Gap assembly structure of thin wall and acting body in microwave integrated module
Through the combined structure of the compensation sleeve and locking bolt, the problem of thin-walled threaded holes in the microwave integrated module is solved, and the stable fixation of thin-walls and the acting body is achieved, improving assembly efficiency and life.
Patent Information
- Application Number
- CN202421824897.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-31
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-07-31
AI Technical Summary
In microwave integrated modules, the prior art processing threaded holes on thin walls have problems such as insufficient hardness, easy damage to thin walls and high processing difficulty, resulting in low assembly efficiency.
The combination structure of the compensation sleeve and the locking bolt is adopted. The wing ears of the compensation sleeve are abutted with the inner side of the thin wall, and the thread rotation of the locking bolt is used to drive the compensation sleeve to move away from the acting body, thereby achieving the fixation between the thin wall and the acting body, and avoiding the opening of threaded holes on the thin wall.
It realizes simple and fast assembly of thin walls and the acting body, avoids thin wall deformation and damage, and improves assembly efficiency and life.
Smart Images

Figure CN223215545U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hole assembly structures, in particular to a gap assembly structure between a thin wall and an acting body in a microwave integrated module. Background Art
[0002] The assembly process of high-precision electronic products involves various issues related to the assembly of various actuators and thin-walled components. For example, in microwave integrated modules, a cylindrical thin-walled component is required as a shield or protective cover for the actuator. To this end, the existing assembly process generally involves screws passing through threaded holes in the thin-walled component and then fixing it to the actuator. The entire assembly process has high requirements for the process and requires the three components to be optimally matched. Otherwise, assembly gaps will occur, eventually causing the thin-walled component to deform and shortening its service life. For this purpose, there is a publication number CN 212055403. U's Chinese utility model patent discloses a gap compensation structure, locking structure and assembly structure between a thin wall and an actuator to solve the above-mentioned problems. The gap is mainly controlled by setting a compensation structure between the thin wall and the actuator. However, for a cylindrical (the most common) actuator, the thickness of the cylindrical thin wall is limited. In high-precision equipment, processing internal threads on such a thin wall will have the following problems: first, the hardness of some thin walls does not meet the processing requirements; second, the thin walls may crack or be damaged; and third, the difficulty of thin-wall processing is increased, resulting in a longer process time. These points reduce the efficiency of high-precision processing and assembly. Utility Model Content
[0003] The utility model aims to provide a gap assembly structure between a thin wall and an acting body in a microwave integrated module, which can complete the assembly of the thin wall and the acting body without machining threaded holes on the thin wall.
[0004] The embodiment of the utility model is realized through the following technical scheme: a gap assembly structure between a thin wall and an acting body in a microwave integrated module, comprising: a compensation sleeve, two wing ears are symmetrically provided on the outer side of the compensation sleeve; the length of the compensation sleeve is greater than the gap between the thin wall and the acting body; the distance between the wing ear and one end of the compensation sleeve is less than the gap between the thin wall and the acting body; a locking bolt, which comprises a first screw and a second screw with successively increasing diameters and interconnected; the first screw is provided with a first external thread; a through hole is provided on the thin wall for the compensation sleeve and the wing ear to pass through, and the longest inner diameter of the through hole is arranged perpendicular to the axis of the thin wall; a screw hole is provided on the acting body to match the first external thread; when the first screw moves toward the screw hole, the second screw drives the compensation sleeve to move in a direction away from the acting body.
[0005] Furthermore, the thin wall is provided with limiting holes on both sides of the through hole.
[0006] Furthermore, the second screw is provided with a second external thread, and the inner side of the compensation sleeve is provided with an internal thread matched with the second external thread, and the second external thread and the first external thread are arranged in opposite directions of rotation.
[0007] Furthermore, a protrusion is provided on the outer side of the second screw, and a sliding groove is provided on the inner side of the compensation sleeve. The protrusion is slidably arranged in the sliding groove, and the sliding groove is extended along the axial diameter of the compensation sleeve.
[0008] Furthermore, an axial force bearing structure is provided at the end of the second screw.
[0009] Furthermore, in the microwave integrated module, at least three gap assembly structures between the thin wall and the acting body are provided in the same plane.
[0010] Furthermore, the through hole is elliptical; the diameter of the compensation sleeve is equal to the minimum inner diameter of the through hole.
[0011] The utility model has at least the following advantages and beneficial effects: by arranging a compensation sleeve to abut the thin wall and the acting body from the gap, the thin wall is fixed relative to the acting body, avoiding the need to open a threaded hole on the thin wall; in addition, the entire installation process is simple and quick. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.
[0013] Figure 1 A schematic structural diagram of a gap assembly structure between a thin wall and an acting body in a microwave integrated module provided in Example 1;
[0014] Figure 2 A schematic top view of a gap assembly structure between a thin wall and an active body in a microwave integrated module provided in Example 1;
[0015] Figure 3 A schematic structural diagram of a through hole in a gap assembly structure between a thin wall and an acting body in a microwave integrated module provided in Example 1;
[0016] Figure 4 Schematic diagram of the structure of the wing ears fitted through holes in the gap assembly structure between the thin wall and the acting body in a microwave integrated module provided in Example 1 Figure 1 ;
[0017] Figure 5 Schematic diagram of the structure of the wing ears fitted through holes in the gap assembly structure between the thin wall and the acting body in a microwave integrated module provided in Example 1 Figure 2 ;
[0018] Figure 6 A schematic structural diagram of a gap assembly structure between a thin wall and an active body in a microwave integrated module provided in Example 2;
[0019] Figure 7 A schematic diagram of the expanded structure of a slideway in a gap assembly structure between a thin wall and an acting body in a microwave integrated module provided in Example 2;
[0020] Icon: 1-acting body, 2-thin wall, 3-compensating sleeve, 4-locking bolt, 5-through hole, 6-first screw, 7-second screw, 8-screw hole, 9-second external thread, 10-protrusion, 11-slide groove, 12-wing ear, 13-limiting hole. DETAILED DESCRIPTION
[0021] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings herein can be arranged and designed in various different configurations.
[0022] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but rather merely represents selected embodiments of the present invention. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort are also within the scope of protection of the present invention.
[0023] Example 1
[0024] like Figure 2 As shown, in this embodiment, a gap assembly structure between a thin wall 2 and an actuator 1 is mainly disclosed, which mainly includes: a compensation sleeve 3 and a locking bolt 4. Specifically, the compensation sleeve 3 is a sleeve structure, and two wing ears 12 are symmetrically provided on the outer side of the compensation sleeve 3. Preferably, one side of the wing ear 12 is arc-shaped and is arranged to fit the inner side of the thin wall 2. The line connecting the two wing ears 12 is parallel to the axis of the thin wall 2, as shown in FIG. Figure 2 As shown, the two wing ears 12 fit the inner side of the thin wall 2 and can use the arc structure to close the thin wall 2 so that the wing ears 12 fix the distance between the thin wall 2 and the actuator 1; the length of the compensation sleeve 3 is greater than the gap between the thin wall 2 and the actuator 1. Specifically, as shown Figure 1As shown, one end of the compensation sleeve 3 needs to limit the sliding of the thin wall 2 in the axial direction; the distance between the wing ear 12 and one end of the compensation sleeve 3 is smaller than the gap between the thin wall 2 and the actuator 1, thereby ensuring that the wing ear 12 can be placed between the actuator 1 and the thin wall 2, thereby abutting the thin wall 2, and assembling the thin wall 2 relative to the actuator 1. Specifically, one end of the compensation sleeve 3 can be disassembled and fixed on the actuator 1, and the other end abuts against the inner side of the thin wall 2 through the wing ear 12 to complete the assembly between the thin wall 2 and the actuator 1.
[0025] The structure in which one end of the compensation sleeve 3 is detachably fixed to the actuator 1 is realized by a locking bolt 4. Specifically, the locking bolt 4 includes a first screw 6 and a second screw 7 with successively increasing diameters and connected to each other; the first screw 6 is provided with a first external thread.
[0026] like Figure 3 As shown, the thin wall 2 is provided with a through hole 5 for the compensation sleeve 3 and the wing ear 12 to pass through. The longest inner diameter of the through hole 5 is arranged perpendicular to the axis of the thin wall 2. Preferably, the through hole 5 is an elliptical hole, the major axis of the ellipse is arranged perpendicular to the axis of the thin wall 2, and the minor axis of the ellipse is arranged parallel to the axis of the thin wall 2, as shown in FIG. Figure 4 As shown, the two wing ears 12 enter from the long axis of the through hole 5, and then rotate the wing ears 12 90 degrees, as shown in FIG. Figure 5 As shown, the wing ear 12 is brought into contact with the inner side of the thin wall 2 at the minor axis.
[0027] Specifically, since the distance between the wing ear 12 and one end of the compensation sleeve 3 is smaller than the gap between the thin wall 2 and the actuator 1; therefore, when the wing ear 12 abuts against the inner side of the thin wall 2, the gap between the compensation sleeve 3 and the actuator 1 needs to be compensated, specifically by the locking bolt 4, and the actuator 1 is provided with a screw hole 8 that matches the first external thread; when the first screw 6 moves toward the screw hole 8, the second screw 7 drives the compensation sleeve 3 to move away from the actuator 1; further, in this embodiment, the outer side of the second screw 7 is provided with a second external thread 9, and the inner side of the compensation sleeve 3 is provided with an internal thread that matches the second external thread 9, and the second external thread 9 and the first external thread are set in opposite directions of rotation; when the locking bolt 4 rotates forward into the screw hole 8, the second external thread 9 rotates in the reverse direction to drive the compensation sleeve 3 to move away from the actuator 1, thereby abutting the wing ear 12 against the inner side of the thin wall 2 and assembling the thin wall 2 and the actuator 1.
[0028] In addition, in order to ensure the strength of the wing ear 12, the side of the wing ear 12 close to the thin wall 2 is made of soft materials such as rubber, and the side away from the thin wall 2 is made of metal. When the locking bolt 4 is rotated, the compensation sleeve 3 will rotate with it. At this time, a magnet can be used to increase the rotation resistance, so that the wing ear 12 contacts the inner side of the thin wall 2. Then, since the inner side of the thin wall 2 is arc-shaped, there will be a friction force between the wing ear 12 and the inner side of the thin wall 2 after contact. This friction force can correct the contact surface between the wing ear 12 and the thin wall 2 to ensure The wing ear 12 and the thin wall 2 are always in contact, thereby completing the assembly; the entire assembly structure from the inside to the outside is the acting body 1, the locking bolt 4, the compensation sleeve 3, and the thin wall 2; the entire assembly structure is completed. It should be noted that the rotation correction of the wing ear 12 before it contacts the thin wall 2 can be achieved by the gravity of the wing ear 12 itself, as long as the accuracy and smoothness of the second external thread 9 are sufficient; if it is insufficient, it can also be achieved by the following means. Specifically, the thin wall 2 is provided with limiting holes 13 on both sides of the through hole 5. Specifically, the limiting holes 13 are provided on both sides of the short axis of the elliptical through hole 5. When the compensation sleeve 3 rotates, the pin is inserted into the limiting hole 13 to complete the limitation of the wing ear 12 so that it can complete the contact with the thin wall 2.
[0029] In order to ensure that the locking bolt 4 can bear the force better, an axial force-bearing structure is provided at the end of the second screw rod 7. The axial force-bearing structure is a "flat mouth" or a "plum blossom mouth" for rotating the locking bolt 4.
[0030] In addition, in this embodiment, the gap compensation between the actuator 1 and the thin wall 2 is completed by the locking bolt 4, and the abutment is completed by the wing ears 12 and the thin wall 2. It should be noted that three or more groups of wing ears 12 should be provided to better complete the 360-degree fixation of the actuator 1 and the thin wall 2, thereby completing the assembly of the actuator 1 and the thin wall 2.
[0031] In this embodiment, in order to avoid over-rotation of the locking bolt 4 , color markings may be provided on the locking bolt 4 and the compensation sleeve 3 to assist the operator.
[0032] Example 2
[0033] like Figure 6As shown, in this embodiment, a gap assembly structure between the thin wall 2 and the actuator 1 is mainly disclosed, and its main structure is exactly the same as that of the embodiment 1. The difference is that, in this embodiment, the structure of the locking bolt 4 driving the compensation sleeve 3 is different from that of the embodiment 1. Specifically, a protrusion 10 is provided on the outer side of the second screw 7, and a slide groove 11 is provided on the inner side of the compensation sleeve 3. The protrusion 10 is slidably set in the slide groove 11, and the slide groove 11 is extended along the axial diameter of the compensation sleeve 3; that is, under the rotation of the locking bolt 4, the protrusion 10 slides in the slide groove 11, and the slide groove 11 slides in the direction away from the actuator 1, thereby abutting the wing ear 12 against the inner side of the thin wall 2; preferably, in order to reduce the interactive resistance of the protrusion 10 in the slide groove 11, the circle pitch of the slide groove 11 should be set as large as possible; but it should not exceed 3 times the length of the compensation sleeve 3, such as Figure 7 As shown, it is a development diagram of the slide groove with the axis of the compensation sleeve 3 as the development surface.
[0034] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. A gap assembly structure between a thin wall and an acting body in a microwave integrated module, characterized in that: include: A compensation sleeve (3), wherein two wing ears (12) are symmetrically provided on the outer side of the compensation sleeve (3); the length of the compensation sleeve (3) is greater than the gap between the thin wall (2) and the actuator (1); and the distance between the wing ears (12) and one end of the compensation sleeve (3) is less than the gap between the thin wall (2) and the actuator (1); A locking bolt (4) comprises a first screw rod (6) and a second screw rod (7) with successively increasing diameters and connected to each other; the first screw rod (6) is provided with a first external thread; The thin wall (2) is provided with a through hole (5) for the compensation sleeve (3) and the wing ear (12) to pass through, and the longest inner diameter of the through hole (5) is arranged perpendicular to the axis of the thin wall (2); The acting body (1) is provided with a screw hole (8) that matches the first external thread; when the first screw rod (6) moves toward the screw hole (8), the second screw rod (7) drives the compensation sleeve (3) to move in a direction away from the acting body (1).
2. The gap assembly structure between the thin wall and the active body in the microwave integrated module according to claim 1, characterized in that: The thin wall (2) is provided with limiting holes (13) on both sides of the through hole (5).
3. The gap assembly structure between the thin wall and the active body in the microwave integrated module according to claim 2, characterized in that: The second screw (7) is provided with a second external thread (9), and the inner side of the compensation sleeve (3) is provided with an internal thread matched with the second external thread (9), and the second external thread (9) and the first external thread are arranged in opposite directions.
4. The gap assembly structure between the thin wall and the active body in the microwave integrated module according to claim 2, characterized in that: A protrusion (10) is provided on the outer side of the second screw (7), and a sliding groove (11) is provided on the inner side of the compensation sleeve (3). The protrusion (10) is slidably arranged in the sliding groove (11), and the sliding groove (11) is extended along the axial diameter of the compensation sleeve (3).
5. The gap assembly structure between the thin wall and the active body in the microwave integrated module according to claim 3 or 4, characterized in that: An axial force bearing structure is provided at the end of the second screw (7).
6. The gap assembly structure between the thin wall and the active body in the microwave integrated module according to claim 5, characterized in that: At least three gap assembly structures between the thin wall (2) and the acting body (1) are provided in the same plane.
7. The gap assembly structure between the thin wall and the active body in the microwave integrated module according to claim 5, characterized in that: The through hole (5) is elliptical; the diameter of the compensation sleeve (3) is equal to the minimum inner diameter of the through hole (5).
Citation Information
Patent Citations
Thin wall and acting body gap compensation structure, locking structure and assembly structure
CN212055403U