Chip capacitor cleaning machine
Patent Information
- Application Number
- CN202522081687.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-28
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-09-28
AI Technical Summary
[0005]为了解决上述现有技术中存在的无法提高干燥效率的问题,本实用新型提供一种贴片电容清洗机,采用摆动部件结合鼓风机达到提高吹干效率的效果,其具体技术方案为:一种贴片电容清洗机,包括:超声波清洗机,所述超声波清洗机的顶部安装有顶台,所述顶台的顶部安装有升降部件,所述升降部件上安装有安装壳,所述安装壳上设置有摆动部件,所述摆动部件上挂设有清洗部件,所述摆动部件用于摆动所述清洗部件,所述清洗部件用于盛放贴片电容;所述安装壳上安装有鼓风机,所述鼓风机位于所述清洗部件的上方,所述鼓风机用于吹干所述清洗部件内的贴片电容
该贴片电容清洗机采用一体化设计,主要由清洗网篮、摆动部件、升降部件、清洗槽和鼓风机等组成。其工作流程为:首先将待清洗的贴片电容放置在特制的清洗网篮中,通过升降部件将网篮平稳下降至装有清洗液的清洗槽内;随后超声波清洗机开始工作,利用高频振动产生的空化效应,对贴片电容表面进行深度清洁;清洗完成后,升降部件将网篮提升出清洗槽,同时摆动部件带动网篮左右往复摆动,使贴片电容均匀分布;最后鼓风机启动,将高速气流均匀吹向网篮内的贴片电容,实现快速干燥。这种设计不仅提高了清洗效率,还能确保每个贴片电容都能充分接触清洗液和气流,避免因堆积造成的清洗死角,特别解决了底部贴片电容难以被吹干的问题,真正实现了清洗、干燥的一体化高效作业。
Smart Images

Figure CN224657554U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of surface mount capacitor cleaning technology, and specifically relates to a surface mount capacitor cleaning machine. Background Technology
[0002] Surface mount capacitors are leadless electronic components that utilize surface mount technology. Their core structure consists of multiple alternating layers of ceramic dielectric and metal electrode materials, sintered at high temperatures to form a single unit. Compared to traditional through-hole capacitors, they offer advantages such as smaller size, lighter weight, lower parasitic inductance, suitability for high-frequency circuits, and fully automated high-speed mounting. Initially used primarily in aerospace and consumer electronics, advancements in materials and processes have led to continuous miniaturization and improved electrical performance, making them indispensable components in smartphones, IoT devices, and automotive electronics.
[0003] Chinese Patent Publication No. CN222220409U discloses a surface mount capacitor cleaning device. Utilizing the coordinated arrangement of a water tank, water pump, water hose, spray can, spray head, first motor, threaded rod, crossbar, and cleaning brush, it can simultaneously rinse and clean the surface mount capacitors of dirt. The spray can and cleaning brush are movable, resulting in more uniform cleaning. Through the coordinated arrangement of a second motor, rotating shaft, gears, rack, drying tank, upper movable plate, lower movable plate, blower, heating plate, vent, and dust filter, the cleaned surface mount capacitors can quickly enter the drying tank for rapid drying. This device integrates cleaning and drying functions.
[0004] However, in the currently widely used chip capacitor cleaning process, ultrasonic cleaning machines have become the mainstream choice due to their high cleaning efficiency and convenient operation. While this cleaning method can quickly remove contaminants from the capacitor surface, it presents significant issues with the flow of subsequent processing. Since the cleaned chip capacitors need to be dried immediately, and the drying equipment is usually set up separately from the cleaning machine, this physically separate layout severely affects the continuity and efficiency of the entire cleaning process. More importantly, although the aforementioned cleaning device solves the problem of equipment separation, it reveals new technical defects in actual operation: because a large number of chip capacitors need to be processed simultaneously in the drying chamber, these capacitors inevitably stack, leading to uneven hot air circulation. The drying airflow from the fan cannot effectively cover all capacitor surfaces, thus significantly reducing overall drying efficiency and extending the production cycle. Utility Model Content
[0005] To address the problem of insufficient drying efficiency in the existing technology, this utility model provides a chip capacitor cleaning machine that uses a swinging component combined with a blower to improve drying efficiency. The specific technical solution is as follows: A chip capacitor cleaning machine includes an ultrasonic cleaner. A top platform is mounted on the top of the ultrasonic cleaner. A lifting component is mounted on the top of the top platform. A mounting shell is mounted on the lifting component. A swinging component is mounted on the mounting shell. A cleaning component is hung on the swinging component. The swinging component is used to swing the cleaning component, which is used to hold chip capacitors. A blower is mounted on the mounting shell, located above the cleaning component, and is used to dry the chip capacitors inside the cleaning component.
[0006] Preferably, a carrier plate is mounted on the mounting shell, a blower is mounted on the top of the carrier plate, and an air outlet shell is mounted on the bottom of the carrier plate, with the blower communicating with the air outlet shell.
[0007] Preferably, the ultrasonic cleaner is equipped with support bases at all four corners of its bottom, and the support bases are used to support the ultrasonic cleaner.
[0008] Preferably, the lifting component includes: a column and a sliding shell, the column is installed on the top of the top platform, the sliding shell is slidably fitted on the column, and the mounting shell is installed on the sliding shell.
[0009] Preferably, a mounting plate is installed on the top of the top platform, and a cable chain is installed between the mounting plate and the sliding shell, the cable chain being used for wiring.
[0010] Preferably, a first side groove is formed on one inner wall of the sliding shell, a slide rail is installed on one side of the column, and rolling wheels are installed on both inner walls of the first side groove, with the rolling wheels rolling in contact with the slide rail.
[0011] Preferably, a second side groove is formed on the inner wall of the other side of the sliding shell, a fixed rack is installed on the other side of the column, a motor is installed on one side of the sliding shell, the output end of the motor is connected to a first rotating shaft, one end of the first rotating shaft extends into the second side groove, and a first gear is fixedly fitted on the extended end of the first rotating shaft, and the first gear meshes with the fixed rack.
[0012] Preferably, the swing component includes: a hydraulic cylinder, an output rod, a sliding rack, a second rotating shaft, a second gear, and a double insert rod. The hydraulic cylinder is mounted on the top of the mounting housing. An output rod is mounted on the output end of the hydraulic cylinder. The bottom end of the output rod slides into the mounting housing. A sliding rack is mounted on the bottom end of the output rod. A second rotating shaft is rotatably connected inside the mounting housing. One end of the second rotating shaft rotatably extends out of the mounting housing. A double insert rod is mounted on the extended end of the second rotating shaft. A second gear is fixedly fitted on the outer wall of the second rotating shaft. The second gear is located inside the mounting housing. The sliding rack meshes with the second gear.
[0013] In addition, the chip capacitor cleaning machine in the above-mentioned technical solution provided by this utility model may also have the following features: the cleaning component includes: a cleaning basket, a lifting rod, an opening and a limiting seat, two lifting rods are symmetrically installed on the top of the cleaning basket, an opening is opened on the rear side of the cleaning basket, and two sets of limiting seats are symmetrically installed on the inner walls of both sides of the cleaning basket, and the opening is used for the double insertion rods to pass through.
[0014] In the above technical solution, the limiting seat is used to insert the double insertion rod.
[0015] The advantages of this surface mount capacitor cleaning machine compared with the prior art are as follows: This surface mount capacitor cleaning machine features an integrated design, primarily composed of a cleaning basket, a swinging mechanism, a lifting mechanism, a cleaning tank, and a blower. Its workflow is as follows: First, the surface mount capacitors to be cleaned are placed in a specially designed cleaning basket. The lifting mechanism then smoothly lowers the basket into the cleaning tank containing cleaning fluid. Next, the ultrasonic cleaner begins operation, utilizing the cavitation effect generated by high-frequency vibration to deeply clean the surface of the capacitors. After cleaning, the lifting mechanism lifts the basket out of the cleaning tank, while the swinging mechanism causes the basket to swing back and forth, ensuring even distribution of the capacitors. Finally, the blower activates, blowing high-speed airflow evenly onto the capacitors in the basket for rapid drying. This design not only improves cleaning efficiency but also ensures that each capacitor fully contacts the cleaning fluid and airflow, avoiding cleaning dead zones caused by accumulation. It particularly solves the problem of bottom-mount capacitors being difficult to dry, truly achieving integrated and efficient cleaning and drying operations. Attached Figure Description
[0016] Figure 1 This is a front view schematic diagram of the chip capacitor cleaning machine provided by this utility model; Figure 2 A side view of the chip capacitor cleaning machine provided by this utility model; Figure 3 A three-dimensional structural diagram of the cleaning component provided by this utility model; Figure 4A side sectional view of the mounting housing provided by this utility model; Figure 5 A top sectional view of the lifting component provided by this utility model; in, Figures 1 to 5 The reference numerals and component names in the attached drawings are as follows: 1. Ultrasonic cleaner, 2. Top platform, 3. Lifting component, 4. Mounting housing, 5. Swinging component, 6. Cleaning component, 7. Carrier plate, 8. Blower, 9. Air outlet housing, 10. Support base, 11. Mounting plate, 12. Cable chain, 31. Column, 32. Sliding housing, 33. First side groove, 34. Slide rail, 35. Rolling wheel, 36. Second side groove, 37. Fixed rack, 38. Motor, 39. First rotating shaft, 310. First gear, 51. Hydraulic cylinder, 52. Output rod, 53. Sliding rack, 54. Slide groove, 55. Second rotating shaft, 56. Second gear, 57. Double insert rod, 61. Cleaning basket, 62. Lifting rod, 63. Opening, 64. Limiting seat. Detailed Implementation
[0017] The following are specific implementation cases and appendices. Figures 1-5 This invention provides a further description of the present invention, but it is not limited to these embodiments. The present invention provides a technical solution: a chip capacitor cleaning machine, which mainly consists of an ultrasonic cleaner 1, with a reasonable main structure and complete functions. Specifically, a stable top platform 2 is fixedly installed at the top platform of the ultrasonic cleaner 1, serving as the supporting foundation for the entire lifting system. A precision lifting component 3 is vertically installed at the center of the upper surface of the top platform 2. This lifting component 3 uses common lifting mechanisms such as electric push rods or hydraulic cylinders, enabling smooth up-and-down movement. A cuboid mounting shell 4 is fixedly connected to the movable end of the lifting component 3. This mounting shell 4 is made of metal and has sufficient structural strength.
[0018] Of particular note is a swinging component 5 mounted on the front side of the mounting housing 4. This swinging component 5 is driven by a motor to swing back and forth. A specially designed cleaning component 6 is suspended from the lower end of the swinging component 5. This cleaning component 6 typically employs a mesh structure, which effectively holds the surface-mount capacitors without obstructing the flow of cleaning fluid. When the swinging component 5 is in operation, it drives the cleaning component 6 to swing rhythmically. This oscillating motion enhances the cleaning effect, ensuring that the surface of the surface-mount capacitors is thoroughly cleaned.
[0019] In addition, a moderately powerful blower 8 is installed on top of the mounting housing 4, located approximately 20-30 cm directly above the cleaning component 6. After cleaning, the blower 8 can blow strong hot air downwards, quickly drying the moisture on the surface of the surface-mount capacitors contained in the cleaning component 6, greatly improving the efficiency of the entire cleaning and drying process. All components of the entire device work in coordination, forming a complete surface-mount capacitor cleaning and drying system.
[0020] As a preferred option, furthermore, in the main structure of the equipment, the mounting shell 4 serves as a key supporting component, with a carrier plate 7 securely mounted on top. This carrier plate 7 is made of high-strength material, and a blower 8, the core power unit, is precisely mounted at its top to generate a strong airflow. Simultaneously, an outlet shell 9 is symmetrically installed at the bottom of the carrier plate 7. This precisely designed airflow guide is seamlessly connected to the blower 8 through an internal channel. The airflow generated by the blower 8 flows smoothly to the outlet shell 9 through a specially designed internal passage, thus forming a complete airflow circulation system. This structural design ensures both the stability of the equipment operation and the high efficiency of airflow delivery.
[0021] As a preferred option, the ultrasonic cleaner 1 features a rationally designed and stable bottom structure, with symmetrical support bases 10 installed at each of the four corners. These support bases 10 are made of high-quality materials, possessing reliable load-bearing capacity and wear resistance, providing stable support for the ultrasonic cleaner 1. The installation positions of the support bases 10 are precisely calculated to ensure the equipment remains level during operation, preventing vibration or noise caused by imbalance. Furthermore, the design of the support bases 10 incorporates anti-slip features, making the ultrasonic cleaner 1 safer and more reliable to use. This bottom support structure not only ensures the stability of the equipment but also effectively reduces friction between the equipment and the work surface, extending the equipment's service life.
[0022] As a preferred embodiment, the lifting component 3 further comprises two main parts: a column 31 and a sliding shell 32. The column 31 is vertically fixed to the top of the platform 2, serving as the main support for the entire lifting mechanism. The sliding shell 32 is precisely fitted onto the outside of the column 31, allowing for smooth up-and-down sliding along the axial direction of the column 31. To ensure stability and accuracy during the sliding process, a high-precision guide structure is used between the sliding shell 32 and the column 31. A mounting shell 4 is specifically designed and installed on the upper part of the sliding shell 32 to secure other components. This mounting shell 4 is rigidly connected to the sliding shell 32, ensuring no relative displacement occurs during lifting. The overall structural design of the lifting component 3 ensures both flexibility of movement and stability of support.
[0023] As a preferred option, the upper structure of the top platform 2 is further designed with a dedicated mounting plate 11. This mounting plate 11 is made of high-strength material and is firmly connected to the main frame of the top platform 2 by bolts. Between the mounting plate 11 and the movable sliding shell 32, a cable chain 12 made of engineering plastic is specially configured. This cable chain 12 adopts a segmented hinge structure design, possessing excellent bending performance and wear resistance. The main function of the cable chain 12 is to provide an orderly routing channel for cables, air pipes, and other pipelines inside the equipment. This effectively protects the pipelines from mechanical damage and ensures that the pipelines remain neatly arranged during equipment movement, avoiding tangling or interference. This arrangement ensures the reliability of equipment operation and facilitates daily maintenance and repair work.
[0024] As a preferred embodiment, a first side groove 33 is precisely machined along its length on one inner wall of the sliding housing 32. This groove has an elongated, recessed structure. A slide rail 34, made of wear-resistant material, is fixedly mounted on one outer surface of the corresponding column 31. The slide rail 34 matches the cross-sectional shape of the first side groove 33. Specifically, multiple rolling wheels 35 are symmetrically mounted on the inner walls of both sides of the first side groove 33. These rolling wheels 35 are rotatably fixed to the groove wall by bearings. When the sliding housing 32 moves relative to the column 31, the rolling wheels 35 roll smoothly along the surface of the slide rail 34, forming rolling contact. This design effectively reduces frictional resistance and makes the sliding process smoother. The contact surfaces of the rolling wheels 35 and the slide rail 34 are precision machined to ensure a tight fit while maintaining an appropriate rolling clearance, ensuring both flexibility of movement and avoiding excessive backlash.
[0025] As a preferred embodiment, a second side groove 36 is machined along the length of the inner wall of the sliding housing 32. This groove has a long strip structure and forms an integral design with the inner wall of the sliding housing 32. Meanwhile, a fixed rack 37 is bolted to the outer wall of the column 31. This rack is made of high-strength alloy steel, and its teeth are precision machined. A motor 38, a DC servo motor, is mounted on one end of the sliding housing 32 and is rigidly connected to the sliding housing 32 via a flange. The output shaft of the motor 38 is coaxially connected to the first rotating shaft 39 via a coupling. The other end of the first rotating shaft 39 passes through the side wall of the sliding housing 32 and extends into the second side groove 36. At the extended end of the first rotating shaft 39, a first gear 310 is fitted and fixed using an interference fit. The module of this gear perfectly matches that of the fixed rack 37. When the motor 38 is running, the first gear 310 and the fixed rack 37 form a stable meshing transmission relationship, thereby realizing the precise linear movement of the sliding shell 32 along the column 31.
[0026] As a preferred embodiment, the swing component 5 is further composed mainly of a hydraulic drive mechanism and a gear transmission mechanism, specifically including the following key components: a hydraulic cylinder 51 is vertically mounted on the top of the mounting housing 4 as a power source; an output rod 52 serves as the actuating component of the hydraulic cylinder 51, with one end rigidly connected to the output end of the hydraulic cylinder 51, and the other end extending downward and sliding through the top opening of the mounting housing 4; a sliding rack 53 is fixedly mounted at the end of the output rod 52, which can reciprocate vertically inside the mounting housing 4; a second rotating shaft 55 is also provided inside the mounting housing 4. The shaft is rotatably connected to the mounting housing 4 via bearings, with one end extending outside the mounting housing 4. A double insert rod 57 is fixedly installed at the exposed end of the second rotating shaft 55 for connection with other mechanisms. At the same time, a second gear 56 is fixedly fitted inside the mounting housing 4 of the second rotating shaft 55, which forms a precise meshing relationship with the sliding rack 53. When the hydraulic cylinder 51 drives the output rod 52 to move up and down, the linear motion can be converted into rotational motion through the meshing transmission between the sliding rack 53 and the second gear 56, thereby driving the second rotating shaft 55 and the double insert rod 57 to achieve the swing function.
[0027] As a preferred embodiment, the cleaning component 6 further comprises four parts: a cleaning basket 61, lifting rods 62, an opening 63, and limiting seats 64. The cleaning basket 61, as the core component, has two symmetrically arranged lifting rods 62 on its top for easy operation. These two lifting rods 62 are evenly distributed on both sides of the top of the basket, facilitating gripping and movement by the user. At the rear of the cleaning basket 61, an opening 63 is specifically designed. The size of this opening 63 is precisely calculated to perfectly accommodate the passage of the double insertion rods 57. Furthermore, two sets of sturdy limiting seats 64 are symmetrically installed on the inner walls of both sides of the cleaning basket 61. These limiting seats 64 not only provide fixation but also ensure the stability of the double insertion rods 57 during insertion. Each limiting seat 64 has an opening in the center for inserting the double insertion rods 57. Each set of limiting seats 64 consists of two such seats. The coordinated design of the opening 63 and the limiting seat 64 allows the double insertion rod 57 to pass smoothly through the opening 63 and be firmly fixed in the limiting seat 64, thereby ensuring the stability and reliability of the entire cleaning process.
[0028] The ultrasonic cleaner, blower, motor, and hydraulic cylinder in this case are existing technologies, and any ultrasonic cleaner, blower, motor, and hydraulic cylinder that meet the requirements of this case are acceptable.
[0029] The specific types or circuit structures of the controllers for the electrical components mentioned in this application, as well as the circuit connection relationships between the electrical components and the accurate coordinated control of multiple power components, are all prior art. Therefore, the above content will not be elaborated in this application.
[0030] Working Principle: All electrical components described in this application are externally connected to a power supply and control switch during use. After installation, first check the installation, fixation, and safety precautions before use. During operation, first, neatly place the surface-mount capacitors to be cleaned into the dedicated cleaning basket 61, ensuring each capacitor is cleaned evenly. Next, accurately align the cleverly designed opening 63 of the cleaning basket 61 with the slots of the double insert rods 57. Simultaneously, securely insert both ends of the double insert rods 57 into the limiting seats 64 on both sides of the cleaning tank. This double fixing method ensures the cleaning basket 61 is firmly suspended on the double insert rods 57, preventing displacement during cleaning. Before formal use, inject an appropriate amount of dedicated cleaning fluid into the cleaning tank of the ultrasonic cleaner. Controlling the liquid level is crucial; it is generally recommended to adjust the liquid level to completely submerge the vibrator or completely cover all workpieces. It is essential to ensure the liquid level does not exceed the maximum scale line marked on the cleaning tank to prevent overflow. For workpieces with a large amount of visible dirt, stubborn dust, or thick oil stains on their surface, it is recommended to pre-rinse or soak them for an appropriate time before the formal ultrasonic cleaning to improve cleaning effect and efficiency. This can effectively remove most of the visible contaminants and create better conditions for subsequent deep cleaning. Place the pre-treated workpieces into a specially designed cleaning basket 61 or a similar cleaning container, and then carefully place them in the appropriate position in the cleaning tank. When setting the cleaning parameters, it is necessary to comprehensively consider factors such as the material characteristics of the workpieces, the specific type of dirt, and the degree of contamination, and scientifically and rationally adjust various parameters of the ultrasonic cleaner, including but not limited to cleaning time, ultrasonic power, and operating temperature. The placement of the workpieces is also very important. They should be evenly distributed to avoid direct contact between the workpieces and the bottom and side walls of the cleaning tank. At the same time, it is necessary to ensure that the ultrasonic energy can be evenly applied to the surface of each workpiece. Once preparations are complete, power is turned on the motor 38. The motor 38 begins to run, driving the first rotating shaft 39 and the first gear 310 connected to it to rotate synchronously. Since the first gear 310 meshes with the fixed rack 37, this transmission mechanism drives the sliding shell 32 to slide smoothly up and down along the column 31, thereby driving the mounting shell 4 to move vertically, ultimately lowering the suspended cleaning basket 61 slowly into the cleaning tank of the ultrasonic cleaner 1. After confirming that the cleaning basket 61 is in place, the start button on the control panel is pressed to begin the cleaning program. During the cleaning process, the hydraulic cylinder 51 needs to be activated at appropriate times. The hydraulic cylinder 51 drives the output rod 52 to extend and retract, adjusting the position of the valve core by precisely controlling the energization and de-energization of the electromagnet, thereby achieving flexible switching of the oil circuit direction.After the preset cleaning time is completed, the power to the ultrasonic generator must first be turned off. Then, the motor 38 is restarted to drive the first gear 310 to rotate in the opposite direction. Through the same transmission mechanism, the mounting shell 4 is moved upward, smoothly lifting the cleaning basket 61 out of the cleaning tank. Subsequently, the blower 8 installed above the equipment is started to force-dry the cleaned chip capacitors. During the drying process, the hydraulic cylinder 51 is started simultaneously to make the cleaning basket 61 swing left and right in a regular manner. This allows the chip capacitors that were originally pressed at the bottom to be fully exposed to the airflow, ensuring that all capacitors can complete the drying process quickly and evenly.
[0031] In the description of this utility model, the term "multiple" refers to two or more. Unless otherwise explicitly defined, the terms "upper," "lower," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing 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, and therefore should not be construed as a limitation of this utility model. The terms "connection," "installation," "fixing," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a direct connection or an indirect connection through an intermediate medium. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.
[0032] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A surface mount capacitor cleaning machine, comprising: An ultrasonic cleaner (1) is characterized in that a top platform (2) is installed on the top of the ultrasonic cleaner (1), a lifting component (3) is installed on the top of the top platform (2), a mounting shell (4) is installed on the lifting component (3), a swinging component (5) is provided on the mounting shell (4), a cleaning component (6) is hung on the swinging component (5), the swinging component (5) is used to swing the cleaning component (6), the cleaning component (6) is used to hold chip capacitors; a blower (8) is installed on the mounting shell (4), the blower (8) is located above the cleaning component (6), the blower (8) is used to dry the chip capacitors in the cleaning component (6).
2. The chip capacitor cleaning machine according to claim 1, characterized in that, A carrier plate (7) is installed on the mounting shell (4). A blower (8) is installed on the top of the carrier plate (7). An air outlet shell (9) is installed on the bottom of the carrier plate (7). The blower (8) and the air outlet shell (9) are connected.
3. The chip capacitor cleaning machine according to claim 1, characterized in that, The ultrasonic cleaner (1) is equipped with support bases (10) at the four corners of its bottom, and the support bases (10) are used to support the ultrasonic cleaner (1).
4. The chip capacitor cleaning machine according to claim 1, characterized in that, The lifting component (3) includes: a column (31) and a sliding shell (32). The column (31) is installed on the top of the platform (2). The sliding shell (32) is slidably fitted on the column (31). The mounting shell (4) is installed on the sliding shell (32).
5. The chip capacitor cleaning machine according to claim 4, characterized in that, A mounting plate (11) is installed on the top of the top platform (2), and a drag chain (12) is installed between the mounting plate (11) and the sliding shell (32). The drag chain (12) is used for wiring.
6. The chip capacitor cleaning machine according to claim 4, characterized in that, A first side groove (33) is provided on one side inner wall of the sliding shell (32), and a slide rail (34) is installed on one side of the column (31). Rolling wheels (35) are installed on both sides inner walls of the first side groove (33), and the rolling wheels (35) roll and fit against the slide rail (34).
7. The chip capacitor cleaning machine according to claim 6, characterized in that, A second side groove (36) is provided on the inner wall of the other side of the sliding shell (32). A fixed rack (37) is installed on the other side of the column (31). A motor (38) is installed on one side of the sliding shell (32). The output end of the motor (38) is connected to a first rotating shaft (39). One end of the first rotating shaft (39) extends into the second side groove (36). A first gear (310) is fixedly fitted on the extended end of the first rotating shaft (39). The first gear (310) meshes with the fixed rack (37).
8. The chip capacitor cleaning machine according to claim 1, characterized in that, The swing component (5) includes: a hydraulic cylinder (51), an output rod (52), a sliding rack (53), a second rotating shaft (55), a second gear (56), and a double insert rod (57). The top of the mounting housing (4) is equipped with a hydraulic cylinder (51). The output end of the hydraulic cylinder (51) is equipped with an output rod (52). The bottom end of the output rod (52) slides into the mounting housing (4). The bottom end of the output rod (52) is equipped with a sliding rack (53). The second rotating shaft (55) is rotatably connected inside the mounting housing (4). One end of the second rotating shaft (55) rotatably extends out of the mounting housing (4). The extended end of the second rotating shaft (55) is equipped with a double insert rod (57). The second gear (56) is fixedly fitted on the outer wall of the second rotating shaft (55). The second gear (56) is located inside the mounting housing (4). The sliding rack (53) meshes with the second gear (56).
9. The chip capacitor cleaning machine according to claim 8, characterized in that, The cleaning component (6) includes: a cleaning basket (61), a lifting rod (62), an opening (63), and a limiting seat (64). Two lifting rods (62) are symmetrically installed on the top of the cleaning basket (61). An opening (63) is provided on the rear side of the cleaning basket (61). Two sets of limiting seats (64) are symmetrically installed on the inner walls of both sides of the cleaning basket (61). The opening (63) is used to pass through the double insert rod (57), and the limiting seat (64) is used to insert the double insert rod (57).
Citation Information
Patent Citations
Chip capacitor cleaning equipment
CN222220409U