Special clamp for aluminum particles and aluminum particle inspection system
By designing a special fixture for aluminum granules, and utilizing the limiting groove structure of the support, clamping, and adjustment parts, the aluminum granules can be quickly positioned and clamped, solving the problem of unstable fixing of aluminum granules and improving the accuracy and efficiency of processing and inspection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHOUGANG JINGTANG IRON & STEEL CO LTD
- Filing Date
- 2025-05-13
- Publication Date
- 2026-05-26
AI Technical Summary
In existing technologies, the aluminum particles are not fixed stably, which leads to unstable positions of the aluminum particles during processing or testing, affecting the accuracy and efficiency of the operation.
A special clamp for aluminum granules was designed, including a support part, a clamping part and an adjustment part. The aluminum granules are quickly positioned and clamped by the first and second working states of the adjustment part, and the aluminum granules are radially restricted by the limiting groove to ensure positional stability.
It improves the positional stability and operational accuracy of aluminum granules during processing or inspection, enhances quality inspection efficiency and ease of operation, and reduces labor intensity.
Smart Images

Figure CN224274153U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of high-purity aluminum processing technology, and in particular to a special fixture for aluminum particles and an aluminum particle inspection system. Background Technology
[0002] Aluminum granules, also known as aluminum shot or aluminum grit, are made from high-purity aluminum ingots through a special process. They are typically cylindrical particles ranging from 6mm to 12mm in size and are used in the metallurgical industry as highly efficient deoxidizers and refining agents. Their quality directly affects the performance of the final product. The quality inspection method for aluminum granules involves drilling aluminum shavings from the center of the granule's end face using a bench drill as a sample. This process requires fixing the aluminum granules and adjusting them to be directly under the drill. Currently, common clamps such as bench vises are often used to fix the granules. During operation, one hand must hold the granule while the other tightens the vise arm, and the relative position of the granule and the drill must be adjusted simultaneously. This method lacks flexibility and gripping effectiveness, affecting continuous operation. Utility Model Content
[0003] This disclosure aims to address at least one of the technical problems existing in the prior art or related technologies.
[0004] Therefore, the first aspect of this disclosure provides a special clamp for aluminum granules;
[0005] A second aspect of this disclosure provides an aluminum particle inspection system.
[0006] In view of this, a special fixture for aluminum granules is provided according to a first aspect of the present disclosure, comprising:
[0007] The support part has a fixing section and a limiting section. The fixing section is used to be installed on the fixing device, and the limiting section is formed with a first limiting groove.
[0008] The clamping part has a second limiting groove, and the first limiting groove and the second limiting groove are arranged correspondingly. The first limiting groove and the second limiting groove are used to abut against the aluminum particles.
[0009] An adjustment section is provided in the support section, and a clamping section is provided in the adjustment section;
[0010] The adjustment unit has a first working state and a second working state. When the adjustment unit is in the first working state, the first limiting groove and the second limiting groove are used to restrict the radial movement of the aluminum particles. When the adjustment unit is in the second working state, the adjustment unit is used to drive the second limiting groove to move closer to or further away from the first limiting groove.
[0011] In one feasible implementation, the adjusting unit includes:
[0012] The base is located on the support.
[0013] A connector, one end of which is hinged to the base, and a clamping part is provided at the other end of the connector;
[0014] The control component is connected to the connector and is used to drive the connector to rotate relative to the base.
[0015] In one feasible implementation, the base includes:
[0016] The base is connected to the support part;
[0017] The first rotating shaft is located on the side of the base away from the support, and the first rotating shaft passes through the connector;
[0018] The second rotating shaft is located on the side of the base away from the support. The first rotating shaft and the second rotating shaft are arranged at intervals, and the second rotating shaft is located on the side of the first rotating shaft away from the connector.
[0019] The connecting rod has one end fitted onto the second rotating shaft and the other end hinged to the middle section of the control component.
[0020] One end of the control component is hinged to the connecting component.
[0021] In one feasible implementation, the control element includes:
[0022] The third pivot is inserted through the connecting rod;
[0023] The fourth pivot is inserted through the connector;
[0024] The plate consists of two plates arranged at intervals, with both ends of the third and fourth rotating shafts connected to the plate, and the third and fourth rotating shafts located between the two plates.
[0025] The operating handle is located on the side of the plate away from the connector.
[0026] In one feasible implementation, when the adjustment unit is in the first working state, the second, third, and fourth rotating shafts are located on the same plane.
[0027] In one feasible implementation, the length of the operating handle is greater than the distance between the third and fourth rotating shafts.
[0028] In one feasible implementation, the operating handle and the plate body are an integral structure.
[0029] In one feasible implementation, the clamping part includes:
[0030] The limiting component has a second limiting groove formed thereon.
[0031] A screw, one end of which is connected to the side of the limiting member opposite to the second limiting groove, and the screw passes through the adjusting part;
[0032] The first nut is threaded to the screw rod and is located on the side of the adjusting part away from the limiting member.
[0033] The second nut is located between the limiting member and the adjusting part.
[0034] In one feasible implementation, the first limiting groove has a limiting wall for abutting the end face of the aluminum particle.
[0035] A second aspect of the present disclosure provides an aluminum particle inspection system, comprising:
[0036] Such as the aluminum granule-specific clamps mentioned in any of the first aspects above;
[0037] Benchtop vise, benchtop vise clamping and fixing section;
[0038] The bench drill, positioned between the first and second limiting grooves, is used to drill aluminum chips from the end face of aluminum particles.
[0039] Compared with the prior art, this disclosure has at least the following beneficial effects: The aluminum granule-specific clamp provided in the embodiments of this disclosure consists of a support part, a clamping part, and an adjusting part. The fixed section of the support part is assembled on the fixing device, providing stable support for the aluminum granule-specific clamp. The first limiting groove of the limiting section and the second limiting groove of the clamping part are correspondingly arranged, and the two work together to form an abutment constraint on the aluminum granule. The adjusting part is arranged on the support part, and the clamping part is arranged on the adjusting part. The adjusting part has a first working state and a second working state: In the first working state, the first limiting groove and the second limiting groove are used to clamp the aluminum granule, and the aluminum granule can be stuck between the first limiting groove and the second limiting groove, thereby limiting the displacement of the aluminum granule in the radial direction, realizing the rapid positioning and fixing of the aluminum granule, ensuring the positional stability of the aluminum granule during processing or inspection, thereby significantly improving the accuracy of the operation; In the second working state, the adjusting part drives the second limiting groove to move closer to or away from the first limiting groove, thereby realizing the clamping and releasing operation of the aluminum granule. The whole process is smooth and efficient.
[0040] The aluminum granule-specific fixture and aluminum granule inspection system disclosed herein, along with other advantages, objectives, and features of this disclosure, will be partly apparent from the following description and partly understood by those skilled in the art through study and practice of this disclosure. Attached Figure Description
[0041] Various other advantages and benefits will become apparent to those skilled in the art upon reading the following detailed description of exemplary embodiments. The accompanying drawings are for illustrative purposes only and are not intended to limit the scope of this disclosure. Furthermore, the same reference numerals denote the same parts throughout the drawings. In the drawings:
[0042] Figure 1This is a schematic structural diagram of a special fixture for aluminum granules according to an embodiment of the present disclosure;
[0043] Figure 2 for Figure 1 A schematic structural diagram of the aluminum granule clamp from another perspective of the embodiment shown;
[0044] Figure 3 This is a schematic diagram illustrating the self-locking state of a special clamp for aluminum granules according to an embodiment of this disclosure.
[0045] in, Figures 1 to 3 The correspondence between the reference numerals and component names in the attached drawings is as follows:
[0046] 100. Support section; 200. Clamping section; 300. Adjustment section;
[0047] 310. Base; 320. Connector; 330. Control component;
[0048] 311. Base; 312. First pivot; 313. Second pivot; 314. Connecting rod;
[0049] 331. Third rotating shaft; 332. Fourth rotating shaft; 333. Plate body; 334. Operating handle;
[0050] 210. Limiting component; 220. Screw; 230. First nut; 240. Second nut;
[0051] 1001, First limiting groove; 1002, Limiting wall; 2001, Second limiting groove. Detailed Implementation
[0052] Exemplary embodiments of the present disclosure will now be described in more detail with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art.
[0053] Figure 1 This is a schematic structural diagram of a special fixture for aluminum granules according to an embodiment of the present disclosure; Figure 2 for Figure 1 A schematic structural diagram of the aluminum granule clamp from another perspective of the embodiment shown.
[0054] like Figure 1 and Figure 2As shown, a special clamp for aluminum granules is provided according to a first aspect of the present disclosure, comprising: a support portion 100 having a fixing section and a limiting section, the fixing section being disposed on a fixing device, and the limiting section having a first limiting groove 1001; a clamping portion 200 having a second limiting groove 2001, the first limiting groove 1001 and the second limiting groove 2001 being arranged correspondingly, the first limiting groove 1001 and the second limiting groove 2001 being used to abut against aluminum granules; and an adjustment portion. 300 is disposed on the support part 100, and the clamping part 200 is disposed on the adjustment part 300; wherein, the adjustment part 300 has a first working state and a second working state. When the adjustment part 300 is in the first working state, the first limiting groove 1001 and the second limiting groove 2001 are used to restrict the radial movement of the aluminum particles. When the adjustment part 300 is in the second working state, the adjustment part 300 is used to drive the second limiting groove 2001 to move closer to or further away from the first limiting groove 1001.
[0055] The aluminum granule clamp disclosed in this embodiment comprises a support part 100, a clamping part 200, and an adjusting part 300. The fixing section of the support part 100 is mounted on a fixing device to provide stable support for the aluminum granule clamp. The first limiting groove 1001 of the limiting section is correspondingly provided with the second limiting groove 2001 of the clamping part 200, and the two work together to form an abutment constraint on the aluminum granule. An adjustment part 300 is disposed on the support part 100, and a clamping part 200 is disposed on the adjustment part 300. The adjustment part 300 has a first working state and a second working state: In the first working state, the first limiting groove 1001 and the second limiting groove 2001 are used to clamp the aluminum particle. The aluminum particle can be stuck between the first limiting groove 1001 and the second limiting groove 2001, thereby limiting the displacement of the aluminum particle in the radial direction, realizing the rapid positioning and fixing of the aluminum particle, ensuring the positional stability of the aluminum particle during processing or inspection, thereby significantly improving the accuracy of the operation; In the second working state, the adjustment part 300 drives the second limiting groove 2001 to move closer to or away from the first limiting groove 1001, thereby realizing the clamping and releasing operation of the aluminum particle. The whole process is smooth and efficient.
[0056] In practical applications, during the aluminum particle quality inspection and sample preparation stage, the fixing section can be clamped on a bench vise or other fixing device. Switching to the first state to fix the aluminum particle, adjusting the bench drill to a suitable position, and then drilling the aluminum chip sample can be performed. After sampling, the adjusting part 300 can be switched to the second state to remove the aluminum particle. Since the diameter of aluminum particles in the same batch is the same, it is not necessary to adjust the relative position of the bench drill and the special clamp for the aluminum particle during the subsequent aluminum particle sampling process. By clamping the aluminum particle with the adjusting part 300, the first limiting groove 1001 and the second limiting groove 2001 can clamp the aluminum particle to a suitable sampling position, which improves the efficiency of quality inspection.
[0057] It should be noted that in traditional technology, the quality inspection method for aluminum granules involves using a bench drill to extract aluminum shavings as samples from the center of the end face of the aluminum granules. Each batch of aluminum granules requires at least 20 samples. This process requires fixing the aluminum granules and adjusting them to be directly under the bench drill. Currently, fixing the aluminum granules often uses general-purpose clamps such as bench vises. During operation, one hand must hold the aluminum granule while the other hand tightens the vise arm, and the relative position of the aluminum granule and the bench drill must be adjusted simultaneously. This results in poor flexibility and clamping effect, affecting continuous operation. Compared to traditional technology, the aluminum granule-specific clamp proposed in this embodiment, based on the aforementioned design, can accurately position the aluminum granules and effectively limit their radial displacement, avoiding errors during quality inspection and greatly improving the clamping effect. When changing aluminum granules, there is no need to reposition them for quality inspection sampling, improving inspection efficiency. Furthermore, since the working state of the adjustment unit 300 can be flexibly switched, the loading and unloading process of aluminum granules can be completed quickly, further improving work efficiency and making it suitable for continuous quality inspection of aluminum granules.
[0058] In some examples, such as Figure 1 and Figure 2 As shown, the adjustment unit 300 includes: a base 310 disposed on the support unit 100; a connector 320, one end of which is hinged to the base 310, and a clamping part 200 disposed on the other end of the connector 320; and a control member 330 connected to the connector 320 for driving the connector 320 to rotate relative to the base 310.
[0059] In the above technical solution, the adjustment unit 300 mainly consists of a base 310, a connector 320, and a control unit 330. The base 310 is mounted on the support unit 100, providing a solid and reliable installation foundation for the entire adjustment unit 300, ensuring no displacement or shaking occurs during subsequent operations. One end of the connector 320 is hinged to the base 310, allowing the connector 320 to rotate flexibly relative to the base 310. The clamping part 200 is located at the other end of the connector 320, changing position with its rotation. The control unit 330 is connected to the connector 320. When the operator applies force to the control unit, the control unit 330 converts the external force into driving force, causing the connector 320 to rotate, thus achieving precise control of the position of the clamping part 200. Therefore, through the drive of the control unit 330, the clamping part 200 can be moved closer to or further away from the limiting section of the support unit 100, realizing the transition between the first and second working states, and completing the precise clamping and releasing of the aluminum particles. This design is simple and efficient, reducing manufacturing and maintenance costs; operators can easily adjust the aluminum granule clamping state, improving work efficiency; at the same time, since the distance between the first limiting groove 1001 and the second limiting groove 2001 is adjustable, it can accommodate aluminum granules of different sizes, improving versatility and applicability.
[0060] In some examples, such as Figure 1 and Figure 2 As shown, the base 310 includes: a base body 311 connected to the support portion 100; a first rotating shaft 312 disposed on the side of the base body 311 away from the support portion 100, the first rotating shaft 312 passing through the connector 320; a second rotating shaft 313 disposed on the side of the base body 311 away from the support portion 100, the first rotating shaft 312 and the second rotating shaft 313 being arranged at intervals, the second rotating shaft 313 being located on the side of the first rotating shaft 312 away from the connector 320; and a connecting rod 314, one end of the connecting rod 314 being sleeved on the second rotating shaft 313, and the other end of the connecting rod 314 being hinged to the middle section of the control member 330; wherein, one end of the control member 330 is hinged to the connector 320.
[0061] In the above technical solution, the base 310 includes a seat body 311, a first rotating shaft 312, a second rotating shaft 313, and a connecting rod 314. The seat body 311 is connected to the support part 100, providing stable support for the entire base 310 and ensuring that the base 310 will not shift or shake during subsequent operations. The first rotating shaft 312 is located on the side of the seat body 311 away from the support part 100 and passes through the connector 320, giving the connector 320 the ability to rotate flexibly around the first rotating shaft 312 as the axis, so that the clamping part 200 can adjust its position with the rotation of the connector 320, realizing the clamping and releasing operation of the aluminum granules. The second rotating shaft 313 is also located on the side of the seat body 311 away from the support part 100, arranged at an interval from the first rotating shaft 312, and located on the side of the first rotating shaft 312 away from the connector 320. One end of the connecting rod 314 is sleeved on the second rotating shaft 313, and the other end is hinged to the middle section of the control member 330, which in turn is hinged to the connecting member 320. In practical applications, when the operator applies an external force to the control member 330, the control member 330 tends to rotate around the hinge point with the connecting member 320. Since one end of the connecting rod 314 is sleeved on the second rotating shaft 313 and the other end is hinged to the middle section of the control member 330, the rotation of the control member 330 is transmitted to the second rotating shaft 313 through the connecting rod 314, thereby generating a driving force on the connecting member 320, causing the connecting member 320 to rotate around the first rotating shaft 312. The operator can easily and accurately control the rotation angle of the connecting member 320 through the control member 330, thereby precisely adjusting the distance between the clamping part 200 and the limiting section of the support part 100, achieving precise clamping and releasing of aluminum particles, and greatly improving work efficiency.
[0062] It is understandable that the base 311 and the support 100 can be connected by bolts.
[0063] It is understandable that there may be a gap between the first pivot 312 and the second pivot 313 to allow for movement space at the hinge point between the connecting rod 314 and the operating member 330.
[0064] In some examples, such as Figure 1 and Figure 2 As shown, the control component 330 includes: a third rotating shaft 331, which passes through the connecting rod 314; a fourth rotating shaft 332, which passes through the connector 320; a plate 333, with two plates 333 arranged at intervals, both ends of the third rotating shaft 331 and the fourth rotating shaft 332 being connected to the plate 333, and the third rotating shaft 331 and the fourth rotating shaft 332 being located between the two plates 333; and an operating handle 334, which is located on the side of the plate 333 away from the connector 320.
[0065] In the above technical solution, the control component 330 includes a third rotating shaft 331, a fourth rotating shaft 332, a plate 333, and an operating handle 334. The third rotating shaft 331 is mounted on the connecting rod 314, so that the connecting rod 314 can rotate with the third rotating shaft 331 as the axis. The fourth rotating shaft 332 is mounted on the connecting member 320, so that the connecting member 320 can rotate with the fourth rotating shaft 332 as the axis. The plate 333 is located at both ends of the third rotating shaft 331 and the fourth rotating shaft 332. The third rotating shaft 331, the fourth rotating shaft 332, and the plate 333 form a frame structure that not only meets the rotational capacity but also improves the structural strength of the control component. The operating handle 334 is located on the side of the plate 333 away from the connecting member 320, making it easier for the operator to operate.
[0066] It is understandable that the first rotating shaft 312, the second rotating shaft 313, the third rotating shaft 331 and the fourth rotating shaft 332 are arranged in parallel to each other.
[0067] Figure 3 This is a schematic diagram illustrating the self-locking state of a special clamp for aluminum granules according to an embodiment of this disclosure. In some examples, such as... Figure 3 As shown, when the adjustment unit 300 is in the first working state, the second rotating shaft 313, the third rotating shaft 331 and the fourth rotating shaft 332 are located in the same plane.
[0068] In the above technical solution, when the adjustment part 300 is in the first working state, the second rotating shaft 313, the third rotating shaft 331, and the fourth rotating shaft 332 are coplanar. Thus, when the adjustment part 300 is in the first working state, and the first limiting groove 1001 and the second limiting groove 2001 are clamping the aluminum particles, the hinge points of the second rotating shaft 313, the third rotating shaft 331, and the fourth rotating shaft 332 are on the same straight line. The hinge point of the third rotating shaft 331 is located between the second rotating shaft 313 and the fourth rotating shaft 332. Thus, a triangular stable structure is formed between the hinge points of the first rotating shaft 312, the second rotating shaft 313, and the fourth rotating shaft 332, so that the operating member and the base 310 of the connecting rod 314 form a self-locking state. In this state, the clamping of the aluminum particles by the first limiting groove 1001 and the second limiting groove 2001 can be achieved without applying additional external force, effectively reducing the labor intensity of the operator.
[0069] Understandably, in the self-locking state, a certain external force can be applied to the hinge point where the third rotating shaft 331 is located to release the self-locking state.
[0070] In some examples, the length of the operating handle 334 is greater than the distance between the third pivot 331 and the fourth pivot 332.
[0071] Based on the above technical solution, the length of the operating handle 334 is greater than the distance between the third rotating shaft 331 and the fourth rotating shaft 332, which is beneficial for the power arm to be greater than the resistance arm. As the point of force application, the length of the operating handle 334 and the specific shaft spacing create a lever arm difference. According to the lever principle, a small force applied by the operator to the handle can be converted into a large torque on the control component 330, achieving efficient and labor-saving drive. This greatly improves operational convenience, allowing the operator to easily rotate the control component 330 and smoothly drive the connecting component 320 to complete the clamping and releasing of aluminum particles. Labor-saving operation reduces labor intensity and fatigue, improving work efficiency; at the same time, the large torque generated by the lever makes the rotation of the control component 330 more stable and accurate, ensuring the stable adjustment of the connecting component 320.
[0072] In some examples, the operating handle 334 and the plate 333 are an integral structure, which helps to improve structural strength.
[0073] In some examples, such as Figure 1 As shown, the clamping part 200 includes: a limiting member 210, a second limiting groove 2001 formed in the limiting member 210; a screw 220, one end of which is connected to the limiting member 210 on the side opposite to the second limiting groove 2001, and the screw 220 passes through the adjusting part 300; a first nut 230, which is threadedly connected to the screw 220 and is located on the side of the adjusting part 300 opposite to the limiting member 210; and a second nut 240, which is located between the limiting member 210 and the adjusting part 300.
[0074] In the above technical solution, the clamping part 200 includes a limiting member 210, a screw 220, a first nut 230, and a second nut 240. Based on the above configuration, the first nut 230 and the second nut 240 can connect the screw 220 to the adjusting part 300 via a threaded connection, which can adjust the distance between the limiting member 210 and the adjusting member. That is, through the threaded connection between the first nut 230, the second nut 240, and the screw 220, the distance between the second limiting groove 2001 and the first limiting groove 1001 can be adjusted. Thus, when the adjusting part 300 is in the first working state, the distance between the first limiting groove 1001 and the second limiting groove 2001 can be adapted to aluminum granules of various diameters, thereby improving the applicability of the special clamp for aluminum granules.
[0075] In some examples, such as Figure 1 As shown, the first limiting groove 1001 has a limiting wall 1002, which is used to abut the end face of the aluminum particle.
[0076] In the above technical solution, the first limiting groove 1001 also has a limiting wall 1002. The limiting wall 1002 is used to abut the end face of the aluminum particle. In practical applications, when the aluminum particle is placed in the first limiting groove 1001, the aluminum particle can be directly placed on the limiting wall 1002. The limiting wall 1002 can limit the aluminum particle from the axial direction, preventing the aluminum particle from moving up and down during the clamping process, thus improving the convenience of clamping the aluminum particle. At the same time, in the subsequent sampling process, the limiting wall 1002 can also provide support force for the aluminum particle, preventing the aluminum particle from moving under the pressure of the bench drill.
[0077] According to a second aspect of the present disclosure, an aluminum particle inspection system is provided, comprising: a special fixture for aluminum particles as described in any of the first aspects above;
[0078] Benchtop vise, benchtop vise clamping and fixing section;
[0079] The bench drill is arranged between the first limiting groove 1001 and the second limiting groove 2001, and is used to drill aluminum chips from the end face of aluminum particles.
[0080] Since the aluminum particle inspection system provided in this disclosure includes a special fixture for aluminum particles as described in any of the first aspects above, it possesses all the beneficial effects of such a special fixture for aluminum particles, which will not be elaborated here.
[0081] It should be understood that the terms "first," "second," etc., are used only for distinguishing descriptions and should not be construed as indicating or implying relative importance. Although the terms "first," "second," etc., may be used herein to describe various units, these units should not be limited by these terms. These terms are only used to distinguish one unit from another. For example, a first unit may be referred to as a second unit, and similarly, a second unit may be referred to as a first unit, without departing from the scope of the exemplary embodiments of the invention.
[0082] It should be understood that the term "and / or" in this article is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can mean: A exists alone, B exists alone, and A and B exist simultaneously. The term " / and" in this article describes another relationship between related objects, indicating that two relationships can exist. For example, A / and B can mean: A exists alone, and A and B exist alone. In addition, the character " / " in this article generally indicates that the related objects before and after it are in an "or" relationship.
[0083] It should be understood that in the description of this invention, the terms "upper," "vertical," "inner," "outer," etc., indicate the orientation or positional relationship as commonly placed when the disclosed product is used, or the orientation or positional relationship commonly understood by those skilled in the art. They are only for the convenience of describing this invention 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 this invention.
[0084] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," and "connect" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0085] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments of the invention. As used herein, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the terms “comprising,” “including,” “containing,” and / or “including” as used herein specify the presence of the stated features, integers, steps, operations, units, and / or components, and do not exclude the presence or addition of one or more other features, quantities, steps, operations, units, components, and / or combinations thereof.
[0086] Specific details are provided in the following description to provide a complete understanding of the exemplary embodiments. However, those skilled in the art will understand that the exemplary embodiments can be implemented without these specific details. In other embodiments, well-known processes, structures, and techniques may be omitted in the depiction of non-essential details to avoid obscuring the exemplary embodiments.
[0087] The above are merely specific embodiments of this application, enabling those skilled in the art to understand or implement this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features claimed herein.
[0088] It should be noted that the information disclosed in the background section above is only used to enhance the understanding of the background of this disclosure, and therefore may include information that does not constitute prior art known to those skilled in the art.
Claims
1. An aluminum particle dedicated jig characterized by comprising: include: The support portion has a fixing section and a limiting section, the fixing section is used to be disposed on the fixing device, and the limiting section is formed with a first limiting groove; The clamping part has a second limiting groove, and the first limiting groove and the second limiting groove are arranged correspondingly to each other. The first limiting groove and the second limiting groove are used to abut against the aluminum granule. An adjustment part is provided on the support part, and a clamping part is provided on the adjustment part; The adjustment unit has a first working state and a second working state. When the adjustment unit is in the first working state, the first limiting groove and the second limiting groove are used to restrict the radial movement of the aluminum particles. When the adjustment unit is in the second working state, the adjustment unit is used to drive the second limiting groove to move closer to or further away from the first limiting groove.
2. The aluminum pellet dedicated clamp according to claim 1, characterized by, The adjustment unit includes: Base, the base being disposed on the support portion; A connector, one end of which is hinged to the base, and a clamping part is disposed at the other end of the connector; A control element, connected to the connector, is used to drive the connector to rotate relative to the base.
3. The aluminum pellet dedicated clamp according to claim 2, characterized by The base includes: The base is connected to the support portion; A first rotating shaft is disposed on the side of the base body opposite to the support portion, and the first rotating shaft passes through the connector; The second rotating shaft is disposed on the side of the base away from the support portion. The first rotating shaft and the second rotating shaft are arranged at a distance, and the second rotating shaft is located on the side of the first rotating shaft away from the connector. A connecting rod, one end of which is sleeved on the second rotating shaft, and the other end of which is hinged to the middle section of the control member; One end of the control component is hinged to the connecting component.
4. The aluminum pellet dedicated clamp according to claim 3, characterized by The control element includes: A third pivot is inserted through the connecting rod; The fourth pivot is inserted through the connector; The plate body, two of the plate bodies are arranged at intervals, and both ends of the third rotating shaft and the fourth rotating shaft are connected to the plate body, and the third rotating shaft and the fourth rotating shaft are located between the two plate bodies; The operating handle is located on the side of the plate away from the connector.
5. The special clamp for aluminum granules according to claim 4, characterized in that, When the adjustment unit is in the first working state, the second rotating shaft, the third rotating shaft, and the fourth rotating shaft are located on the same plane.
6. The special clamp for aluminum granules according to claim 4, characterized in that, The length of the operating handle is greater than the distance between the third rotating shaft and the fourth rotating shaft.
7. The special clamp for aluminum granules according to claim 4, characterized in that, The operating handle and the plate are an integral structure.
8. The aluminum pellet dedicated clamp according to any one of claims 1 to 7, characterized by, The clamping part includes: A limiting member, wherein the second limiting groove is formed in the limiting member; A screw, one end of which is connected to the limiting member on the side opposite to the second limiting groove, and the screw passes through the adjusting part; The first nut is threaded to the screw and is located on the side of the adjusting part opposite to the limiting member. The second nut is located between the limiting member and the adjusting part.
9. The special clamp for aluminum granules according to any one of claims 1 to 7, characterized in that, The first limiting groove has a limiting wall, which is used to abut the end face of the aluminum particle.
10. An aluminum particle inspection system characterized by, include: Aluminum granule clamp as described in any one of claims 1 to 9; A bench vise, wherein the bench vise clamps the fixed section; A bench drill, positioned between the first and second limiting grooves, is used to drill aluminum chips from the end face of the aluminum particles.