Ink viscosity detection device

Through the design of the conveyor belt and speed regulation assembly, combined with the preheating box, the multi-cup continuous detection of the ink viscosity detection device is realized, which solves the problems of low detection efficiency and large energy consumption of the existing devices, improves the detection efficiency and reduces energy loss.

CN223051112UActive Publication Date: 2025-07-01FOSHAN HUAYI CERAMIC COLORS CO LTD
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Patent Information

Application Number
CN202421849205.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-01
Publication Date
2025-07-01
Estimated Expiration
2034-08-01

AI Technical Summary

Technical Problem

The existing ink viscosity detection device cannot realize the continuous detection of multiple cups of ink, and the hot air nozzle and the cold air nozzle consume a lot of time and energy when adjusting the temperature.

Method used

The conveyor belt and speed regulation components are used, combined with asynchronous motors, electric push rods, servo motors and other components to realize the continuous conveying of the measuring cup and the heating and cooling of ink, and preheating the ink in advance through the preheating box to reduce energy loss.

Benefits of technology

Continuous detection of multiple cups of ink is achieved, which improves detection efficiency, shortens the temperature increase time, and reduces energy consumption.

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Abstract

The utility model discloses an ink viscosity detection device, which relates to the technical field of ink processing and related equipment, and comprises a detection frame and a conveying belt arranged in the detection frame, the upper surface of the conveying belt is uniformly provided with mounting seats at intervals along the horizontal direction, and one side of the upper surface of each mounting seat is provided with a speed regulation assembly. A preheating box is installed in the center of the upper surface of the detection frame. The efficiency of heating and cooling ink in the measuring cup can be improved through the conveying belt and the speed adjusting assembly, meanwhile, the ink can be continuously detected under the action of the conveying belt, the detection efficiency of the ink is further improved, preheating can be conducted in advance through the preheating box, the temperature of the cooled ink in the measuring cup is increased, and the detection efficiency is improved. Therefore, the time for increasing the temperature of the ink in the measuring cup subsequently is shortened, and energy loss is reduced.
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Description

Technical Field

[0001] The utility model belongs to the technical field of ink processing and its related equipment, and particularly relates to an ink viscosity detection device. Background Technique

[0002] Ink is a liquid containing pigments or dyes, which is often used for writing or painting. With the wide application of printing and inkjet output technologies, current inks are mostly used in inkjet printing and printing. There are many types of inks, and after they are produced and processed, a viscosity detection device is generally required to detect their viscosity accordingly to improve the quality of the ink after production.

[0003] After retrieval, the publication number CN220419087U, and the application date is July 5, 2023. It discloses an ink viscosity detection device, which relates to the field of ink processing. It includes a box body, a viscometer is arranged inside the box body, a control panel and a display are arranged on the box body, a temperature sensor is arranged inside the measuring cup, a hot air nozzle and a cold air nozzle are arranged inside the box body. The temperature sensor and the signal output end of the control panel are signal-connected to a first single-chip microcomputer. The first single-chip microcomputer can compare the ink temperature with the set temperature and control the hot air nozzle or the cold air nozzle to adjust the temperature of the sample ink in the measuring cup, so that the operator can detect the viscosity value of the ink at different temperatures through the viscosity detection device. This application has the effect of improving the usability of the ink viscosity detection device.

[0004] However, it still has the following disadvantages in actual use:

[0005] 1. When the above-mentioned ink viscosity detection device is used, the measuring cup is placed inside the box body and the temperature of the ink is adjusted by the hot air nozzle and the cold air nozzle inside. However, this method can only detect the ink in a single measuring cup each time, and it is impossible to continuously detect multiple cups of ink. Moreover, continuously changing the temperature inside the box body will consume a lot of time, resulting in low detection efficiency;

[0006] 2. When the above-mentioned ink viscosity detection device is used, the temperature inside the box body and the ink is changed by the hot air nozzle and the cold air nozzle. However, this method will cause a large amount of energy loss and consume a long time, which is not convenient for use. Therefore, we provide an ink viscosity detection device to solve the above problems. Content of the Utility Model

[0007] The purpose of the utility model is to provide an ink viscosity detection device. By setting a conveyor belt and a speed regulation component, the heating and cooling efficiency of the ink inside the measuring cup can be accelerated. At the same time, under the action of the conveyor belt, the ink can be continuously detected, further increasing the detection efficiency of the ink. And by using a preheating box, the ink in the measuring cup can be preheated in advance and the temperature of the cooled ink can be raised, thereby shortening the time for the temperature of the ink in the subsequent measuring cup to rise and reducing energy loss at the same time.

[0008] To solve the above technical problems, the utility model is realized through the following technical solutions:

[0009] The utility model relates to an ink viscosity detection device, which comprises a detection frame and a conveyor belt arranged inside it. The upper surface of the conveyor belt is evenly spaced along the horizontal direction and is provided with mounting seats. One side of the upper surface of the mounting seat is provided with a speed regulation component, and the center position of the upper surface of the detection frame is provided with a preheating box;

[0010] The speed regulation component includes an asynchronous motor and a driving gear disk installed on its output shaft. One side of the driving gear disk is provided with a driven gear disk.

[0011] The utility model is further arranged such that a cold air box is installed at one side edge of the upper surface of the detection frame, and cold air pipes are evenly spaced along the horizontal direction below the rear end face of the cold air box.

[0012] The utility model is further arranged such that a hot air box is installed at the other side edge of the upper surface of the detection frame, and hot air pipes are evenly spaced along the horizontal direction below the rear end face of the hot air box.

[0013] The utility model is further arranged such that detection mechanisms are provided at the center positions of the inner tops of the cold air box and the hot air box, and a measuring cup is placed at the center position of the upper surface of the mounting seat.

[0014] The utility model is further arranged such that preheating pipes are evenly spaced along the horizontal direction at the bottom of the rear end face of the preheating box, and heat insulation curtains are provided at the bottoms of the outer walls on both sides of the cold air box, the hot air box and the preheating box.

[0015] The utility model is further arranged such that a regulating shaft is installed at the center position inside the driven gear disk, and the bottom end of the regulating shaft penetrates through the center position of the top of the driven gear disk and is connected to a bearing on one side of the upper surface of the mounting seat.

[0016] The utility model is further arranged such that an electric push rod is installed at the top end of the regulating shaft, a lifting frame is installed at the telescopic end of the electric push rod, and a servo motor is installed on the outer side of the bottom of the lifting frame.

[0017] The utility model is further arranged such that the output shaft of the servo motor is connected to a rotating shaft through a coupling, and a stirring rod is sleeved on the outer side of the outer wall of the rotating shaft.

[0018] The utility model has the following beneficial effects:

[0019] 1. By setting a conveyor belt and a speed regulation component, the utility model can accelerate the heating and cooling efficiency of the ink inside the measuring cup under the action of an asynchronous motor, an electric push rod, a servo motor and various components. At the same time, under the action of the conveyor belt, the measuring cups can be sequentially conveyed into the cold air box and the hot air box, achieving the purpose of continuously detecting the ink inside the measuring cup, enabling continuous ink detection, further increasing the ink detection efficiency, and solving the problem that when the above-mentioned ink viscosity detection device is used, the measuring cup is placed inside the box body and the ink temperature is adjusted by the hot air nozzle and the cold air nozzle inside, but this method can only detect the ink in a single measuring cup each time, cannot achieve continuous detection of multiple cups of ink, and continuously changing the temperature inside the box body will consume a lot of time, resulting in low detection efficiency.

[0020] 2. By setting a preheating box, the utility model can preheat in advance and raise the temperature of the cooled ink inside the measuring cup under the action of the preheating pipes arranged on the preheating box, thereby shortening the time for the ink temperature inside the subsequent measuring cup to rise and reducing energy loss, solving the problem that when the above-mentioned ink viscosity detection device is used, the temperature inside the box body and the ink are changed by the hot air nozzle and the cold air nozzle, but this method will cause a large amount of energy loss, consume a long time, and is not convenient to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a schematic structural diagram of an ink viscosity detection device.

[0022] Figure 2 It is a cross-sectional view of an ink viscosity detection device.

[0023] Figure 3 It is a structural diagram of the mounting seat.

[0024] Figure 4 It is a structural diagram of the speed regulation component.

[0025] Figure 5 It is a structural diagram of the servo motor and its related components.

[0026] In the drawings, the list of components represented by each reference numeral is as follows:

[0027] 1 - Detection rack, 101 - Conveyor belt, 102 - Cold air box, 1021 - Cold air pipe, 103 - Hot air box, 1031 - Hot air pipe, 104 - Detection mechanism, 105 - Heat insulation curtain, 106 - Mounting seat, 107 - Measuring cup, 2 - Speed regulation component, 201 - Asynchronous motor, 2011 - Driving gear disc, 202 - Adjusting shaft, 2021 - Driven gear disc, 203 - Electric push rod, 2031 - Hoisting frame, 204 - Servo motor, 2041 - Rotating shaft, 205 - Stirring rod, 3 - Preheating box, 301 - Preheating pipe. DETAILED DESCRIPTION OF THE EMBODIMENTS Specific Embodiment 1

[0029] Please refer to Figures 1 to 5 , this utility model is an ink viscosity detection device, which includes a detection frame 1 and a conveyor belt 101 arranged inside it. The upper surface of the conveyor belt 101 is evenly spaced along the horizontal direction and is provided with mounting seats 106. One side of the upper surface of the mounting seat 106 is provided with a speed regulation component 2; the speed regulation component 2 includes an asynchronous motor 201 and a driving gear disc 2011 installed on its output shaft. One side of the driving gear disc 2011 is provided with a driven gear disc 2021.

[0030] Specifically, a cold air box 102 is installed at one side edge of the upper surface of the detection frame 1. Below the rear end face of the cold air box 102, cold air pipes 1021 are evenly spaced along the horizontal direction. A hot air box 103 is installed at the other side edge of the upper surface of the detection frame 1. Below the rear end face of the hot air box 103, hot air pipes 1031 are evenly spaced along the horizontal direction. At the center position of the inner top of both the cold air box 102 and the hot air box 103, a detection mechanism 104 is provided. A measuring cup 107 is placed at the center position of the upper surface of the mounting seat 106. At the center position of the inner part of the driven gear disc 2021, an adjusting shaft 202 is installed. The bottom end of the adjusting shaft 202 passes through the center position of the top of the driven gear disc 2021 and is connected to the bearing on one side of the upper surface of the mounting seat 106. The top end of the adjusting shaft 202 is installed with an electric push rod 203. The telescopic end of the electric push rod 203 is installed with a lifting frame 2031. The outer side of the bottom of the lifting frame 2031 is installed with a servo motor 204. The output shaft of the servo motor 204 is connected to a rotating shaft 2041 through a coupling. The outer wall of the rotating shaft 2041 is sleeved with a stirring rod 205.

[0031] Furthermore, the cold air box 102 and the hot air box 103 are respectively arranged at both ends of the surface of the detection frame 1. The detection mechanism 104 is prior art, so no more details will be described here. When the asynchronous motor 201 operates, it can drive the driving gear disc 2011 to rotate under the action of the coupling. The gear on the outer wall of the driving gear disc 2011 is meshed with the gear on the outer wall of the driven gear disc 2021, playing a role of meshing connection. The rotation of the driven gear disc 2021 will drive the adjusting shaft 202 on its inner wall to rotate, and make the electric push rod 203 and the stirring component on its top rotate. The operation of the electric push rod 203 can drive the lifting frame 2031 to move. The operation of the servo motor 204 can drive the rotating shaft 2041 to rotate under the action of the coupling, and make the stirring rod 205 on its outer wall rotate, so as to stir the ink inside the measuring cup 107 and improve the heating and cooling efficiency.

[0032] The operation process of this embodiment is as follows: Place the ink inside multiple measuring cups 107, and place the measuring cups 107 on the surface of the mounting base 106. Then, transport the mounting base 106 to the inside of the cold air box 102 through the conveyor belt 101. Next, introduce cold air into the cold air box 102 through the cold air pipe 1021. At the same time, start the asynchronous motor 201. The output shaft of the asynchronous motor 201 rotates to drive the driving gear disk 2011, and the gear on the outer wall of the driving gear disk 2011 is meshed and connected with the gear on the outer wall of the driven gear disk 2021. Therefore, when the driving gear disk 2011 rotates, it will drive the driven gear disk 2021 to rotate, and the adjusting shaft 202 on its inner wall will rotate, thereby adjusting the positions of the upper electric push rod 203 and the stirring component, and rotating them to directly above the measuring cup 107. Then, start the electric push rod 203. The telescopic end of the electric push rod 203 contracts to drive the lifting frame 2031 to move downward, and the stirring component at its bottom moves downward into the measuring cup 107. Then, start the servo motor 204. The output shaft of the servo motor 204 rotates to drive the rotating shaft 2041 to rotate under the action of the coupling, and the stirring rod 205 on its outer wall rotates, so as to stir the ink inside the measuring cup 107, thereby accelerating the heating and cooling efficiency of the ink inside the measuring cup 107. At the same time, under the action of the conveyor belt 101, the measuring cup 107 can be sequentially transported into the cold air box 102 and the hot air box 103, achieving the purpose of continuously detecting the ink inside the measuring cup 107, enabling continuous ink detection, and further increasing the ink detection efficiency. Specific Embodiment Two

[0034] Please refer to Figures 1 to 2 , on the basis of Specific Embodiment One, the difference from the first embodiment is: A preheating box 3 is provided, which solves the problem that in the existing ink viscosity detection device, when in use, the temperature inside the box body and the ink is changed through the hot air nozzle and the cold air nozzle, and this method will cause a large amount of energy loss, and the time consumed is relatively long, which is not convenient for use.

[0035] Specifically, preheating pipes 301 are evenly spaced along the horizontal direction at the bottom of the rear end face of the preheating box 3, and heat insulation curtains 105 are provided at the bottom of the outer walls on both sides of the cold air box 102, the hot air box 103, and the preheating box 3.

[0036] Furthermore, hot air can be introduced into the preheating box 3 through the preheating pipes 301, and the ink in the internal measuring cup 107 can be preheated in advance, shortening the time for the ink temperature to rise and reducing energy loss. The heat insulation curtain 105 can reduce the temperature loss inside the cold air box 102, the hot air box 103, and the preheating box 3.

[0037] The operation process of this embodiment is as follows: After the measuring cup 107 is cooled and detected by the cold air box 102, the measuring cup 107 can be transported into the preheating box 3 under the action of the conveyor belt 101, and through the preheating pipe 301 provided on the preheating box 3, the temperature of the cooled ink in the measuring cup 107 can be preheated and increased in advance, thereby shortening the time for the temperature of the ink in the subsequent measuring cup 107 to rise and reducing the energy loss.

[0038] In the description of this specification, the descriptions referring to the terms "one embodiment", "example", "specific example", etc. mean that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present utility model. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0039] The preferred embodiments of the present utility model disclosed above are only used to help explain the present utility model. The preferred embodiments do not describe all the details in detail, nor do they limit the present utility model to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present utility model, so that those skilled in the relevant technical field can well understand and utilize the present utility model. The present utility model is only limited by the claims and their full scope and equivalents.

Claims

1. An ink viscosity detection device, comprising a detection frame (1) and a conveyor belt (101) arranged inside the detection frame, wherein mounting seats (106) are evenly spaced along the horizontal direction on the upper surface of the conveyor belt (101), characterized in that: A speed regulating assembly (2) is provided on one side of the upper surface of the mounting seat (106), and a preheating box (3) is installed at the center position of the upper surface of the detection frame (1); The speed regulating assembly (2) comprises an asynchronous motor (201) and a driving gear disc (2011) mounted on the output shaft thereof, and a driven gear disc (2021) is provided on one side of the driving gear disc (2011).

2. The ink viscosity detection device according to claim 1, characterized in that: A cold air box (102) is installed at one edge of the upper surface of the detection frame (1), and cold air pipes (1021) are evenly spaced in the horizontal direction below the rear end surface of the cold air box (102).

3. The ink viscosity detection device according to claim 2, characterized in that: A hot air box (103) is installed at the edge of the other side of the upper surface of the detection frame (1), and hot air pipes (1031) are evenly spaced in the horizontal direction downwardly from the rear end surface of the hot air box (103).

4. The ink viscosity detection device according to claim 3, characterized in that: A detection mechanism (104) is provided at the center position of the inner top end of the cold air box (102) and the hot air box (103), and a measuring cup (107) is placed at the center position of the upper surface of the mounting seat (106).

5. The ink viscosity detection device according to claim 4, characterized in that: Preheating pipes (301) are evenly spaced in the horizontal direction at the bottom of the rear end surface of the preheating box (3), and heat insulation curtains (105) are provided at the bottom of the outer walls of both sides of the cold air box (102), the hot air box (103) and the preheating box (3).

6. The ink viscosity detection device according to claim 1, characterized in that: An adjustment shaft (202) is installed at the inner center position of the driven gear disc (2021), and the bottom end of the adjustment shaft (202) passes through the top center position of the driven gear disc (2021) and is connected to a bearing on one side of the upper surface of the mounting seat (106).

7. The ink viscosity detection device according to claim 6, characterized in that: An electric push rod (203) is installed at the top end of the adjustment shaft (202), a hanging frame (2031) is installed at the telescopic end of the electric push rod (203), and a servo motor (204) is installed on the outer side of the bottom of the hanging frame (2031).

8. The ink viscosity detection device according to claim 7, characterized in that: The output shaft of the servo motor (204) is connected to the rotating shaft (2041) via a coupling, and a stirring rod (205) is sleeved on the outer side of the outer wall of the rotating shaft (2041).

Citation Information

Patent Citations

  • Ink viscosity detection device

    CN220419087U