Glaze pouring device and ceramic glaze pouring production line

The glaze application system automates the removal of measuring discs, addressing labor-intensive handling and ensuring consistent glaze application, thereby enhancing safety and efficiency in ceramic production.

CN223099525UActive Publication Date: 2025-07-15DONGGUAN CITY WONDERFUL CERAMICS IND PARK +1
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Patent Information

Application Number
CN202422333488.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-24
Publication Date
2025-07-15
Estimated Expiration
2034-09-24

AI Technical Summary

Technical Problem

During the ceramic glaze process, operators need to frequently adjust the glaze amount and random inspections, resulting in high labor intensity and safety hazards, and it is difficult for the existing technology to effectively separate the glaze measuring plates.

Method used

A glaze coating device is designed, including an glaze coating device, a conveying mechanism, a glaze measuring plate, a first detection mechanism and a lifting mechanism. After the glaze measuring plate is detected by the detection mechanism, the lifting mechanism automatically drives the glaze measuring plate to separate from the conveying mechanism, so that the operator can pick it up.

Benefits of technology

It reduces the labor intensity of the operator, improves safety, and ensures the continuity and efficiency of the glaze coating process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a glaze pouring device and a ceramic glaze pouring production line, the glaze pouring device comprises a glaze pouring device, a conveying mechanism, a glaze measuring disc, a first detection mechanism and a lifting mechanism, the conveying mechanism is located below the glaze pouring device, the glaze measuring disc is separably connected to the conveying mechanism, the glaze measuring disc is used for collecting the glaze pouring amount of the glaze pouring device, and the first detection mechanism is used for detecting the glaze pouring amount of the glaze pouring device; the first detection mechanism is located on one side of an outlet of the glaze pouring device and is used for detecting the glaze detection disc on the conveying mechanism, and the lifting mechanism is movably arranged on the conveying mechanism and is used for driving the glaze detection disc to ascend and descend, so that the glaze detection disc is separated from the conveying mechanism. After the glaze detection disc is detected by the first detection mechanism, the lifting mechanism can automatically drive the glaze detection disc to be separated from the conveying mechanism, so that the glaze detection disc stays on the lifting mechanism, an operator can pick up the glaze detection disc conveniently, the use is convenient, and the labor intensity of the operator can be reduced.
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Description

Technical Field

[0001] This application relates to the technical field of ceramic production, and more specifically, to a glaze spraying device and a ceramic glaze spraying production line. Background Art

[0002] During the debugging process of glaze spraying on ceramics, the glaze spraying process requires the operator to measure the glaze spraying amount using a glaze measuring tray according to the designed glaze application amount data, and then adjust the glaze application amount according to the measurement result. Sometimes, this glaze application amount adjustment action needs to be repeated multiple times, causing the operator to pick up and place the glaze measuring tray back and forth along the conveying mechanism, resulting in a large labor intensity. At the same time, during the process of picking up the glaze measuring tray, since the operator's attention is mainly focused on the glaze measuring tray moving along the conveying mechanism, it is easy to overlook the safety underfoot, so there are potential safety hazards.

[0003] In addition, during normal batch production, the glaze spraying process also requires the operator to randomly inspect the glaze application amount from time to time to prevent problems such as inconsistent glaze spraying amounts caused by changes in glaze materials or malfunctions of the glaze spraying equipment, so as to avoid product defects and waste.

[0004] Therefore, the existing technology needs to be improved. Summary of the Utility Model

[0005] The purpose of this application is to provide a glaze spraying device and a ceramic glaze spraying production line, aiming to solve the technical problem of how to separate the glaze measuring tray from the conveying mechanism after glaze spraying in the existing technology.

[0006] To achieve the above purpose, the technical solution adopted in this application is:

[0007] In the first aspect, this application provides a glaze spraying device, which includes:

[0008] A glaze sprayer;

[0009] A conveying mechanism, which is located below the glaze sprayer;

[0010] A glaze measuring tray, which is detachably connected to the conveying mechanism and is used to collect the glaze spraying amount of the glaze sprayer;

[0011] A first detection mechanism, which is located on the outlet side of the glaze sprayer and is used to detect the glaze measuring tray on the conveying mechanism;

[0012] A lifting mechanism, which is movably arranged on the conveying mechanism and is used to drive the glaze measuring tray to move up and down so as to separate the glaze measuring tray from the conveying mechanism.

[0013] In one embodiment, the lifting mechanism includes:

[0014] A lifting base;

[0015] A first driving source, which is arranged on the lifting base;

[0016] A lifting support plate, which is connected to the first driving source and is used to abut against the glaze measuring tray. By the driving action of the first driving source, the lifting support plate drives the glaze measuring tray to be separated from the conveying mechanism.

[0017] In one embodiment, the first driving source includes:

[0018] A first air cylinder, which is arranged on the lifting base and on the left side of the conveying mechanism;

[0019] A second air cylinder, which is arranged on the lifting base and on the right side of the conveying mechanism;

[0020] The lifting support plate includes:

[0021] A first support plate, which is connected to the first air cylinder and is used to abut against the left side of the glaze measuring tray;

[0022] A second support plate, which is connected to the second air cylinder and is used to abut against the right side of the glaze measuring tray.

[0023] In one embodiment, both the first support plate and the second support plate are parallel to the conveying direction of the conveying mechanism.

[0024] In one embodiment, both the first air cylinder and the second air cylinder include the following structure: a double-rod air cylinder, which is used to drive the glaze measuring tray to perform lifting motion.

[0025] In one embodiment, the first detection mechanism includes the following structure: a proximity switch, which is used to detect the glaze measuring tray on the conveying mechanism.

[0026] In one embodiment, the conveying mechanism includes a conveying belt, and the glaze measuring tray includes a metal tray. The metal tray is detachably connected to the conveying belt, and the metal tray extends from both sides of the conveying belt so that both sides of the metal tray are suspended on the conveying belt.

[0027] In one embodiment, it further includes:

[0028] A second detection mechanism, which is used to detect the glaze measuring tray on the lifting mechanism. By the detection of the second detection mechanism, the lifting mechanism is reset.

[0029] In one embodiment, the second detection mechanism includes the following structure: a photoelectric sensor for detecting the glaze measuring tray on the lifting mechanism.

[0030] In a second aspect, the present application provides a ceramic glaze spraying production line, which includes the glaze spraying device as described in the above embodiment. Therefore, this ceramic glaze spraying production line can have all the features and effects of the above glaze spraying device, which will not be elaborated here.

[0031] The beneficial effects of the glaze spraying device and the ceramic glaze spraying production line provided by the present application are at least as follows:

[0032] The present application discloses a glaze spraying device and a ceramic glaze spraying production line. The glaze spraying device includes a glaze sprayer, a conveying mechanism, a glaze measuring tray, a first detection mechanism, and a lifting mechanism. The conveying mechanism is located below the glaze sprayer. The glaze measuring tray is detachably connected to the conveying mechanism and is used to collect the glaze spraying amount of the glaze sprayer. The first detection mechanism is located on one side of the outlet of the glaze sprayer and is used to detect the glaze measuring tray on the conveying mechanism. The lifting mechanism is movably arranged on the conveying mechanism and is used to drive the glaze measuring tray to move up and down so that the glaze measuring tray is separated from the conveying mechanism. After the glaze measuring tray in the present application is detected by the first detection mechanism, the lifting mechanism can automatically drive the glaze measuring tray to disengage from the conveying mechanism, so that the glaze measuring tray stays on the lifting mechanism for the operator to pick up the glaze measuring tray, which is convenient to use and can reduce the labor intensity of the operator. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art. Obviously, the following drawings are only some embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0034] Figure 1 It is a schematic structural diagram of the glaze spraying device provided by the embodiment of the present application;

[0035] Figure 2 It is a working principle diagram of the glaze spraying device provided by the embodiment of the present application;

[0036] Figure 3 It is a schematic structural diagram of a specific embodiment of the lifting mechanism provided by the embodiment of the present application;

[0037] Figure 4 It is a schematic diagram of the usage state of the lifting mechanism provided by the embodiment of the present application.

[0038] Among them, the reference numerals in the drawings are as follows:

[0039] 100, Glazing device; 200, Conveyor mechanism; 300, Glaze measuring tray; 500, First detection mechanism; 400, Lifting mechanism; 600, Second detection mechanism; 700, PLC; 210, Conveyor belt; 410, Lifting base; 420, First driving source; 430, Lifting support plate; 440, Buffer layer; 421, First cylinder; 422, Second cylinder; 431, First support plate; 432, Second support plate. Detailed implementation mode

[0040] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present application clearer, the present application will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.

[0041] It should be noted that when a component is referred to as "fixed to" or "disposed on" another component, it can be directly or indirectly located on the other component. When a component is referred to as "connected to" another component, it can be directly or indirectly connected to the other component. The orientations or positions indicated by the terms "upper", "lower", "left", "right", "front", "rear", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. are based on the orientations or positions shown in the drawings, and are only for the convenience of description and cannot be construed as limiting the technical solution of the present application. The terms "first" and "second" are only used for the purpose of convenient description and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of technical features. The meaning of "a plurality" is two or more, unless otherwise specifically defined.

[0042] Embodiment 1:

[0043] Please refer to Figure 1 and Figure 4 , this embodiment provides a glazing device, which includes: a glazing device 100, a conveyor mechanism 200, a glaze measuring tray 300, a first detection mechanism 500 and a lifting mechanism 400. The conveyor mechanism 200 is located below the glazing device 100. The glaze measuring tray 300 is detachably connected to the conveyor mechanism 200. The glaze measuring tray 300 is used to collect the glazing amount of the glazing device 100. The first detection mechanism 500 is located on the outlet side of the glazing device 100. The first detection mechanism 500 is used to detect the glaze measuring tray 300 on the conveyor mechanism 200. The lifting mechanism 400 is movably arranged on the conveyor mechanism 200. The lifting mechanism 400 is used to drive the glaze measuring tray 300 to move up and down so that the glaze measuring tray 300 is separated from the conveyor mechanism 200.

[0044] In this embodiment, the glaze measuring tray 300 passes through the glaze spraying device 100 under the drive of the conveying mechanism 200. After the glaze measuring tray 300 collects the glaze spraying amount of the glaze spraying device 100, it is conveyed by the conveying mechanism 200 outside the glaze spraying device 100. On one side of the outlet of the glaze spraying device 100, after the first detection mechanism 500 detects the glaze measuring tray 300, the lifting mechanism 400 works and drives the glaze measuring tray 300 to move upward, so that the glaze measuring tray 300 is separated from the conveying mechanism 200. The lifting mechanism 400 is equivalent to the separation station of the conveying mechanism 200. After the first detection mechanism 500 detects the glaze measuring tray 300, the lifting mechanism 400 can automatically drive the glaze measuring tray 300 to be separated from the conveying mechanism 200, so that the glaze measuring tray 300 stops on the lifting mechanism 400. Then, the operator can obtain the glaze measuring tray 300 from the lifting mechanism 400. Compared with the prior art, it can avoid the operator moving back and forth along the conveying mechanism 200, with simple operation and convenient use, and can reduce the labor intensity of the operator.

[0045] Therefore, in this embodiment, after the glaze measuring tray 300 is detected by the first detection mechanism 500, the lifting mechanism 400 can automatically drive the glaze measuring tray 300 to be separated from the conveying mechanism 200, so that the glaze measuring tray 300 stays on the lifting mechanism 400 for the operator to pick up the glaze measuring tray 300, which is convenient to use and can reduce the labor intensity of the operator.

[0046] For example, during the glaze spraying commissioning process, the glaze spraying device 100 is located above the conveying mechanism 200. The conveying mechanism 200 is used to convey the ceramic tile blank, so that the ceramic tile blank passes under the glaze spraying device 100. The glaze spraying device 100 is used to spray glaze on the ceramic tile blank. In order to measure the glaze spraying amount of the glaze spraying device 100, the glaze measuring tray 300 can be placed on the conveying mechanism 200, so that the glaze measuring tray 300 passes under the glaze spraying device 100. Thus, the glaze measuring tray 300 can collect the glaze spraying amount of the glaze spraying device 100. Then, the glaze measuring tray 300 is driven by the conveying mechanism 200 to drive out of the glaze spraying device 100, that is, the glaze measuring tray 300 drives out of the outlet of the glaze spraying device 100. After the first detection mechanism 500 detects the glaze measuring tray 300, the lifting mechanism 400 can drive the glaze measuring tray 300 to move upward, so that the glaze measuring tray 300 is separated from the conveying mechanism 200 and stays on the lifting mechanism 400. Then, the operator on the left and right can pick up the glaze measuring tray 300 from the lifting mechanism 400 to obtain the glaze spraying amount of the glaze spraying device 100, which can greatly reduce the labor intensity of the operator.

[0047] Among them, the glaze spraying device 100 and the conveying mechanism 200 can be understood as the prior art, and the specific structures of the glaze spraying device 100 and the conveying mechanism 200 will not be elaborated. The first detection mechanism 500 and the lifting mechanism 400 can work in coordination through the PLC 700. For example, please refer to Figure 2, the PLC 700 is respectively connected to the glaze spraying device 100, the conveying mechanism 200, the first detection mechanism 500 and the lifting mechanism 400. When the glaze measuring tray 300 moves to the first detection mechanism 500, the first detection mechanism 500 detects the glaze measuring tray 300 and feeds it back to the PLC 700, thereby providing a control instruction to the PLC 700. Then, the PLC 700 controls the operation of the lifting mechanism 400, causing the lifting mechanism 400 to rise upward, driving the glaze measuring tray 300 to move upward, and separating the glaze measuring tray 300 from the conveying mechanism 200.

[0048] Specifically, please refer to Figure 2 , the lifting mechanism 400 includes: a lifting base 410, a first driving source 420 and a lifting support plate 430. The first driving source 420 is arranged on the lifting base 410, the lifting support plate 430 is connected to the first driving source 420, and the lifting support plate 430 is used to abut against the glaze measuring tray 300. By means of the driving action of the first driving source 420, the lifting support plate 430 drives the glaze measuring tray 300 to be separated from the conveying mechanism 200.

[0049] In this embodiment, the first driving source 420 can drive the lifting support plate 430 to perform a lifting movement, so that the lifting support plate 430 drives the glaze measuring tray 300 to perform a lifting movement, and further enables the glaze measuring tray 300 to be automatically separated from the conveying mechanism 200. For example, the lifting base 410 is located below the conveying platform of the conveying mechanism 200. The lifting base 410 can be installed on the conveying mechanism 200, or the lifting base 410 can be independently arranged on the ground. The first driving source 420 is installed on the lifting base 410, the lifting support plate 430 is connected to the first driving source 420, and the lifting support plate 430 can be placed on both sides of the conveying platform. Relative to the conveying platform, the lifting support plate 430 has a first state lower than the conveying platform and a second state higher than the conveying platform under the driving action of the first driving source 420. When the lifting support plate 430 is lower than the conveying platform, the ceramic tile blank and the glaze measuring tray 300 can pass through normally. When the lifting support plate 430 rises, the glaze measuring tray 300 can be separated from the conveying mechanism 200.

[0050] Specifically, please refer to Figure 2, a lifting support plate 430 may be provided with a buffer layer 440. The lifting support plate 430 is in contact with the glaze measuring tray 300 through the buffer layer 440. The buffer layer 440 plays a buffering role. During the docking process between the lifting support plate 430 and the glaze measuring tray 300, it can greatly buffer the glaze measuring tray 300 and extend its service life. For example, the buffer layer 440 can be partially laid on the top of the lifting support plate 430 or completely cover the top of the lifting support plate 430. The buffer layer 440 can be made of one of the structures of a rubber pad, sponge or foam. For example, the buffer layer 440 can be made of a rubber pad. The rubber pad can withstand large deformations and is not prone to permanent deformation. When the rubber pad is subjected to an external force, it will deform. When the external force disappears, it can quickly return to its original state. This characteristic makes the rubber pad an ideal buffer material, which can effectively absorb the impact energy of the glaze measuring tray 300 and extend the service lives of the lifting support plate 430 and the glaze measuring tray 300.

[0051] Specifically, please refer to Figure 3 , the first driving source 420 includes: a first air cylinder 421 and a second air cylinder 422. The first air cylinder 421 is arranged on the lifting base 410 and is located on the left side of the conveying mechanism 200, and the second air cylinder 422 is arranged on the lifting base 410 and is located on the right side of the conveying mechanism 200;

[0052] Please refer to Figure 2 , the lifting support plate 430 includes: a first support plate 431 and a second support plate 432. The first support plate 431 is connected to the first air cylinder 421, and the first support plate 431 is used to be in contact with the left side of the glaze measuring tray 300. The second support plate 432 is connected to the second air cylinder 422, and the second support plate 432 is used to be in contact with the right side of the glaze measuring tray 300.

[0053] In this embodiment, the first support plate 431 and the second support plate 432 are respectively located on the left and right sides of the conveying mechanism 200, and the first support plate 431 is driven by the first air cylinder 421 to lift, and the second support plate 432 is driven by the second air cylinder 422 to lift. When the first detection mechanism 500 detects the glaze measuring tray 300, the first air cylinder 421 and the second air cylinder 422 can work simultaneously, that is, the first support plate 431 and the second support plate 432 rise synchronously to separate the glaze measuring tray 300 from the conveying mechanism 200.

[0054] Specifically, please refer to Figure 2 , both the first support plate 431 and the second support plate 432 are parallel to the conveying direction of the conveying mechanism 200.

[0055] In this embodiment, both the first support plate 431 and the second support plate 432 are parallel to the conveying direction of the conveying mechanism 200, that is, both the first support plate 431 and the second support plate 432 are parallel to the conveying platform of the conveying mechanism 200. This can increase the contact area between the first support plate 431, the second support plate 432 and the glaze measuring tray 300, improve the stability of the lifting of the glaze measuring tray 300, and ensure that the glaze measuring tray 300 can be smoothly separated from the conveying mechanism 200.

[0056] Specifically, please refer to Figure 3 , both the first cylinder 421 and the second cylinder 422 include the following structure: a double-rod cylinder, and the double-rod cylinder is used to drive the glaze measuring tray 300 to move up and down.

[0057] In this embodiment, both the first cylinder 421 and the second cylinder 422 adopt double-rod cylinders, that is, on the left side, a double-rod cylinder is used to drive the first support plate 431 to move up and down along the conveying mechanism 200, and on the right side, another double-rod cylinder is used to drive the second support plate 432 to move up and down along the conveying mechanism 200. In view of the fact that the double-rod cylinder has two symmetrical piston rods, this structure enables it to withstand large lateral loads and torques during operation, while maintaining good guiding properties and running stability.

[0058] Optionally, the first detection mechanism 500 includes the following structure: a proximity switch, and the proximity switch is used to detect the glaze measuring tray 300 on the conveying mechanism 200.

[0059] In this embodiment, the first detection mechanism 500 adopts a proximity switch, and the proximity switch is used to detect the glaze measuring tray 300 on the conveying mechanism 200. For example, when the glaze measuring tray 300 moves to the sensing distance of the proximity switch, the proximity switch can be actuated, thereby providing a control instruction to the PLC 700. Thereafter, the PLC 700 controls the first driving source 420 of the lifting mechanism 400 to work, so that the lifting mechanism 400 rises, driving the glaze measuring tray 300 to move upward and separate from the conveying mechanism 200.

[0060] Preferably, the proximity switch may include an inductive proximity switch, and the inductive proximity switch is used to detect the glaze measuring tray 300 on the conveying mechanism 200. For example, the inductive proximity switch can detect the glaze measuring tray 300 through electromagnetic induction, and at the same time, the inductive proximity switch does not sense the ceramic tile blank. In this way, the ceramic tile blank can pass smoothly through the lifting mechanism 400 without staying. When the glaze measuring tray 300 passes by the inductive proximity switch, the inductive proximity switch can sense and detect the glaze measuring tray 300, thereby enabling the lifting mechanism 400 to drive the glaze measuring tray 300 to move upward and separate from the conveying mechanism 200. The inductive proximity switch can be understood as the prior art, and the specific structure of the inductive proximity switch will not be elaborated here.

[0061] Specifically, please refer to Figure 3, the conveying mechanism 200 includes a conveying belt 210. The glaze measuring tray 300 includes a metal tray. The metal tray is detachably connected to the conveying belt 210, and the metal tray extends from the conveying belt 210 to both sides, so that both sides of the metal tray are suspended on the conveying belt 210.

[0062] In this embodiment, the conveying belt 210 is used to convey ceramic tile blanks, so that the ceramic tile blanks enter the glaze spraying device 100 and pass through the glaze spraying device 100. At the same time, the conveying belt 210 can convey the glaze measuring tray 300 and drive the glaze measuring tray 300 to move. The metal tray is used to collect the glaze spraying amount of the glaze spraying device 100. At the same time, the metal tray can be detected by a proximity switch, while the ceramic tile blank will not be detected by the proximity switch. When the metal tray passes by the proximity switch, the metal tray will be detected by the proximity switch. Then, the lifting mechanism 400 rises upward to drive the metal tray to move upward, so that the metal tray is separated from the conveying belt 210, and the metal tray can stay on the lifting mechanism 400 for the operator to pick up. At the same time, the conveying belt 210 can continue to convey the ceramic tile blanks.

[0063] For example, during the batch production of glaze spraying on ceramic tile blanks, the glaze spraying process also requires the operator to randomly inspect the glaze application amount from time to time. The operator can place the metal tray between two ceramic tile blanks. Then, the conveying belt 210 drives the metal tray and the ceramic tile blanks to move toward the glaze spraying device 100. After the metal tray and the ceramic tile blanks are sprayed with glaze by the glaze spraying device 100 and drive out of the outlet of the glaze spraying device 100, at the outlet position, the proximity switch can detect the metal tray. When the proximity switch detects the metal tray, the lifting mechanism 400 can work. The lifting mechanism 400 can drive the metal tray to move upward, so that the metal tray is separated from the conveying belt 210. At this time, the metal tray stays on the lifting mechanism 400, and the conveying belt 210 does not need to stop and continues to drive the ceramic tile blanks to work, which can ensure the smooth progress of the random inspection operation of glaze spraying on ceramic tile blanks and ensure the continuous operation production of glaze spraying on ceramic tile blanks.

[0064] Specifically, please refer to Figure 1 and Figure 2 , the glaze spraying device further includes: a second detection mechanism 600. The second detection mechanism 600 is used to detect the glaze measuring tray 300 on the lifting mechanism 400. With the detection of the second detection mechanism 600, the lifting mechanism 400 is reset.

[0065] In this embodiment, the second detection mechanism 600 is used to detect the glaze measuring tray 300 on the lifting mechanism 400. When there is no glaze measuring tray 300 on the lifting mechanism 400, the lifting mechanism 400 can be reset at this time. For example, when the glaze measuring tray 300 is taken away by the operator from the lifting mechanism 400, at this time, the second detection mechanism 600 detects that there is no glaze measuring tray 300 on the lifting mechanism 400, and the lifting mechanism 400 is controlled to descend and reset through the PLC 700.

[0066] Optionally, the second detection mechanism 600 may include one of the following structures: a detection camera or a weighing sensor.

[0067] For example, the second detection mechanism 600 may use a detection camera to detect the glaze measuring tray 300 on the lifting mechanism 400. When the detection camera detects that there is no glaze measuring tray 300 on the lifting mechanism 400, the lifting mechanism 400 may be controlled to cause the lifting mechanism 400 to descend and reset.

[0068] For example, the second detection mechanism 600 may use a weighing sensor to detect the glaze measuring tray 300 on the lifting mechanism 400. When the weighing sensor detects that there is no weight of the glaze measuring tray 300 on the lifting mechanism 400, the lifting mechanism 400 may be controlled to cause the lifting mechanism 400 to descend and reset.

[0069] Optionally, the second detection mechanism 600 may further include the following structure: a photoelectric sensor, and the photoelectric sensor is used to detect the glaze measuring tray 300 on the lifting mechanism 400.

[0070] For example, the second detection mechanism 600 may use a photoelectric sensor to detect the glaze measuring tray 300 on the lifting mechanism 400. When the photoelectric sensor detects that there is no glaze measuring tray 300 on the lifting mechanism 400, the lifting mechanism 400 may be controlled to cause the lifting mechanism 400 to descend and reset.

[0071] Embodiment 2:

[0072] Please refer to Figure 1 , this embodiment provides a ceramic glaze spraying production line, wherein, the ceramic glaze spraying production line includes the glaze spraying device of the above embodiment. Thus, the ceramic glaze spraying production line may have all the features and effects of the above glaze spraying device, which will not be elaborated here.

[0073] In summary, the present application discloses a glaze spraying device and a ceramic glaze spraying production line. Among them, the glaze spraying device includes: a glaze sprayer, a conveying mechanism, a glaze measuring tray, a first detection mechanism, and a lifting mechanism. The conveying mechanism is located below the glaze sprayer. The glaze measuring tray is detachably connected to the conveying mechanism. The glaze measuring tray is used to collect the glaze spraying amount of the glaze sprayer. The first detection mechanism is located on one side of the outlet of the glaze sprayer. The first detection mechanism is used to detect the glaze measuring tray on the conveying mechanism. The lifting mechanism is movably arranged on the conveying mechanism. The lifting mechanism is used to drive the glaze measuring tray to move up and down so that the glaze measuring tray is separated from the conveying mechanism. After the glaze measuring tray in the present application is detected by the first detection mechanism, the lifting mechanism can automatically drive the glaze measuring tray to disengage from the conveying mechanism, so that the glaze measuring tray stays on the lifting mechanism, facilitating the operator to pick up the glaze measuring tray, which is convenient to use and can reduce the labor intensity of the operator.

[0074] The above are only the preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present application shall be included within the protection scope of the present application.

Claims

1. A glazing device, characterized in that, Comprising: A glaze spraying device; A conveying mechanism, which is located below the glaze spraying device; A glaze measuring tray, which is detachably connected to the conveying mechanism and is used to collect the amount of glaze sprayed by the glaze spraying device; A first detection mechanism, which is located on one side of the outlet of the glaze spraying device and is used to detect the glaze measuring tray on the conveying mechanism; A lifting mechanism, which is movably arranged on the conveying mechanism and is used to drive the glaze measuring tray to move up and down so that the glaze measuring tray is separated from the conveying mechanism.

2. The glazing device according to claim 1, characterized in that, The lifting mechanism comprises: A lifting base; A first driving source, which is arranged on the lifting base; A lifting support plate, which is connected to the first driving source and is used to abut against the glaze measuring tray. By means of the driving action of the first driving source, the lifting support plate drives the glaze measuring tray to be separated from the conveying mechanism.

3. The glazing device according to claim 2, characterized in that, The first driving source comprises: A first air cylinder, which is arranged on the lifting base and is located on the left side of the conveying mechanism; A second air cylinder, which is arranged on the lifting base and is located on the right side of the conveying mechanism; The lifting support plate comprises: A first support plate, which is connected to the first air cylinder and is used to abut against the left side of the glaze measuring tray; A second support plate, which is connected to the second air cylinder and is used to abut against the right side of the glaze measuring tray.

4. The glazing device according to claim 3, characterized in that, Both the first support plate and the second support plate are parallel to the conveying direction of the conveying mechanism.

5. The glazing device according to claim 3, characterized in that, Both the first air cylinder and the second air cylinder comprise the following structure: a double-rod air cylinder, which is used to drive the glaze measuring tray to move up and down.

6. The glazing device according to claim 1, characterized in that The first detection mechanism comprises the following structure: a proximity switch, which is used to detect the glaze measuring tray on the conveying mechanism.

7. The glazing device according to claim 1, characterized in that, The conveying mechanism comprises a conveying belt, and the glaze measuring tray comprises a metal tray, which is detachably connected to the conveying belt and extends from the conveying belt to both sides so that both sides of the metal tray are suspended on the conveying belt.

8. The glazing device according to claim 1, characterized in that, Further comprising: A second detection mechanism, which is used to detect the glaze measuring tray on the lifting mechanism. By means of the detection of the second detection mechanism, the lifting mechanism is reset.

9. The glazing device according to claim 8, characterized in that, The second detection mechanism comprises the following structure: a photoelectric sensor, which is used to detect the glaze measuring tray on the lifting mechanism.

10. A ceramic glazing production line, characterized in that, Comprising the glaze spraying device according to any one of claims 1-9.