Lens automatic Ass machine material receiving mechanism
By designing an automatic lens receiving mechanism with conversion components and a hydraulic negative pressure system, the problem of high-cost receiving mechanisms was solved, realizing automated collection and fixed-point stacking of lenses, reducing equipment costs and avoiding manual contamination.
Patent Information
- Application Number
- CN202520048897.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-09
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-01-09
AI Technical Summary
Existing automated lens receiving mechanisms are costly and difficult for small businesses to afford, and there is a lack of simple and effective solutions for picking up and sorting finished lenses.
An automatic lens receiving mechanism for an ASMS lens machine was designed, comprising a conversion component, a storage platform, and a conveyor belt. The mechanism utilizes a hydraulic and negative pressure pump system to achieve automated collection and fixed-point stacking of lenses. Through the cooperation of a power motor and a movable disc, the horizontal and vertical positions of the lenses can be adjusted in real time.
It enables automated collection and fixed-point stacking of lenses, reducing equipment costs while avoiding contamination of lenses by manual operation and improving material handling efficiency.
Smart Images

Figure CN223722144U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of lens manufacturing technology, specifically to an automatic lens receiving mechanism for an AS S machine. Background Technology
[0002] An automated lens cutting machine is a specialized piece of equipment for processing and handling optical lenses. It automates a series of complex processes, including lens cutting, grinding, and polishing. The receiving mechanism is a crucial component of this equipment, responsible for collecting and organizing the processed lenses for subsequent packaging or transportation.
[0003] Existing automated lens receiving mechanisms typically employ a complex robotic arm and suction cup system to remove finished lenses from the machine's worktable and neatly stack them into designated containers or trays. However, this type of process is relatively expensive, making it unaffordable for small businesses and failing to meet current needs. Therefore, this application provides an automated lens receiving mechanism for an automated lens receiving machine. Utility Model Content
[0004] To solve the above-mentioned technical problems, this utility model proposes an automatic lens receiving mechanism for an ASMS lens machine that is simple in structure, easy to operate, and facilitates the unloading and overall stacking of finished lens products.
[0005] The technical solution of this utility model is implemented as follows:
[0006] An automatic lens receiving mechanism for an ASMS lens processing machine includes a conversion assembly, a storage platform, and a conveyor belt. The conversion assembly is installed at the midpoint between the storage platform and the conveyor belt. The conversion assembly includes a mounting housing, a power motor, a movable disc, and a top platform. Lens bodies are placed outside the storage platform and the conveyor belt. The mechanism also includes:
[0007] A circulating material storage assembly is located on the top of the top platform. The circulating material storage assembly includes a hydraulic pump A, a hydraulic sleeve, a plug sleeve, a negative pressure pump, and a hydraulic pump B. A connecting base is fixedly connected to the outside of the plug sleeve. The plug sleeve and the hydraulic sleeve are sleeved together and extend outward. A rotating base of different sizes is fixedly connected to the bottom of the hydraulic pump A. A movable base is fixedly connected to the outside of the negative pressure pump.
[0008] Furthermore, the mounting shell is placed outside the ground, the power motor is installed inside the mounting shell, the movable plate is movably connected to the outside of the mounting shell, the mounting plate is detachably connected to the outside of the movable plate, and the top platform is fixedly connected to the outside of the mounting plate.
[0009] Further, the mounting shell exterior is detachably connected with fixing bolts, the fixing bolts are multiple groups and are evenly distributed on the mounting shell exterior, the mounting shell exterior is provided with an embedded groove, the movable disc exterior is movably connected with a lubricating ring, the power motor exterior is fixedly connected with an embedded end, and the top end table exterior is fixedly connected with a fixed base.
[0010] Further, the embedded groove is embeddedly connected with the lubricating ring, the movable disc is embeddedly connected with the embedded end, and the fixed base is multiple groups and is evenly distributed on the top end table exterior.
[0011] Further, the hydraulic pump A is fixedly connected on the fixed base exterior, the hydraulic sleeve is fixedly connected on the hydraulic pump A exterior, the plug sleeve is detachably connected in the hydraulic sleeve, the negative pressure pump is detachably connected on the connecting base exterior through the movable base, and the hydraulic pump B is fixedly connected on the mounting disc exterior.
[0012] Further, the negative pressure pump is externally provided with a pick-up suction disc, the pick-up suction disc is in contact with the lens body, and the hydraulic pump B is movably connected with the threaded base near the negative pressure pump side.
[0013] Further, the circulating storage assembly is multiple groups and is circumferentially distributed on the top end table exterior.
[0014] Further, the fixed base and the movable base are movably connected with elastic belts, the elastic belts are two groups and are symmetrically distributed on the circulating storage assembly two sides.
[0015] The utility model has the advantages of the following beneficial effects:
[0016] 1. By setting up the conversion assembly, the device operation support arm can reach the storage table and the conveying belt through rotation, and the horizontal and vertical positions can be adjusted in real time, and the automatic lens collecting is realized through simple structure and low cost.
[0017] 2. By setting up the storage table, the device can realize the fixed-point stacking of the grabbed lens through the real-time adjustment of the horizontal and vertical positions, increase the pick-up effect, and avoid the pollution of manual handling to the lens. DRAWINGS
[0018] Figure 1 It is the overall appearance schematic view of the utility model;
[0019] Figure 2 It is the internal structure schematic view of the utility model;
[0020] Figure 3 It is the internal structure explosion drawing of the conversion assembly of the utility model;
[0021] Figure 4It is the whole structure explosion map of the circulating storage assembly of the utility model;
[0022] Figure 5 It is another view drawing of the utility model Figure 4 .
[0023] 1, conversion assembly; 101, installation shell; 102, fixed bolt; 103, embedded groove; 104, power motor; 105, embedded end; 106, movable disc; 107, lubrication ring; 108, installation disc; 109, top end table; 110, fixed base; 2, circulating storage assembly; 201, hydraulic pump A; 202, hydraulic sleeve; 203, plug sleeve; 204, connecting base; 205, negative pressure pump; 206, pick-up suction cup; 207, movable base; 208, hydraulic pump B; 209, screw base; 210, elastic belt; 3, storage table; 4, conveying belt; 5, lens main body. DETAILED DESCRIPTION
[0024] The technical scheme in the embodiments of the utility model will be described clearly and completely below, obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without creative labor belong to the protection scope of the utility model.
[0025] Embodiment 1
[0026] Please see Figures 1 to 5 , the utility model provides a kind of lens automatic as machine material receiving mechanism, including conversion assembly 1, storage table 3 and conveying belt 4, conversion assembly 1 is installed in the midpoint between storage table 3 and conveying belt 4, conversion assembly 1 includes installation shell 101, power motor 104, movable disc 106 and top end table 109, storage table 3 and conveying belt 4 are placed with lens main body 5 outside, further include:
[0027] Circulating storage assembly 2, circulating storage assembly 2 is arranged at the top of top end table 109, circulating storage assembly 2 includes hydraulic pump A 201, hydraulic sleeve 202, plug sleeve 203, negative pressure pump 205 and hydraulic pump B 208, plug sleeve 203 is fixedly connected with connecting base 204 outside, plug sleeve 203 and hydraulic sleeve 202 are mutually sleeved and extend outward, the bottom of hydraulic pump A 201 is fixedly connected with different screw base 209, negative pressure pump 205 is fixedly connected with movable base 207 outside.
[0028] Specifically, before the operation, the device is placed on one side of the conveying belt 4, at this time the negative pressure pump 205 is in the initial shortest position, and the circumferential curve of the negative pressure pump 205 is tangent to the central axis of the conveying belt 4, then the edge of the storage table 3 is aligned with the negative pressure pump 205 on the opposite side, and then the material collecting operation can be performed.
[0029] Embodiment 2
[0030] Please refer to Figures 1 to 5 In the embodiment 1, the installation shell 101 is placed outside the ground, the power motor 104 is installed inside the installation shell 101, the movable disc 106 is movably connected outside the installation shell 101, the mounting disc 108 is detachably connected outside the movable disc 106, the top table 109 is fixedly connected outside the mounting disc 108, the fixed bolt 102 is detachably connected outside the installation shell 101, the fixed bolt 102 has multiple groups and is evenly distributed outside the installation shell 101, the fitting groove 103 is formed outside the installation shell 101, the lubricating ring 107 is movably connected outside the movable disc 106, the fitting end 105 is fixedly connected outside the power motor 104, the fixed base 110 is fixedly connected outside the top table 109, the fitting groove 103 is fittedly connected with the lubricating ring 107, the movable disc 106 is fittedly connected with the fitting end 105, and the fixed base 110 has multiple groups and is evenly distributed outside the top table 109.
[0031] By being so arranged, when the material collecting operation is performed, the power motor 104 is started to drive the movable disc 106 to rotate, the movable disc 106 drives the top table 109 to rotate as a whole, so as to drive the storage table 3 to move back and forth between the storage table 3 and the conveying belt 4 in a circular motion, the negative pressure pump 205 is started to form a negative pressure channel, and the picking suction cup 206 moves the lens body 5 from the conveying belt 4 to the outside of the storage table 3, so as to complete the transportation of the lens body 5.
[0032] Embodiment 3
[0033] Please refer to Figures 1 to 5 In the embodiment 2, the hydraulic pump A 201 is fixedly connected outside the fixed base 110, the hydraulic sleeve 202 is fixedly connected outside the hydraulic pump A 201, the plug sleeve 203 is detachably connected inside the hydraulic sleeve 202, the negative pressure pump 205 is detachably connected outside the connecting base 204 through the movable base 207, the hydraulic pump B 208 is fixedly connected outside the mounting disc 108, the negative pressure pump 205 is provided with the picking suction cup 206 outside, the picking suction cup 206 is in contact with the lens body 5, the hydraulic pump B 208 is movably connected with the threaded base 209 on the side close to the negative pressure pump 205, the circulating storage assembly 2 has multiple groups and is circularly distributed outside the top table 109, the elastic belt 210 is movably connected between the fixed base 110 and the movable base 207, and the elastic belt 210 has two groups and is symmetrically distributed on both sides of the circulating storage assembly 2.
[0034] By making the above settings, during the carrying process, by inputting the length, width and height of the storage table 3 in advance, when the lens body 5 is carried outside the storage table 3, the hydraulic pump A 201 is pressurized and the plug sleeve 203 is pushed outward, thereby extending the working range, the hydraulic pump B 208 is started to increase the elevation angle of the hydraulic pump A 201, and the circulating storage assembly 2 is circularly moved along the fixed base 110, thereby adjusting the vertical working range. Through the cooperation of the two, the circulating storage assembly 2 can uniformly stack the lens body 5 outside the storage table 3, and avoid manual carrying pollution of the lens.
[0035] The above only describes the preferred embodiments of the present application and is not intended to limit the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.
Claims
1. A lens automatic edger receiving mechanism, comprising a conversion assembly (1), a storage table (3) and a conveying belt (4), characterized in that, The conversion assembly (1) is installed at the midpoint between the storage table (3) and the conveying belt (4), the conversion assembly (1) comprises a mounting shell (101), a power motor (104), a movable disc (106) and a top table (109), the storage table (3) and the conveying belt (4) are externally provided with a lens body (5), further comprising: A circulating storage assembly (2) is arranged on the top of the top table (109), the circulating storage assembly (2) comprises a hydraulic pump A (201), a hydraulic sleeve (202), a plug sleeve (203), a negative pressure pump (205) and a hydraulic pump B (208), the plug sleeve (203) is externally fixedly connected with a connecting base (204), the plug sleeve (203) and the hydraulic sleeve (202) are mutually sleeved and extend outward, the bottom of the hydraulic pump A (201) is fixedly connected with a screw base (209) of different sizes, and the negative pressure pump (205) is externally fixedly connected with a movable base (207).
2. The automatic lens edger material receiving mechanism of claim 1, wherein, The mounting shell (101) is arranged outside the ground, the power motor (104) is installed inside the mounting shell (101), the movable disc (106) is movably connected outside the mounting shell (101), the movable disc (106) is detachably connected with a mounting disc (108) outside, and the top table (109) is fixedly connected outside the mounting disc (108).
3. The automatic lens edger material receiving mechanism of claim 1, wherein, A plurality of fixed bolts (102) are detachably connected outside the mounting shell (101) and evenly distributed outside the mounting shell (101), a matching groove (103) is formed outside the mounting shell (101), a lubricating ring (107) is movably connected outside the movable disc (106), a matching end (105) is fixedly connected outside the power motor (104), and a fixed base (110) is fixedly connected outside the top table (109).
4. The automatic lens edger material receiving mechanism of claim 3, wherein, The matching groove (103) and the lubricating ring (107) are matchingly connected, the movable disc (106) and the matching end (105) are matchingly connected, and a plurality of fixed bases (110) are evenly distributed outside the top table (109).
5. The automatic lens edger material receiving mechanism of claim 3, wherein, The hydraulic pump A (201) is fixedly connected outside the fixed base (110), the hydraulic sleeve (202) is fixedly connected outside the hydraulic pump A (201), the plug sleeve (203) is detachably connected inside the hydraulic sleeve (202), the negative pressure pump (205) is detachably connected outside the connecting base (204) through the movable base (207), and the hydraulic pump B (208) is fixedly connected outside the mounting disc (108).
6. The automatic lens edger material collection mechanism of claim 5, wherein, The negative pressure pump (205) is externally provided with a piece taking suction disc (206), the piece taking suction disc (206) is in contact with the lens body (5), and the hydraulic pump B (208) is movably connected with the screw base (209) on the side close to the negative pressure pump (205).
7. The automatic lens edger material receiving mechanism of claim 1, wherein, A plurality of circulating storage assemblies (2) are circumferentially distributed outside the top table (109).
8. The automatic lens edger material receiving mechanism of claim 3, wherein, The elastic belts (210) are movably connected between the fixed base (110) and the movable base (207), and the elastic belts (210) are two groups and symmetrically distributed on two sides of the circulating storage assembly (2).