ni is uniformly fixed on a metal substrate to form a dense and uniform pure β-radiation source. 63 Ni radioactive sources are among the most widely used low-energy beta radioactive sources in the world, with significant and broad application prospects. In particular, they are urgently needed in various application areas such as the development and application of new energy nuclear batteries, electron capture detectors in gas chromatography and liquid chromatography, explosive mass spectrometry detectors for customs, and highly sensitive leak detectors. 63 Ni radioactive source. Because beta particles have a short range, self-absorption of the source must be considered when preparing a beta radioactive source. 63 The main method for preparing Ni radioactive sources is electrodeposition.
[0003] Chinese patent application No. 201710284564.6 discloses a deposition tank for preparing a high-resolution alpha radiation source by magnetohydrodynamic electrodeposition. The deposition tank has a structure in which a permanent magnet is set on the outside of the deposition tank body, an anode wire extends from the top of the deposition tank body into the deposition liquid, and the bottom of the deposition tank body is sealed by a threaded bottom cover with a central opening. A cathode guide gasket and a cathode deposition source plate are arranged sequentially from bottom to top inside the threaded bottom cover at the bottom of the deposition tank body. A cathode guide wire is connected to the bottom of the cathode guide gasket, and the cathode guide wire is led out from the opening of the threaded bottom cover and connected to the negative terminal of the power supply.
[0004] Chinese patent application No. 201610196264.8 discloses an electrodeposition tank for preparing a high-resolution alpha source. The electrodeposition tank includes a power supply, an electroplating tank, a bottom plate, a magnet, and a platinum electrode. The electroplating tank has an inner and outer layer structure, with openings at the upper and lower ends of the inner layer. The inner layer of the electroplating tank is used to hold the electrodeposition plating solution, and the outer layer has a cooling circulating water inlet and a cooling circulating water outlet at opposite corners. An upper sealing ring and an upper sealing cap are provided at the opening at the upper end of the inner layer, and a lower sealing ring and a lower sealing cap are provided at the opening at the bottom of the inner layer. The bottom plate serves as the cathode and is located directly below the hole in the middle of the lower sealing ring. The platinum electrode extends from the radial center of the upper end of the inner layer of the electroplating tank to a position 0.5 cm to 1 cm from the bottom of the electroplating tank.
[0005] In these existing technologies, electrodeposition tanks are all fixed to the corresponding bases using threaded connections. Considering that the electrodeposition process is usually carried out in a glove box, the space available for hand movement in the glove box is limited and the operability is low. Moreover, the threaded connection means that the relevant connecting parts are repeatedly rotated, making the operation steps cumbersome and time-consuming. The potential risk of operators being exposed to radiation sources increases over time. During repeated rotation, the threaded connection may develop gaps due to wear on the sealing surface, increasing the risk of radioactive material leakage or contamination inside the tank. Operators indirectly operate the threaded connection through the glove box. Due to the presence of gloves, the tactile feedback of the hand is weak, and the threaded connection is prone to problems such as incomplete rotation or over-tightening. Utility Model Content
[0006] This invention provides a quick-assembly and disassembly electrodeposition device to solve the inconvenience caused by the threaded connection of the electrodeposition tank that is indirectly operated through the glove box in the prior art. It realizes an electrodeposition device that can be assembled or disassembled in a single operation and is suitable for the specific deposition process environment of the glove box.
[0007] This utility model provides a quick-assembly and disassembly electrodeposition device, comprising: substrate; Electrodeposition tank base, fixed to the substrate; An electrodeposition tank is placed on an electrodeposition tank base; At least one clamping assembly, each clamping assembly including an eccentric wheel and a pressing member, the eccentric wheel being disposed on a substrate and being rotatable in a predetermined direction; a first end of the pressing member being eccentrically hinged to the eccentric wheel, and a second end of the pressing member being used to contact and press down the electrodeposition tank; The eccentric wheel is configured such that, when it rolls to the limit position closest to the electrodeposition tank, the hinge connection point between the pressing member and the eccentric wheel is at the lowest height level in the height direction.
[0008] According to the quick-assembly electrodeposition apparatus provided by this utility model, the substrate is provided with a track for a corresponding eccentric wheel to roll along, and the track extends inward from the edge of the substrate by a predetermined distance.
[0009] According to the quick-assembly and disassembly electrodeposition device provided by this utility model, the substrate is provided with a positioning post, which is located at the inward end of the track. The pressing component has a through groove that extends colinearly with the track, and the positioning column passes through the through groove.
[0010] According to the quick-assembly and disassembly electrodeposition device provided by this utility model, the positioning column is fitted with an elastic element, the first end of the elastic element is in contact with the substrate, and the second end is in contact with the pressing member.
[0011] According to the quick-assembly and disassembly electrodeposition device provided by this utility model, each eccentric wheel includes a handle fixedly connected thereto, so that the swinging motion of the handle is converted into the rolling motion of the eccentric wheel.
[0012] According to the quick-assembly and disassembly electrodeposition device provided by this utility model, the electrodeposition tank base is provided with a first groove on its top, the shape of the first groove being complementary to the bottom shape of the electrodeposition tank for mutual cooperation.
[0013] According to the quick-assembly and disassembly electrodeposition device provided by this utility model, the electrodeposition tank base is also provided with a second groove for accommodating the deposition source sheet to be processed. The second groove is located below the center of the first groove, and in the horizontal direction, the size of the second groove is smaller than the size of the first groove.
[0014] According to the quick-assembly and disassembly electrodeposition device provided by this utility model, the electrodeposition tank base also includes a sealing element, and the deposition source sheet to be processed and the sealing element are placed in the second groove in sequence.
[0015] According to the quick-assembly and disassembly electrodeposition device provided by this utility model, the substrate is provided with a substrate groove, and the electrodeposition tank base is provided with a guide rail corresponding to the substrate groove on its top. The guide rail is provided with a conductive post, and the conductive post is electrically connected to the deposition source sheet to be processed.
[0016] The quick-assembly and disassembly electrodeposition device provided by this utility model also includes an electrode component, which is formed in the shape of a disc and whose outer diameter is not greater than the inner diameter of the electrodeposition tank. The electrode component is placed in the electrodeposition tank.
[0017] The quick-assembly and disassembly electrodeposition device provided by this invention uses at least one clamping component to press the electrodeposition tank onto the electrodeposition tank base. The operation of the clamping component is quite simple and quick; the operator only needs to operate (e.g., push) the clamping component to its limit position to ensure that the clamping component presses the electrodeposition tank down until it is firmly pressed onto the electrodeposition tank base. Conversely, the operator only needs to remove the clamping component from the electrodeposition tank to release the fixation between the electrodeposition tank and the base, allowing for the removal of the electrodeposition tank. This achieves rapid assembly and disassembly of the electrodeposition tank, significantly reducing the time required for assembly and disassembly. Furthermore, because the operation of the clamping component is quite simple, unlike the screw connections in existing technologies which are not easily sensed through the gloves in the glove box, the degree of operation of the clamping component can be sensed by the tactile feedback of whether the clamping component has reached its limit position, or it can be directly observed through the visible / transparent window of the glove box. Therefore, it is particularly suitable for radioactive operating environments where protective gloves are worn. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in this utility model or the prior art, the drawings used in the description of the 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.
[0019] Figure 1 This is a perspective view of the quick-assembly and disassembly electrodeposition device provided by this utility model.
[0020] Figure 2 This is a perspective view of the substrate provided by this utility model.
[0021] Figure 3 This is a perspective view of the electrodeposition tank base provided by this utility model.
[0022] Figure 4 This is a perspective view of the electrodeposition tank provided by this utility model.
[0023] Figure label: 1. Base plate; 11. Base plate groove; 12. Positioning post; 13. Elastic element; 14. Through groove; 15. Pressing member; 16. Eccentric wheel; 17. Handle; 18. Track; 19. Rotating shaft; 2. Electrodeposition tank base; 21. First groove; 22. Second groove; 23. Second groove notch; 24. Guide rail; 25. Conductive post; 3. Electrodeposition tank; 31. Bottom of electrodeposition tank; 32. Annular protrusion; 33. Top of electrodeposition tank. Detailed Implementation
[0024] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.
[0025] In the description of the embodiments of this utility model, it should be noted that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this utility model. In addition, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0026] In the description of the embodiments of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection or a detachable connection, wherein a fixed connection can include an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this utility model based on the specific circumstances.
[0027] In this embodiment of the utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0028] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0029] The following is combined with Figures 1 to 4 This invention describes a quick-assembly and disassembly electrodeposition apparatus.
[0030] Figure 1 This is a perspective view of the quick-assembly and disassembly electrodeposition device provided by this utility model, as shown below. Figure 1 As shown, the quick-assembly and disassembly electrodeposition apparatus includes a substrate 1, an electrodeposition tank base 2, and an electrodeposition tank 3.
[0031] Figure 2 This is a perspective view of the substrate provided by this utility model, such as... Figure 2 As shown, substrate 1 is placed on a general platform, for example, the bottom surface inside a glove box. (Combined) Figure 1 The electrodeposition tank base 2 is fixedly connected to the substrate 1. The electrodeposition tank 3 is placed on the electrodeposition tank base 2.
[0032] To hold the electrodeposition tank 3 on the electrodeposition tank base 2, the quick-assembly and disassembly electrodeposition apparatus is also provided with at least one clamping assembly, each clamping assembly including an eccentric wheel 16 and a pressing member 15. For example, the number of clamping assemblies can be configured to be two, four, or more. (Refer to...) Figure 1 In this embodiment, there are two clamping components, which are symmetrically arranged on the substrate 1 with respect to its length direction. In other embodiments, additional clamping components may be arranged symmetrically with respect to the width direction of the substrate 1, or each may be arranged on the substrate 1 aligned with its geometric center.
[0033] Each clamping assembly has an eccentric wheel 16 mounted on the substrate 1, which can roll along a predetermined length direction. It should be noted that the rolling direction of the eccentric wheel 16 is related to the orientation of the clamping assembly. That is, when the clamping assembly is symmetrical with respect to the length / width direction of the substrate 1, the eccentric wheel 16 can roll along the length / width direction of the substrate 1; when the clamping assembly is aligned with the geometric center of the substrate 1, the eccentric wheel 16 can roll in the direction toward the geometric center of the substrate 1.
[0034] Reference Figure 2 The pressing member 15 is constructed as an L-shaped member. The first end of the pressing member 15, its lower end, is eccentrically hinged to the eccentric wheel 16 via a rotating shaft 19. The second end of the pressing member 15, its upper end, is closer to the geometric center of the substrate 1 than the first / lower end, to contact and press down the electrodeposition tank 3. The hinge between the pressing member 15 and the eccentric wheel 16 ensures that the eccentric wheel 16 can roll freely on the substrate 1 without being affected by the pressing member 15; furthermore, it ensures that the pressing member 15 maintains a basically upright posture regardless of where the eccentric wheel 16 rolls.
[0035] To ensure the clamping assembly can press down on the electrodeposition tank 3, the eccentric wheel 16 and the pressing member 15 need to satisfy the following relationship: when the eccentric wheel 16 rolls to its closest limit position to the electrodeposition tank 3, the hinge connection point between the pressing member 15 and the eccentric wheel 16 is at its lowest height level in the height direction. Because of the hinge between the eccentric wheel 16 and the pressing member 15, the hinge connection point being at its lowest height level means that the pressing member 15 is also at its lowest height level. Thus, the second end / relative upper end of the pressing member 15 contacts and presses down on the electrodeposition tank 3.
[0036] Therefore, by setting at least one clamping component, the electrodeposition tank 3 is pressed firmly onto the electrodeposition tank base 2. The operation of the clamping component is quite simple and quick. The operator only needs to operate the clamping component to its limit position to ensure that the clamping component presses down the electrodeposition tank 3 until the electrodeposition tank 3 is firmly pressed onto the electrodeposition tank base 2. Conversely, the operator only needs to move the clamping component away from the electrodeposition tank 3 to release the fixation between the electrodeposition tank 3 and the electrodeposition tank base 2, so as to remove the electrodeposition tank 3. This realizes the rapid assembly and disassembly of the electrodeposition tank 3, which greatly shortens the time required for assembly and disassembly.
[0037] Furthermore, the substrate 1 has a track 18 along which the corresponding eccentric wheel 16 rolls, and the track 18 extends inward from the edge of the substrate 1 by a predetermined distance. Similar to the rolling direction of the eccentric wheel 16, the extending direction of the track 18 is related to the orientation of the pressing assembly. In addition, the predetermined distance extended by the track 18 is defined as such that when the eccentric wheel 16 rolls to the limit position closest to the electrodeposition tank 3, the second end / relative upper end of the pressing member 15 can just contact the corresponding part of the electrodeposition tank 3. Thus, the track 18 provides a fixed path for the rolling movement of the eccentric wheel 16.
[0038] Figure 4 This is a perspective view of the electrodeposition tank provided by this utility model, as shown below. Figure 4 As shown, an annular protrusion 32 is provided on the outer peripheral surface of the electrodeposition tank 3. The second end / relative upper end of the pressing member 15 contacts and presses down on the annular protrusion 32 of the electrodeposition tank 3, further pressing it onto the electrodeposition tank base 2. Moreover, the second end / relative upper end of the pressing member 15 and the annular protrusion 32 can be separated from each other to facilitate the insertion or removal of the electrodeposition tank 3.
[0039] Furthermore, the substrate 1 is also provided with a positioning post 12, which is located at the inward end of the track 18. More specifically, the positioning post 12 is located between the inward end of the track 18 and the electrodeposition tank 3. Correspondingly, the pressing member 15 has a through groove 14 extending collinearly with the track 18, through which the positioning post 12 passes. The advantage of this configuration is that the through groove 14 extending collinearly with the track 18 is limited by the positioning post 12, so that the pressing member 15 cannot be laterally offset relative to the rolling direction; on the other hand, the cooperation between the through groove 14 and the positioning post 12 further guides the pressing member 15 to linear reciprocating motion only in the rolling direction.
[0040] Furthermore, the positioning column 12 is fitted with an elastic element 13. The first end of the elastic element 13 contacts the substrate 1, and the second end contacts the pressing member 15. When the pressing member 15 is operated by the operator to contact and press down on the annular protrusion 32, the operator naturally needs to overcome the repulsive force of the elastic element 13; conversely, when the pressing member 15 is released by the operator, the repulsive force of the elastic element 13 takes the lead, so as to bounce the pressing member 15 and prevent it from pressing down on the annular protrusion 32, thereby facilitating the disassembly of the electrodeposition tank 3.
[0041] Furthermore, each eccentric wheel 16 includes a handle 17 fixedly connected thereto, such that the oscillating motion of the handle 17 is converted into the rolling motion of the eccentric wheel 16. As an alternative to the operator directly operating the eccentric wheel 16 or the pressing member 15, the operator can control the rolling motion of the eccentric wheel 16 by operating the handle 17, causing it to roll to a desired position, for example, the closest possible position to the electrodeposition tank 3.
[0042] The advantage of this configuration is that the operator can control the rolling motion of the eccentric wheel 16 by operating the handle 17, and the degree of operation of the clamping component can be perceived by the tactile feedback of whether the clamping component has reached its limit position. Moreover, the operation of this swing handle 17 is quite simple and can significantly shorten the operation time.
[0043] Figure 3 This is a perspective view of the electrodeposition tank base provided by this utility model, as shown below. Figure 3 As shown and combined Figure 4 The electrodeposition tank base 2 has a first groove 21 on its top, the shape of which is complementary to the shape of the bottom 31 of the electrodeposition tank, so as to fit together. Thus, the electrodeposition tank 3 sits on the first groove 21 of the electrodeposition tank base 2, and the electrodeposition tank 3 is substantially fixed by means of the fit between their shapes.
[0044] Furthermore, the electrodeposition tank base 2 is also provided with a second groove 22, which is used to accommodate the deposit source sheet to be processed. The second groove 22 is located below the center of the first groove 21, and preferably, the second groove 22 and the first groove 21 are arranged coaxially. In the horizontal direction, the size of the second groove 22 is smaller than the size of the first groove 21, so as to form a stepped surface at the interface between the first groove 21 and the second groove 22. The deposit source sheet to be processed can be accommodated by the second groove 22, and the bottom 31 of the electrodeposition tank 3, in particular, rests partially on the stepped surface. Moreover, the design of opening the second groove 22 on the electrodeposition tank base 2 results in the formation of second groove notches 23 on both sides of the second groove 22. Combined with the above-mentioned clamping components and the quick-disassembly design of the electrodeposition tank 3, replacing the deposit source sheet in the second groove 22 becomes quite easy and convenient.
[0045] The advantage of this configuration is that the electrodeposition tank 3 and the electrodeposition solution are arranged above the deposition source sheet to be treated, and since the size of the second groove 22 is smaller than the size of the first groove 21, the electrodeposition solution can basically cover the entire upward-facing surface of the deposition source sheet so that when the anode and cathode of the quick-disassembly electrodeposition device are energized, the target metal ions in the electrodeposition solution are deposited onto the upward-facing surface of the deposition source sheet.
[0046] Furthermore, the electrodeposition tank base 2 also includes a seal (not shown in the figure), and the deposit source sheet to be treated and the seal are sequentially placed in the second groove 22. The seal can be a rubber gasket or other type of seal. In other words, when the electrodeposition tank base 2 and the electrodeposition tank 3 are assembled in place, from bottom to top, they are: electrodeposition tank base 2, deposit source sheet to be treated, seal, and electrodeposition tank 3. Preferably, the sum of the thicknesses of the seal and the deposit source sheet is greater than the depth of the second groove 22; that is, the top surface of the seal is slightly higher than the step surface between the first groove 21 and the second groove 22. The sealing fit between the electrodeposition tank 3 and the seal ensures that the electrodeposition liquid leaks out from here.
[0047] Reference Figure 1 and Figure 2 The substrate 1 has a substrate groove 11, and the electrodeposition tank base 2 has a guide rail 24 corresponding to the substrate groove 11 at its bottom. When the electrodeposition tank base 2 is fixedly connected to the substrate 1, the guide rail 24 is embedded in the substrate groove 11. The guide rail 24 is provided with a conductive post 25, which is electrically connected to the deposition source sheet to be processed. With the above configuration, the deposition source sheet to be processed is electrically connected to one of the electrodes of the power supply, and then forms an electric field with the other electrode component to deposit metal ions in the electrodeposition solution onto the deposition source sheet.
[0048] Furthermore, the quick-assembly electrodeposition apparatus also includes an electrode component (not shown in the figure). The electrode component is composed of wire wound into a disc shape, for example, similar to the shape of a mosquito coil. The disc-shaped electrode component has an outer diameter designed not to exceed the inner diameter of the electrodeposition tank 3. The electrode component is placed in the electrodeposition tank 3, specifically, through the top 33 of the tank. Preferably, the disc-shaped electrode component is positioned so as to be suspended in the electrodeposition solution in a substantially horizontal orientation. Thus, the electrode component and the deposition source sheet are substantially parallel to each other and face each other to create the desired electric field between them.
[0049] Typically, in a general radioactive source electrodeposition process, the deposition source sheet is electrically connected to the cathode of the power supply, and the electrode assembly is electrically connected to the anode of the power supply. However, in certain specific scenarios, the electrical connections can also be configured with opposite polarities, i.e., the deposition source sheet is electrically connected to the anode of the power supply, and the electrode assembly is electrically connected to the cathode of the power supply.
[0050] Furthermore, the electrodeposition tank 3 is made of transparent acrylic. Therefore, the electrodeposition tank 3 possesses good chemical stability and visibility, facilitating operators' observation of the entire deposition process.
[0051] Additionally, the quick-assembly electrodeposition apparatus can also be equipped with an electrodeposition solution supply device. After the electrodeposition tank 3 and the electrodeposition tank base 2 are assembled into place, the electrodeposition solution is supplied to the electrodeposition tank 3 by means of the electrodeposition solution supply device; when the deposition process of the deposition source sheet is completed, the electrodeposition solution can be recovered into an external storage tank by reversing the operation of the electrodeposition solution supply device.
[0052] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and not to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.
Claims
1. A quick-assembly and disassembly electrodeposition apparatus, characterized in that, include: substrate; An electrodeposition tank base is fixed to the substrate; An electrodeposition tank is placed on the base of the electrodeposition tank; At least one clamping assembly, each clamping assembly including an eccentric wheel and a pressing member, the eccentric wheel being disposed on the substrate and being rollable in a predetermined direction; a first end of the pressing member being eccentrically hinged to the eccentric wheel, and a second end of the pressing member being used to contact and press down the electrodeposition tank; The eccentric wheel is configured such that, when it rolls to the limit position closest to the electrodeposition tank, the hinge connection point between the pressing member and the eccentric wheel is at its lowest height in the height direction.
2. The quick-assembly and disassembly electrodeposition apparatus according to claim 1, characterized in that, The substrate has a track along which the corresponding eccentric wheel rolls, the track extending inward from the edge of the substrate by a predetermined distance.
3. The quick-assembly and disassembly electrodeposition apparatus according to claim 2, characterized in that, The base plate is provided with a positioning post, which is located at the inward end of the track; The pressing member has a through groove that extends collinearly with the track, and the positioning column passes through the through groove.
4. The quick-assembly and disassembly electrodeposition apparatus according to claim 3, characterized in that, The positioning column is fitted with an elastic element, the first end of which contacts the base plate and the second end of which contacts the pressing member.
5. The quick-assembly and disassembly electrodeposition apparatus according to any one of claims 1 to 4, characterized in that, Each of the eccentric wheels includes a handle fixedly connected thereto, such that the oscillating motion of the handle is converted into the rolling motion of the eccentric wheel.
6. The quick-assembly and disassembly electrodeposition apparatus according to claim 1, characterized in that, The electrodeposition tank base has a first groove on its top, the shape of which is complementary to the shape of the bottom of the electrodeposition tank for mutual cooperation.
7. The quick-assembly and disassembly electrodeposition apparatus according to claim 6, characterized in that, The electrodeposition tank base is also provided with a second groove for accommodating the deposition source sheet to be processed. The second groove is located below the center of the first groove, and in the horizontal direction, the size of the second groove is smaller than the size of the first groove.
8. The quick-assembly and disassembly electrodeposition apparatus according to claim 7, characterized in that, The electrodeposition tank base also includes a sealing element, and the deposition source sheet to be processed and the sealing element are placed sequentially into the second groove.
9. The quick-assembly and disassembly electrodeposition apparatus according to claim 8, characterized in that, The substrate is provided with a substrate groove, and the electrodeposition tank base is provided with a guide rail corresponding to the substrate groove on its top. The guide rail is provided with a conductive post, and the conductive post is electrically connected to the deposition source sheet to be processed.
10. The quick-assembly and disassembly electrodeposition apparatus according to claim 9, characterized in that, It also includes an electrode component, which is formed in the shape of a disk and whose outer diameter is not greater than the inner diameter of the electrodeposition tank. The electrode component is placed in the electrodeposition tank.
Citation Information
Patent Citations
Electric deposition device for preparing high-resolution alpha source
CN105821467A
Deposition device for preparing high-resolution alpha radioactive source through magnetohydrodynamics electro-deposition method
CN107034512A