Test paper bottling mechanism
By designing the test paper bottling mechanism of the inclined track and flip mechanism, the problem of low manual bottling efficiency is solved, automatic bottling is realized, bottling efficiency is improved and the probability of error loading is reduced.
Patent Information
- Application Number
- CN202422255936.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-09-14
AI Technical Summary
In the production of existing test strips, manual bottling is inefficient and the number of bottling cannot be quickly and effectively controlled.
A test paper bottling mechanism including an inclined track, a flip mechanism and a side push loading mechanism is designed. The bottle body is moved without power through the inclined track, and the weighing mechanism and a flip mechanism are used to realize automatic bottling, and the test paper is automatically loaded with a side push mechanism and a load transfer mechanism.
It realizes automatic bottling of test strips, improves bottling efficiency, reduces the probability of loading errors, and has a compact and reasonable overall structure and good practicality.
Smart Images

Figure CN223059380U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of test strip production equipment, in particular to a bottle loading mechanism for test strips. Background Art
[0002] Test strips are widely used and come in various types, such as immunoassay test strips, electrochemical test strips, dry chemical test strips, etc.
[0003] Since test strips are generally slender, for the convenience of test strip processing, large long test strips are usually made first, and then the large long test strips are cut. After being cut into test strips of a set specification size, they are collected.
[0004] In the existing production process, the cut test strips are generally loaded into bottles manually. Manual bottle loading is relatively slow, the work efficiency is relatively low, and the number of bottles loaded each time cannot be effectively and quickly controlled. Content of the Utility Model
[0005] To solve the above problems, the present application provides a bottle loading mechanism for test strips with a reasonable structure, so as to realize the automatic bottle loading of test strips. The overall structure is compact, reasonable and ingenious, effectively ensuring the bottle loading efficiency and effect, and having good practicability.
[0006] The technical solution adopted by the utility model is as follows:
[0007] A bottle loading mechanism for test strips includes a working platform, on which an inclined track is arranged. The inclined track is used for the bottle body to move from top to bottom in a horizontal lying position; the upper end of the inclined track is connected to an external bottle body arranging and discharging track, and the lower end of the inclined track is connected to a flipping mechanism; a side pushing and loading mechanism is arranged in the middle of the inclined track, and the test strip is laterally loaded into the bottle body by the side pushing and loading mechanism.
[0008] As a further improvement of the above technical solution:
[0009] A weighing mechanism I is arranged on the inclined track above the side pushing and loading mechanism to weigh each empty bottle body one by one.
[0010] A lifting block is movably arranged on the inclined bottom surface of the inclined track. The lifting block is accommodated inside a U-shaped seat. The inner walls of both sides of the U-shaped seat extend inwards to form a supporting surface. The bottle body is supported on the lifting block or the supporting surface of the U-shaped seat; the U-shaped seat is mounted on a weighing sensor to form the weighing mechanism I.
[0011] A blocking mechanism is installed above the inclined track at the weighing mechanism I. Two or more groups of blocking mechanisms are arranged at intervals along the inclined direction of the inclined track, and the distance between adjacent blocking mechanisms can accommodate a single bottle body.
[0012] A second weighing mechanism is installed on the working platform located laterally outside the inclined track. The flipping mechanism flips the lying bottle body containing the test paper 90 degrees to make it vertical; it also includes a side pushing mechanism, which pushes the vertical bottle body onto the second weighing mechanism.
[0013] The second weighing mechanism comprises a U-shaped platform with an opening facing the side pushing mechanism, and the U-shaped platform is mounted on the weighing sensor.
[0014] It also includes a transfer mechanism, which is installed on a working platform outside the second weighing mechanism, and is used to grab and transfer the bottle body on the second weighing mechanism to the bottling conveying mechanism.
[0015] It also includes a screening area, which is located outside the second weighing mechanism and is provided with a concave hole for accommodating the bottle body.
[0016] The structure of the flipping mechanism is as follows: it includes a support installed on the working platform, a rotating shaft is rotatably installed on the support, one end of the rotating shaft is connected to the rotating driving power, a swing arm is installed on the other end of the rotating shaft, and a accommodating bin for accommodating the bottle body is installed at the end of the swing arm; the accommodating bin is opened on the side of the inclined track, and a stopper that can move up and down is installed on the upper part of the opening.
[0017] A through hole is provided on the inclined bottom surface of the inclined track located at the side push loading mechanism, the width of the through hole is smaller than the length of the bottle body, a lifting mechanism is provided below the through hole, and a pressing mechanism is provided above the through hole; the lifting seat in the lifting mechanism passes upward through the through hole to support the platform, and the pressing mechanism presses the bottle body from top to bottom.
[0018] Compared with the prior art, the utility model has the following beneficial effects:
[0019] The utility model arranges the inclined track so that the bottle body can move downward from the upper bottle body arrangement discharge track without power, and can load the test paper into the bottle body through the side push loading mechanism during the transmission, so as to realize the automatic bottling of the test paper. The overall structure is compact, reasonable and ingenious, effectively ensuring the bottling efficiency and effect, and having good practicality.
[0020] The utility model also has the following advantages:
[0021] By setting up two front and rear weighing mechanisms, the weight of the empty bottle and the weight of the full bottle are obtained successively, so that the number of test papers in the bottle can be detected through the weight difference, effectively reducing the probability of wrong installation and realizing automatic and rapid control. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a structural schematic diagram of the utility model.
[0023] Figure 2This is a schematic structural diagram of the downward pressing mechanism at the inclined track and the first weighing mechanism of the present utility model.
[0024] Figure 3 This is a schematic structural diagram of the flipping mechanism of the present utility model.
[0025] Among them: 1. Working platform; 2. Inclined track; 3. First weighing mechanism; 4. Weighing auxiliary mechanism; 5. Blocking mechanism; 6. Downward pressing mechanism; 7. Flipping mechanism; 8. Second weighing mechanism; 9. Transfer mechanism; 10. Bottle body; 11. Bottle body arrangement discharging track; 12. Side pushing loading mechanism; 13. Test strip conveying mechanism; 14. Bottle loading conveying mechanism; 20. Inclined bottom surface; 201. Through hole; 31. Weighing sensor; 32. U-shaped seat; 321. Supporting surface; 41. First linear driving mechanism; 42. Lifting block; 60. Jacking mechanism; 61. Second linear driving mechanism; 62. Jacking seat; 63. Accommodation cavity; 70. Side pushing mechanism; 71. Support; 72. Rotating shaft; 73. Swing arm; 74. Accommodation bin; 75. Stopper; 701. Third linear driving mechanism; 702. Pushing block; 80. Screening area; 90. Transfer linear power. Specific embodiments
[0026] The following will describe the specific embodiments of the present utility model with reference to the accompanying drawings.
[0027] As Figure 1 shown, a test strip bottling mechanism in this embodiment includes a working platform 1, on which an inclined track 2 is arranged. The inclined track 2 is used for the bottle body 10 to move from top to bottom in a horizontal lying posture; the upper end of the inclined track 2 is connected to the external bottle body arrangement discharging track 11, and the lower end of the inclined track 2 is connected to a flipping mechanism 7; a side pushing loading mechanism 12 is arranged in the middle of the inclined track 2, and the side pushing loading mechanism 12 laterally loads the test strips into the bottle body 10.
[0028] Through the setting of the inclined track 2, the bottle body 10 can move downward without power from the upper bottle body arrangement discharging track 11, and can be loaded with test strips into the bottle body 10 by the side pushing loading mechanism 12 during transmission, realizing the automatic bottling of test strips.
[0029] In this embodiment, the external bottle body arrangement discharging track 11 can be connected to a vibrating disk group, or can be connected to carry and arrange the arranged bottle bodies 10 manually or in other forms.
[0030] A first weighing mechanism 3 is arranged on the inclined track 2 above the side pushing loading mechanism 12, and the first weighing mechanism 3 weighs each empty bottle body 10 one by one.
[0031] As Figure 2As shown, a lifting block 42 is movably arranged on the inclined bottom surface 20 of the inclined track 2. The lifting block 42 is accommodated inside the U-shaped seat 32. The inner walls on both sides of the U-shaped seat 32 extend inwards to form a supporting surface 321. The bottle body 10 is supported on the lifting block 42 or on the supporting surface 321 of the U-shaped seat 32; the U-shaped seat 32 is mounted on the weighing sensor 31 to form a weighing mechanism I 3.
[0032] During use, the bottle body 10 moves downward along the inclined track 2. When the bottle body 10 moves to the position of the lifting block 42, the lifting block 42 moves downward under the drive of the linear drive mechanism I 41 until it is lower than the supporting surface 321 of the U-shaped seat 32. The bottle body 10 supported by the lifting block 42 is changed to be supported by the supporting surface 321, so that the bottle body 10 can be weighed by the weighing sensor 31; after weighing, the linear drive mechanism I 41 pushes the lifting block 42 upward to support the bottle body 10 again.
[0033] In this embodiment, the linear drive mechanism I 41 and the lifting block 42 constitute a weighing auxiliary mechanism 4. The linear drive mechanism I 41 can be a linear output standard part such as a cylinder, an oil cylinder, or an electric cylinder.
[0034] Above the inclined track 2 at the weighing mechanism I 3, a blocking mechanism 5 is installed. Two or more groups of blocking mechanisms 5 are arranged at intervals along the inclined direction of the inclined track 2. The distance between adjacent blocking mechanisms 5 can accommodate a single bottle body 10.
[0035] During the process of multiple bottle bodies 10 moving downward along the inclined track 2 in sequence, the bottle body 10 between them is isolated by the downward movement of two adjacent groups of blocking mechanisms 5, which is convenient for weighing a single bottle body 10.
[0036] In this embodiment, the blocking mechanism 5 can be a blocking plate driven by an existing linear output standard part.
[0037] On the working platform 1 located outside the side of the inclined track 2, a weighing mechanism II 8 is installed. The flipping mechanism 7 flips the horizontal bottle body 10 with test paper by 90° to be vertical; a side pushing mechanism 70 is further included, and the side pushing mechanism 70 pushes the vertical bottle body 10 onto the weighing mechanism II 8.
[0038] In this embodiment, through the setting of the weighing mechanisms twice before and after, the weight of the empty bottle body 10 and the weight of the full bottle body 10 are obtained successively, so that the number of test papers in the bottle body 10 can be detected through the weight difference, effectively reducing the probability of misloading and realizing automatic and rapid control.
[0039] The weighing mechanism II 8 includes a U-shaped carrier with an opening facing the side pushing mechanism 70, and the U-shaped carrier is mounted on the weighing sensor.
[0040] When the side pushing mechanism 70 performs side pushing, the U-shaped opening of the U-shaped carrier provides transfer guiding and transfer limiting for the bottle body 10, effectively ensuring the weighing of the bottle body 10 by the second weighing mechanism 8.
[0041] It further includes a transfer mechanism 9. The transfer mechanism 9 is installed on the working platform 1 outside the second weighing mechanism 8. The transfer mechanism 9 grabs and transfers the bottle body 10 on the second weighing mechanism 8 to the bottle filling conveyor mechanism 14, facilitating subsequent operations such as capping.
[0042] In this embodiment, the transfer mechanism 9 can adopt a finger cylinder to clamp the bottle body 10 from above, and combine with a transfer linear power 90, a vertical linear power, etc. to transfer the bottle body 10.
[0043] It further includes a screening area 80. The screening area 80 is located outside the second weighing mechanism 8, and recesses for accommodating the bottle body 10 are provided on the screening area 80.
[0044] In this embodiment, the screening area 80 can be used as a non-conforming temporary storage area for placing cases where the difference before and after weighing does not meet the preset value; in actual use, the transfer mechanism 9 can place the non-conforming bottle body 10 on the screening area 80.
[0045] As Figure 3 shown, the structure of the flipping mechanism 7 is: including a support 71 installed on the working platform 1, a rotating shaft 72 is rotatably installed on the support 71. One end of the rotating shaft 72 is connected to the rotating driving power, and the other end of the rotating shaft 72 is installed with a swing arm 73. A receiving bin 74 for accommodating the bottle body 10 is installed at the end of the swing arm 73; the side of the receiving bin 74 facing the inclined track 2 is open, and a stop member 75 that can move up and down is installed at the upper part of the opening.
[0046] During use, through the rotation of the rotating shaft 72, the receiving bin 74 is driven by the swing arm 73 to flip upward by 90°, thereby changing the bottle body 10 from a horizontal state to a vertical state.
[0047] In this embodiment, the stop member 75 can be driven by a linear driving power such as a cylinder to move up and down, and is used to block the bottle body 10 inside the receiving bin 74 to prevent it from falling off during flipping.
[0048] In this embodiment, the side pushing mechanism 70 includes a third linear driving mechanism 701 and a push block 702 installed at the output end; an avoidance hole for the push block 702 to extend into is provided on the receiving bin 74 facing the side pushing mechanism 70, facilitating the push block 702 to apply a pushing force to the bottle body 10.
[0049] A through hole 201 is formed in the inclined bottom surface 20 of the inclined track 2 at the side pushing and loading mechanism 12. The width of the through hole 201 is smaller than the length of the bottle body 10. A jacking mechanism 60 is arranged below the through hole 201, and a pressing mechanism 6 is arranged above the through hole 201. In the jacking mechanism 60, a jacking seat 62 passes upward through the through hole 201 to support the bottle body 10, and the pressing mechanism 6 presses the bottle body 10 from top to bottom.
[0050] During use, the linear driving mechanism II 61 in the jacking mechanism 60 acts to push the jacking seat 62 to move upward through the through hole 201, so that the bottle body 10 is supported in the accommodating cavity 63 of the jacking seat 62. At the same time, the pressing block in the pressing mechanism 6 moves downward and presses on the bottle body 10. Thus, the corresponding bottle body 10 is fixed by the cooperation of the pressing mechanism 6 and the jacking mechanism 60, facilitating the side pushing and loading mechanism 12 to push and load the test paper into the fixed bottle body 10.
[0051] In this embodiment, the test paper after being cut by the previous process can be conveyed to the bottling mechanism through the test paper conveying mechanism 13, and then the side pushing and loading mechanism 12 loads the test paper into the bottle body 10.
[0052] The utility model realizes the automatic bottling of the test paper, with a compact, reasonable and ingenious overall structure, effectively ensuring the bottling efficiency and effect, and having good practicability.
[0053] In this specification, the various embodiments are described in a progressive manner. Each embodiment focuses on the differences from other embodiments. For the same and similar parts among the various embodiments, reference can be made to each other.
[0054] The above description is an explanation of the utility model, not a limitation thereof. For the scope defined by the utility model, refer to the claims. Any form of modification can be made within the protection scope of the utility model.
Claims
1. A test strip bottling mechanism, comprising a working platform (1), characterized in that: An inclined track (2) is arranged on the working platform (1). The inclined track (2) is used for the bottle body (10) to move from top to bottom in a horizontal lying position. The upper end of the inclined track (2) is connected to an external bottle body arranging and discharging track (11), and the lower end of the inclined track (2) is connected to a turning mechanism (7). A side pushing and loading mechanism (12) is arranged in the middle of the inclined track (2), and the side pushing and loading mechanism (12) laterally loads the test paper into the bottle body (10).
2. The bottling mechanism for a test strip according to claim 1, characterized in that: A weighing mechanism I (3) is arranged on the inclined track (2) above the side pushing and loading mechanism (12), and the empty bottle bodies (10) are weighed one by one by the weighing mechanism I (3).
3. The bottling mechanism for a test strip according to claim 2, characterized in that: A lifting block (42) is movably arranged on the inclined bottom surface (20) of the inclined track (2). The lifting block (42) is accommodated inside a U-shaped seat (32). The inner side walls of both sides of the U-shaped seat (32) extend inwards to form a supporting surface (321). The bottle body (10) is supported on the lifting block (42) or the supporting surface (321) of the U-shaped seat (32). The U-shaped seat (32) is mounted on a weighing sensor (31) to form the weighing mechanism I (3).
4. The bottling mechanism for a test strip according to claim 2, characterized in that: A blocking mechanism (5) is installed above the inclined track (2) at the position of the weighing mechanism I (3). Two or more groups of blocking mechanisms (5) are arranged at intervals along the inclined direction of the inclined track (2), and the distance between adjacent blocking mechanisms (5) can accommodate a single bottle body (10).
5. The bottling mechanism for a test strip according to claim 1, characterized in that: A weighing mechanism II (8) is installed on the working platform (1) outside the side of the inclined track (2). The turning mechanism (7) turns the lying bottle body (10) filled with the test paper by 90° to be vertical. A side pushing mechanism (70) is further included, and the side pushing mechanism (70) pushes the vertical bottle body (10) onto the weighing mechanism II (8).
6. The bottling mechanism for a test strip according to claim 5, wherein: The weighing mechanism II (8) includes a U-shaped carrier with an opening facing the side pushing mechanism (70), and the U-shaped carrier is mounted on a weighing sensor.
7. The bottling mechanism for a test strip according to claim 5, characterized in that: A transfer mechanism (9) is further included. The transfer mechanism (9) is installed on the working platform (1) outside the weighing mechanism II (8), and the transfer mechanism (9) grabs and transfers the bottle body (10) on the weighing mechanism II (8) to a bottle filling conveyor (14).
8. The bottling mechanism for a test strip according to claim 7, characterized in that: A screening area (80) is further included. The screening area (80) is located outside the weighing mechanism II (8), and concave holes for accommodating the bottle body (10) are formed on the screening area (80).
9. The bottling mechanism for a test strip according to claim 1, characterized in that: The structure of the turning mechanism (7) is as follows: it includes a support (71) installed on the working platform (1). A rotating shaft (72) is rotatably installed on the support (71). One end of the rotating shaft (72) is connected to a rotating driving power, and the other end of the rotating shaft (72) is installed with a swing arm (73). A receiving bin (74) for accommodating the bottle body (10) is installed at the end of the swing arm (73). The side surface of the receiving bin (74) facing the inclined track (2) is open, and an up-and-down movable stopper (75) is installed above the opening.
10. A test strip bottling mechanism according to claim 1, characterized in that: A through hole (201) is formed in the inclined bottom surface (20) of the inclined track (2) at the side pushing and loading mechanism (12). The width of the through hole (201) is smaller than the length of the bottle body (10). A jacking mechanism (60) is disposed below the through hole (201), and a pressing mechanism (6) is disposed above the through hole (201). In the jacking mechanism (60), a jacking seat (62) passes upward through the through hole (201) to support the bottle body (10), and the pressing mechanism (6) presses the bottle body (10) from top to bottom.