A perpendicularity detection device for glass bottle processing
By designing clamping and measuring mechanisms that adapt to glass bottles of different sizes and shapes, the problem of insufficient detection capabilities of traditional equipment has been solved, enabling efficient verticality detection during glass bottle processing and improving production quality and equipment adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QUFU JUYUAN GLASS PROD CO LTD
- Filing Date
- 2025-06-09
- Publication Date
- 2026-05-29
AI Technical Summary
Traditional glass bottle verticality testing equipment can only test a single or a few specific models, which cannot adapt to the diverse glass bottle specifications in production, resulting in insufficient testing capabilities of existing equipment.
A verticality detection device was designed, comprising a glass bottle, a first motor, a lower positioning mechanism, and a measuring mechanism. By using a combination of clamps and top blocks, the glass bottle can be fixed and rotated, and the verticality can be measured using the detection head of the measuring mechanism. This device is suitable for glass bottles of different sizes and shapes.
It enables verticality detection of glass bottles of different sizes and shapes, ensuring the accuracy and adaptability of the detection, improving the adaptability of the equipment, reducing the risk of equipment jamming and transportation damage, and improving production efficiency.
Smart Images

Figure CN224303048U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of glass bottle processing equipment, specifically a verticality detection device for glass bottle processing. Background Technology
[0002] In the industrialized continuous production of glass bottles, ensuring that the verticality of the bottles meets strict standards is a key link to guarantee the smooth operation of subsequent processes and the quality of the final product. Verticality deviation not only directly affects the sealing effect and filling accuracy of high-speed filling lines, leading to liquid leakage or inaccurate filling volume and material waste, but also significantly affects the positioning accuracy of automated labeling and sleeve labeling equipment, causing labels to be crooked, wrinkled, or even equipment jamming and shutdown. At the same time, in the subsequent packaging and stacking process, bottles with poor verticality are prone to causing unstable stacks, increasing the risk of damage during transportation, and posing a potential threat to brand image and cost control.
[0003] Traditional glass bottle verticality testing equipment has significant limitations. Its testing capabilities are usually strictly limited to a single or a few specific types of glass bottles. However, in actual production, the types and sizes of glass bottles are extremely diverse, covering various key parameters such as different heights, bottle diameters, and bottle mouth diameters. This creates a sharp contradiction between the high specificity of the equipment in terms of the test objects and the wide diversity of glass bottle specifications in actual production. Therefore, a verticality testing equipment for glass bottle processing was invented to address this deficiency. Utility Model Content
[0004] To address the problem of detecting the verticality of bottles of different sizes, this invention provides a verticality detection device for glass bottle processing.
[0005] This utility model is achieved through the following technical solution: A verticality detection device for glass bottle processing includes a glass bottle, a first motor, a lower positioning mechanism and a measuring mechanism. The lower positioning mechanism includes a first turntable, which is fixedly connected to the output end of the first motor. At least two clamping plates are slidably installed on the first turntable, and the clamping plates can fix the bottom of the glass bottle. Each clamping plate is respectively equipped with a positioning rod that is detachably connected to the first turntable.
[0006] The upper positioning mechanism includes a first vertical rod, a sliding block slidably mounted on the side of the first vertical rod, a second turntable connected to the sliding block, and multiple movable blocks that can move synchronously mounted on the second turntable. Each movable block has a top block mounted on its lower side that can fix the inner wall of the glass bottle mouth.
[0007] It also includes a measuring mechanism capable of measuring the verticality of glass bottles.
[0008] Before testing, the glass bottle is placed on the first turntable. The position of the second turntable is adjusted by moving the sliding block. The moving block moves synchronously, driving the top block to move and fixing the inside of the bottle mouth. Then, the clamping plate is pushed to clamp the bottom of the glass bottle. The positioning bolt is inserted into the threaded hole and fixed to the positioning rod on the first turntable, thus fixing the bottom of the glass bottle on the first turntable. Then, the first motor is started, which drives the clamping plate, glass bottle and top block to rotate synchronously through the first turntable. During the rotation of the glass bottle, the verticality of glass bottles of different sizes is tested by the measuring mechanism.
[0009] Further improvements to this invention include the following: anti-slip pads are installed on the side of the clamp facing the glass bottle; an installation groove is provided on the outer surface of the positioning rod; multiple threaded holes are provided on the first turntable; positioning bolts are installed in the installation grooves; the positioning bolts can fix the positioning rod on the first turntable through the threaded holes; and glass bottles with different bottom diameters can be fixed on the first turntable by moving the clamp, thereby facilitating subsequent measurement work.
[0010] A further improvement of this utility model is that the second turntable has a ring array of several positioning grooves along the radial direction. A second electric cylinder is fixedly installed on the inner wall of each positioning groove. The telescopic end of the second electric cylinder is fixedly connected to the moving block. The moving block is slidably installed on the inner wall of the positioning groove. The top block is pressed against the mouth of the glass bottle by the arc surface of the top block, thereby fixing the mouth of the glass bottle.
[0011] A further improvement of this utility model is that the measuring mechanism includes a second vertical rod, a sliding shaft, and a measuring component. The measuring component is mounted on the second vertical rod, and the sliding shaft is connected to the measuring component. A detection head is fixedly mounted on the end of the sliding shaft facing the glass bottle. The measuring component enables the detection head to always be in contact with the outer surface of the glass bottle and records the movement distance of the detection head, thereby facilitating the measurement of the verticality of the glass bottle.
[0012] A further improvement of this utility model is that the measuring component includes a middle block, which is slidably mounted on the second vertical rod. A scale is fixedly mounted on the middle block, and the end cap is printed with graduations. A sleeve is fixedly mounted on the side of the middle block away from the second vertical rod. A sliding shaft is slidably mounted on the inner wall of the sleeve. A groove is provided on the outer surface of the sleeve. An indicator head is slidably mounted in the groove of the sleeve. The indicator head is fixedly mounted on the outer surface of the sliding shaft. A spring is wound around the outer surface of the sliding shaft. One end of the spring is fixedly mounted on the outer surface of the sleeve, and the other end of the spring is fixedly mounted on the outer surface of the sliding shaft. The movement distance of the detection head is displayed by the change in the position of the indicator head on the scale, thereby realizing the detection of the verticality of glass bottles of different sizes.
[0013] A further improvement of this utility model is that a movable plate is fixedly installed on the side of the middle block. The movable plate is slidably connected to the second vertical rod. A threaded hole is provided on the side of the movable plate. A limit bolt is screwed into the threaded hole of the movable plate. The position of the sliding shaft and the middle block is fixed by the limit bolt, so as to avoid damage caused by the random movement of the sliding shaft and the middle block when not in operation, which would affect the accuracy of the detection.
[0014] As can be seen from the above technical solution, the beneficial effects of this utility model are as follows: The glass bottle is placed on the first turntable. Before placing the glass bottle on the first turntable, the sliding shaft is manually pressed to prevent the detection head from being damaged by the bottom of the glass bottle. Then, the first electric cylinder is activated, sliding downwards along the sliding groove via the sliding block. When the second turntable contacts the bottle opening, the first electric cylinder stops working, and the second electric cylinder is activated, driving the moving block to slide along the positioning groove. The positioning groove, through the connecting shaft, drives the top block to move towards the inner wall of the glass bottle. When the top block is pressed against the inner wall of the glass bottle, the second electric cylinder stops working, thus completing the positioning of the bottle opening. Afterwards, the sliding shaft is released, and under the action of the spring, the sliding shaft moves, thereby driving the detection head to contact the bottle; the movement... The clamping plate is used to press firmly against the bottom of the glass bottle. Then, the positioning bolts are inserted into the threaded holes of the mounting slot and the first turntable to fix the clamping plate, thus positioning the bottom of the glass bottle. The moving plate is pushed, which drives the sleeve to rise. The sleeve drives the detection head to rise along the outer surface of the glass bottle through the sliding shaft. When the detection head rises, due to processing errors, the axis of the glass bottle may not be completely perpendicular to the bottom surface of the glass bottle. At this time, the sliding detection head on the outer surface of the glass bottle will push the sliding shaft to move, and the sliding shaft will drive the indicator head to move. The measurer observes the distance the indicator head moves through the scale on the ruler, thus obtaining the perpendicularity of the outer surface of the glass bottle. This allows for perpendicularity testing of glass bottles of different sizes and models. Attached Figure Description
[0015] To more clearly illustrate the technical solution of this utility model, the drawings used in the description will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0017] Figure 2 This is a schematic diagram showing the positional relationship between the base plate and the support frame of this utility model.
[0018] Figure 3 for Figure 2 A magnified schematic diagram of the structure at point A in the middle.
[0019] Figure 4 This is a schematic diagram showing the positional relationship between the glass bottle and the upper positioning mechanism of this utility model.
[0020] Figure 5 for Figure 4 A magnified schematic diagram of the structure at point B in the middle.
[0021] Figure 6 This is a schematic diagram showing the positional relationship between the glass bottle and the second turntable of this utility model.
[0022] Figure 7 for Figure 6 A magnified schematic diagram of the structure at point C.
[0023] Figure 8 This is a schematic diagram showing the positional relationship between the glass bottle and the end cap of this utility model.
[0024] Figure 9 for Figure 8 A magnified schematic diagram of the structure at point D in the middle.
[0025] Figure 10 This is a schematic diagram of the measuring mechanism of this utility model.
[0026] Figure 11 for Figure 10 A magnified schematic diagram of the structure at point E in the middle.
[0027] Figure 12 for Figure 10 A magnified schematic diagram of the structure at point F in the middle.
[0028] Reference numerals: 1-Base plate; 2-Glass bottle; 3-First motor; 4-Lower positioning mechanism; 5-Upper positioning mechanism; 6-Measuring mechanism; 401-First turntable; 402-Positioning rod; 403-Support frame; 404-Mounting groove; 405-Positioning bolt; 406-Clamping plate; 407-Slider; 408-Moving groove; 501-First vertical rod; 502-Sliding groove; 503-First electric cylinder; 504-Mounting plate; 505-Second turntable; 50 6-Limiting rod; 507-Sliding block; 508-Positioning groove; 509-Second electric cylinder; 510-Moving block; 511-End cover; 512-Connecting shaft; 513-Top block; 601-Second vertical rod; 602-Vertical groove; 603-Sliding shaft; 604-Detection head; 605-Sleeve; 606-Indicator head; 607-Spring; 608-Limiting block; 609-Moving plate; 610-Limiting bolt; 611-Scale; 612-Intermediate block. Detailed Implementation
[0029] To make the objectives, features, and advantages of this utility model more apparent and understandable, the technical solutions of this utility model will be clearly and completely described below with reference to the accompanying drawings of the specific embodiments. Obviously, the embodiments described below are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this patent, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this patent.
[0030] Example
[0031] As attached Figure 1 ~Appendix Figure 3 As shown, this utility model discloses a verticality testing device for glass bottle processing, including a base plate 1, a glass bottle 2, a first motor 3, a lower positioning mechanism 4, an upper positioning mechanism 5, and a measuring mechanism 6. The first motor 3 is fixedly installed on the base plate 1, the lower positioning mechanism 4 is connected to the output end of the first motor 3, the glass bottle 2 is placed on the lower positioning mechanism 4, the upper positioning mechanism 5 is installed on the lower positioning mechanism 4, and both the upper positioning mechanism 5 and the lower positioning mechanism 4 are connected to the glass bottle 2. The measuring mechanism 6 is installed on the base plate 1 and is connected to the glass bottle 2.
[0032] As attached Figure 2 ~Appendix Figure 6 As shown, this utility model discloses a lower positioning mechanism 4, which includes a support frame 403. The support frame 403 is fixedly installed on the base plate 1. The support plate 403 is located at the center of the base plate 1. A first turntable 401 is rotatably installed on the support frame 403. A first motor 3 is fixedly connected to the output end of the first turntable 401. The first motor 3 is fixedly installed on the base plate 1. A glass bottle 2 is placed on the first turntable 401. Two clamping plates 406 are slidably installed on the first turntable 401. Anti-slip stickers are affixed to the sides of the clamping plates 406 facing the glass bottle 2. Two sliders 407 are symmetrically fixedly installed on the lower side of each clamping plate 406. Four moving grooves 408 are symmetrically arranged on the first turntable 401. Each slider 407 is slidably installed on the inner wall of one moving groove 408.
[0033] Each clamping plate 406 has a positioning rod 402 fixedly installed on the side away from the glass bottle 2. Each positioning rod 402 has an mounting groove 404 along its axial direction on its outer surface. The first turntable 401 has four threaded holes, and each mounting groove 404 has two threaded holes on its lower side. The width of the mounting groove 404 is equal to the diameter of the threaded holes. The outer surface of the positioning rod 402 is tangent to the upper surface of the first turntable 401. Two positioning bolts 405 are installed in each mounting groove 404, and each positioning bolt 405 forms a helical engagement with the threaded hole on the first turntable 401. The positioning bolts 405 enable the clamping plates to be positioned... 406 is fixed on the first turntable 401. The bottom of the glass bottle 2 is clamped by the clamping plate 406 and the anti-slip sticker on the side of the clamping plate, thereby fixing the glass bottle 2 on the first turntable 401. The rotation of the first motor 3 drives the first turntable 401 and the glass bottle 2 to rotate synchronously. The glass bottle 2 is placed on the first turntable 401. The clamping plate 406 is moved so that the clamping plate 406 is close to the bottom of the glass bottle 2. Then, the positioning bolt 405 is inserted into the mounting groove 404 and the threaded hole of the first turntable 401. The positioning bolt 405 fixes the clamping plate 406, thereby completing the positioning of the bottom of the glass bottle 2.
[0034] As attached Figure 3 ~Appendix Figure 12 As shown, this utility model discloses an upper positioning mechanism 5, which includes a first vertical rod 501. The first vertical rod 501 is fixedly installed on the side of the support frame 403. A sliding groove 502 is provided on the side of the first vertical rod 501. A limit rod 506 is fixedly installed on the inner wall of the sliding groove 502. A sliding block 507 is slidably installed on the outer surface of the limit rod 506. The sliding block 507 is slidably installed on the inner wall of the sliding groove 502. A first electric cylinder 503 is fixedly installed on the side of the first vertical rod 501. The telescopic end of the first electric cylinder 503 is fixedly connected to the sliding block 507. An mounting plate 504 is fixedly installed on the end of the sliding block 507 away from the first vertical rod 501. The mounting plate 504 is located below... A second turntable 505 is mounted on the side. Several radially oriented positioning grooves 508 are arranged in a circular array on the second turntable 505. A second electric cylinder 509 is fixedly mounted on the inner wall of each positioning groove 508. A moving block 510 is fixedly mounted on the telescopic end of the second electric cylinder 509. An end cover 511 is fixedly mounted on the upper part of the moving block 510. The end cover 511 is slidably mounted on the upper side of the second turntable 505. The moving block 510 is slidably mounted on the inner wall of the positioning groove 508. A connecting shaft 512 is fixedly mounted on the lower part of the moving block 510. A top block 513 is fixedly mounted on the side of the connecting shaft 512 facing the second electric cylinder 509. The side of the top block 513 away from the connecting shaft 512 is an arc surface.
[0035] The first electric cylinder 503 is activated, driving the sliding block 507 to slide downwards along the sliding groove 502. Then, when the second turntable 505 contacts the bottle mouth of the glass bottle 2, the first electric cylinder 503 stops working, and the second electric cylinder 509 is activated, driving the moving block 510 to slide along the positioning groove 508. The positioning groove 508 drives the top block 513 to move towards the inner wall of the glass bottle 2 through the connecting shaft 512. When the top block 513 is close to the inner wall of the glass bottle 2, the second electric cylinder 509 stops working, thus completing the positioning of the bottle mouth of the glass bottle 2.
[0036] As attached Figure 5 ~Appendix Figure 10 As shown, this utility model discloses a measuring mechanism 6, which includes a second vertical rod 601. The second vertical rod 601 is fixedly installed on the base plate 1. A vertical groove 602 is provided on each side of the second vertical rod 601. A limit block 608 is slidably installed on the inner wall of each vertical groove 602. A movable plate 609 is fixedly installed on the side of the limit block 608 away from the second vertical rod 601. An intermediate block 612 is fixedly installed between the two movable plates 609. A scale 611 is fixedly installed on the intermediate block 612. The scale 611 is fixedly connected to the limit bolt 610. The scale 611 is printed with graduations. A sleeve 605 is fixedly installed on the side of the connecting shaft 512 away from the second vertical rod 601. A sliding shaft 603 is slidably installed on the inner wall of the sleeve 605.
[0037] A handle is mounted on the outer surface of the sliding shaft 603. The outer surface of the handle is covered with a rubber sleeve. A detection head 604 is fixedly mounted on the end of the sliding shaft 603 facing the glass bottle 2. The detection head 604 is conical. A spring 607 is wound around the outer surface of the end of the sliding shaft 603 away from the detection head 604. One end of the spring 607 is fixedly mounted on the outer surface of the sliding shaft 603, and the other end of the spring 607 is fixedly mounted on the side of the sleeve 605 away from the glass bottle 2. Under the action of the spring 607, the detection head 604 is always in contact with the outer surface of the glass bottle 2.
[0038] Pushing the movable plate 609 causes the limiting block 608 to slide upward along the vertical groove 602. At this time, the movable plate 609 drives the sleeve 605 to rise through the intermediate block 612. The sleeve 605 drives the detection head 604 to rise along the outer surface of the glass bottle 2 through the sliding shaft 603. When the detection head 604 rises, due to processing errors, the axis of the glass bottle 2 may not be completely perpendicular to the bottom surface of the glass bottle 2. At this time, the sliding detection head 604 on the outer surface of the glass bottle 2 will push the sliding shaft 603 to move. The sliding shaft 603 will drive the indicator head 606 to move. The measurer observes the distance the indicator head 606 moves through the scale on the ruler 611, thereby obtaining the perpendicularity of the outer surface of the glass bottle 2.
[0039] As attached Figure 6 ~Appendix Figure 12 As shown, this utility model discloses a measuring mechanism 6, which also includes a limiting bolt 610. A threaded hole is provided on the side of the moving plate 609. The threaded hole of the moving plate 609 and the limiting bolt 610 form a helical engagement. A handle 2 is fixedly installed on the side of the moving plate 609 away from the glass bottle. The outer surface of the handle 2 is covered with a rubber sleeve. By rotating the limiting bolt 610, the moving plate 609 can be fixedly installed on the side of the second vertical rod 601.
[0040] Before starting work, rotate the limiting bolt 610 to remove it from the moving plate 609. Then, push the moving plate 609 using handle 2. When the moving plate 609 moves to the lowest position of the vertical groove 602, reinstall the limiting bolt 610 on the moving plate 609 to fix it on the second vertical rod 601. Then, drag the sliding shaft 603 using handle 1 to move it along the inner wall of the sleeve 605 away from the first electric cylinder 503, preventing the detection head 604 from being crushed by the bottom of the glass bottle 2. After placing the glass bottle 2 on the first turntable 401, drag the sliding shaft 603 to move it along the inner wall of the sleeve 605 towards the first electric cylinder 503. When the detection head 604 is close to the outer surface of the glass bottle 2, release handle 1.
[0041] The working principle of this embodiment is as follows.
[0042] (a) Before operation, rotate the limiting bolt 610 to remove it from the moving plate 609. Then, push the moving plate 609 using the second handle. When the moving plate 609 moves to the lowest position of the vertical groove 602, reinstall the limiting bolt 610 on the moving plate 609, thus fixing the moving plate 609 to the second vertical rod 601. Then, drag the sliding shaft 603 using the first handle to move it along the inner wall of the sleeve 605 away from the first electric cylinder 503, preventing the detection head 604 from being crushed by the bottom of the glass bottle 2. After placing the glass bottle 2 on the first turntable 401, drag the sliding shaft 603 to move it along the inner wall of the sleeve 605 towards the first electric cylinder 503. When the detection head 604 is in contact with the glass bottle 2, the sliding shaft 603 moves along the inner wall of the sleeve 605 towards the first electric cylinder 503. When the glass bottle 2 is on its outer surface, release handle 1. Then, the first electric cylinder 503 starts. The first electric cylinder 503 drives the sliding block 507 to slide down along the sliding groove 502. Then, when the second turntable 505 contacts the bottle mouth of the glass bottle 2, the first electric cylinder 503 stops working and the second electric cylinder 509 starts. The second electric cylinder 509 drives the moving block 510 to slide along the positioning groove 508. The positioning groove 508 drives the top block 513 to move towards the inner wall of the glass bottle 2 through the connecting shaft 512. When the top block 513 is close to the inner wall of the glass bottle 2, the second electric cylinder 509 stops working, thus completing the positioning of the bottle mouth of the glass bottle 2. Then, release the sliding shaft 603. Under the action of the spring 607, the sliding shaft 603 moves and drives the detection head 604 to contact the bottle 2.
[0043] (ii) Move the clamping plate 406 so that the clamping plate 406 and the anti-slip sticker on the side of the clamping plate 406 are in close contact with the bottom of the glass bottle 2. Then, insert the positioning bolt 405 into the threaded hole of the mounting groove 404 and the first turntable 401. Fix the positioning rod 402 on the first turntable 402 by the positioning bolt 405, thereby fixing the clamping plate 406 by the positioning rod 402, and thus completing the positioning of the bottom of the glass bottle 2.
[0044] (iii) Push the moving plate 609, which drives the limiting block 608 to slide upward along the vertical groove 602. At this time, the moving plate 609 drives the sleeve 605 to rise through the intermediate block 612. The sleeve 605 drives the detection head 604 to rise along the outer surface of the glass bottle 2 through the sliding shaft 603. When the detection head 604 rises, due to processing errors, the axis of the glass bottle 2 will not be completely perpendicular to the bottom surface of the glass bottle 2. At this time, the sliding detection head 604 on the outer surface of the glass bottle 2 will push the sliding shaft 603 to move. The sliding shaft 603 will drive the indicator head 606 to move. The measurer observes the distance the indicator head 606 moves through the scale on the ruler 611, thereby obtaining the perpendicularity of the outer surface of the glass bottle 2.
[0045] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A verticality detection device for glass bottle processing, comprising a glass bottle (2) and a first motor (3), characterized in that, It also includes a lower positioning mechanism (4) and an upper positioning mechanism (5). The lower positioning mechanism (4) includes a first turntable (401), which is fixedly connected to the output end of the first motor (3). At least two clamping plates (406) are slidably installed on the first turntable (401). The clamping plates (406) can fix the bottom of the glass bottle (2). Each clamping plate (406) is equipped with a positioning rod (402) that is detachably connected to the first turntable (401). The upper positioning mechanism (5) includes a first vertical rod (501), a sliding block (507) is slidably mounted on the side of the first vertical rod (501), a second turntable (505) is connected to the sliding block (507), and a plurality of movable blocks (510) that can move synchronously are mounted on the second turntable (505). Each movable block (510) has a top block (513) that can fix the inner wall of the bottle mouth of the glass bottle (2) on its lower side. It also includes a measuring mechanism (6) capable of measuring the verticality of the glass bottle (2).
2. The verticality detection device for glass bottle processing according to claim 1, characterized in that, The clamp (406) is fitted with anti-slip pads on the side facing the glass bottle (2). The outer surface of the positioning rod (402) is provided with a mounting groove (404). The first turntable (401) is provided with multiple threaded holes. The mounting groove (404) is fitted with a positioning bolt (405). The positioning bolt (405) can fix the positioning rod (402) on the first turntable (401) through the threaded holes.
3. The verticality detection device for glass bottle processing according to claim 2, characterized in that, The second turntable (505) has a ring array of several radially oriented positioning slots (508). A second electric cylinder (509) is fixedly installed on the inner wall of each positioning slot (508). The telescopic end of the second electric cylinder (509) is fixedly connected to the moving block (510), and the moving block (510) is slidably installed on the inner wall of the positioning slot (508).
4. The verticality testing device for glass bottle processing according to claim 2, characterized in that, The measuring mechanism (6) includes a second vertical rod (601), a sliding shaft (603), and a measuring component. The measuring component is mounted on the second vertical rod (601), and the sliding shaft (603) is connected to the measuring component. A detection head (604) is fixedly mounted on one end of the sliding shaft (603) facing the glass bottle (2). The measuring component enables the detection head (604) to always be in contact with the outer surface of the glass bottle (2) and records the moving distance of the detection head (604).
5. The verticality detection device for glass bottle processing according to claim 4, characterized in that, The measuring component includes an intermediate block (612), which is slidably mounted on the second vertical rod (601). A scale (611) is fixedly mounted on the intermediate block (612), and the end cap (511) is printed with a scale. A sleeve (605) is fixedly mounted on the side of the intermediate block (612) away from the second vertical rod (601). A sliding shaft (603) is slidably mounted on the inner wall of the sleeve (605). A groove is provided on the outer surface of the sleeve (605). An indicator head (606) is slidably mounted in the groove of the sleeve (605). The indicator head (606) is fixedly mounted on the outer surface of the sliding shaft (603). A spring (607) is wound on the outer surface of the sliding shaft (603). One end of the spring (607) is fixedly mounted on the outer surface of the sleeve (605), and the other end of the spring (607) is fixedly mounted on the outer surface of the sliding shaft (603).
6. The verticality testing device for glass bottle processing according to claim 5, characterized in that, A movable plate (609) is fixedly installed on the side of the middle block (612). The movable plate (609) is slidably connected to the second vertical rod (601). A threaded hole is provided on the side of the movable plate (609). A limit bolt (610) is screwed into the threaded hole of the movable plate (609).