Inclination angle measuring device
By designing an automated tilt angle measurement device, the problem of inaccurate tilt angle measurement of substrates in ink adhesion testing was solved, achieving high-precision and high-repeatability angle measurement.
Patent Information
- Application Number
- CN202520003852.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-02
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2035-01-02
AI Technical Summary
In existing technologies, when testing ink adhesion, the substrate is prone to deviation or deformation, leading to inaccurate measurement of the tilt angle. Furthermore, uneven force applied by the experimenter when manually tilting the substrate results in large errors.
Design an inclination measuring device, including a main body, an inclination component, a rotation component, and a display component. The device automatically adjusts the inclination angle of the carrier using a drive component, and ensures measurement accuracy through sensors and control components. It also incorporates a fixing component to prevent the substrate from deviating.
It enables automated and precise measurement of the tilt angle of the printing substrate, reducing human error and ensuring the accuracy and repeatability of measurement results.
Smart Images

Figure CN223636854U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to ink detection technical field especially relates to inclination measuring device. BACKGROUND
[0002] Ink is a kind of printing material that is presented on printing material by printing or spray drawing, and the adhesion between ink and printing material is an important index for detecting ink quality.
[0003] Generally, the experimenter sets a carrier to support the printing material coated with ink, and places a weight of a predetermined weight on the printing material. As the carrier is gradually inclined from the horizontal state, the weight slides down from the surface of the printing material under the action of gravity, so as to obtain the angle value of the printing material coated with ink under the weight of the predetermined weight.
[0004] The printing material is generally sheet material such as paper and film, and in the process of sliding down under the weight, the printing material is prone to deviation or deformation. If the experimenter manually inclines the carrier, the inclination angle measured may be inaccurate due to uneven force when the experimenter manually inclines the carrier. SUMMARY
[0005] To solve the above technical problems and achieve at least one advantage of the utility model, the utility model provides an inclination measuring device, wherein the inclination measuring device comprises:
[0006] A device main body, the device main body has a high end portion and a low end portion lower than the high end portion;
[0007] An inclination assembly, the inclination assembly is installed on the high end portion of the device main body, and the inclination assembly comprises a bearing piece, the bearing piece forms a sliding groove, a first end portion communicated with the sliding groove and a second end portion communicated with the sliding groove;
[0008] A rotating assembly, the rotating assembly comprises a rotating shaft, the rotating shaft is rotatably installed on the bearing piece, and the rotating shaft is used to drive the bearing piece to rotate around the axial direction of the rotating shaft;
[0009] A display assembly, the display assembly comprises a display piece and an indicating piece, the display piece is fixedly installed on the device main body, the surface of the display piece is provided with scale lines representing angle size and numbers corresponding to the scale lines, one end portion of the indicating piece points to the scale lines provided on the display piece, and the end portion of the indicating piece away from the display piece is connected with the rotating shaft.
[0010] According to the utility model one embodiment, the bearing piece still includes fixed component, the fixed component is located first end portion, the fixed component includes fixed part and fastener, the fastener is rotatably connected between fixed part and bearing piece.
[0011] According to the utility model one embodiment, the display piece is arranged with the rotating shaft connection, the indication piece's far from the display piece one end is fixedly installed on the equipment main part.
[0012] According to the utility model one embodiment, the rotating assembly still includes drive rotating piece, the rotating shaft is connected to drive rotating piece, and drive rotating piece is used to drive the rotating shaft rotation.
[0013] According to the utility model one embodiment, the inclination measuring device still includes control assembly, the control assembly is installed on the equipment main part, and the control assembly includes starting part, the starting part is connected with drive rotating piece circuit, and the starting part is used to control the start-stop of drive rotating piece.
[0014] According to the utility model one embodiment, the control assembly still includes warning light, the warning light is connected with drive rotating piece circuit, and the warning light is used to prompt experimenter the start-stop of drive rotating piece.
[0015] According to the utility model one embodiment, the fixed component is provided with two, one of the two fixed components is located in the first end portion, and the other fixed component of the two fixed components is located in the second end portion.
[0016] According to the utility model one embodiment, the thickness of the fixed part located in the second end portion is set to be greater than the height of the sliding block, so as to block the sliding block from sliding from the first end portion to the second end portion.
[0017] According to the utility model one embodiment, the fixed component located in the second end portion is arranged to be able to slide in the sliding groove, and the bottom wall of the bearing piece is spaced apart and provided with a mounting hole adapted to the fastener.
[0018] According to the utility model one embodiment, the fixed part located in the second end portion is further provided with a collision sensor and a controller, the collision sensor is connected with the drive rotating piece through the controller, and the controller converts the collision signal of the collision sensor into an electrical signal and transmits it to the drive rotating piece. BRIEF DESCRIPTION OF DRAWINGS
[0019] Fig. 1 The utility model discloses the inclination measuring device's three-dimensional schematic view is shown.
[0020] Fig. 2Another angle of the inclination measuring device is shown in the perspective view.
[0021] Fig. 3 A front view of the inclination measuring device is shown in the utility model. DETAILED DESCRIPTION
[0022] The following description is provided to enable any person skilled in the art to practice the present application. The preferred embodiments described herein are only examples of the present application and alternative embodiments can be devised by those skilled in the art without departing from the spirit and scope of the present application. The disclosure of the present application is described in the following description with reference to the figures, in which like reference numerals represent like items throughout the figures. While the present application is described in terms of the preferred embodiments, the skilled artisan will appreciate that the application can be practiced with modifications in the details of the disclosure that are not specifically described herein. Accordingly, the present application is not limited to the embodiments described herein, but is instead defined by the claims appended hereto.
[0023] It should be understood that the orientation or positional relationship indicated by the terms "longitudinal", "lateral", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like in the disclosure of the present application is based on the orientation or positional relationship shown in the drawings, which is only for the convenience of describing the present application and simplifying the description, and does not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, therefore the above terms cannot be understood as a limitation on the present application.
[0024] It can be understood that the term "one" should be understood as "at least one" or "one or more", that is, in one embodiment, the number of one element can be one, and in another embodiment, the number of the element can be multiple, and the term "one" cannot be understood as a limitation on the number.
[0025] Reference Figs. 1 to 3 The inclination measuring device according to a preferred embodiment of the present application will be described in detail below, which is used to detect the inclination angle of a substrate 800 when a slider 900 starts to slide on the substrate 800 coated with ink. The substrate 800 is implemented as including paper and other thin film materials.
[0026] The inclination measuring device includes a device body 10, an inclination assembly 20, a rotating assembly 30 and a display assembly 40.
[0027] The device body 10 has a high end and a low end lower than the high end. The inclination assembly 20 is mounted to the high end of the device body 10. The inclination assembly 20 is connected to the rotating assembly 30.
[0028] The tilting assembly 20 comprises a carrier 21. The carrier 21 forms a sliding groove 2101, a first end 2102 communicating with the sliding groove 2101, and a second end 2103 communicating with the sliding groove 2101. The sliding groove 2101 is used to accommodate the printing material 800 and the sliding block 900. The printing material 800 is laid on the bottom wall of the sliding groove 2101, and the sliding block 900 is placed on the upper surface of the printing material 800. In the initial state, the first end 2102 and the second end 2103 are at the same horizontal height, and at this time, the carrier 21 is in a horizontal state. The sliding block 900 in contact with the ink coated on the surface of the printing material 800 is placed at the first end 2102.
[0029] In an example, the carrier 21 is implemented as a plate.
[0030] The rotating assembly 30 comprises a rotating shaft 31. The rotating shaft 31 is installed on the equipment body 10 in a manner capable of driving the carrier 21 to rotate.
[0031] In an embodiment, the experimenter manually controls the carrier 21 to make the horizontal height of the end of the carrier 21 forming the first end 2102 higher than the horizontal height of the end of the carrier 21 forming the second end 2103, and the sliding block 900 slides in the sliding groove 2101 from the first end 2102 to the second end 2103 under the action of gravity until the sliding block 900 completely slides to the second end 2103, and the experimenter stops lifting the carrier 21.
[0032] Further, the rotating assembly 30 further comprises a driving device 32. The rotating shaft 31 is connected to the driving device 32. The driving device 32 is used to drive the rotating shaft 31 to rotate. Specifically, the rotating shaft 31 is driven by the driving device 32 to drive the carrier 21 to rotate along the axial direction of the rotating shaft 31, so that the horizontal height of the first end 2102 is higher than the horizontal height of the second end 2103, until the sliding block 900 located at the first end 2102 slides in the sliding groove 2101 to the second end 2103 under the action of gravity, and the experimenter turns off the driving device 32. Compared with the previous embodiment, by setting the driving device 32, the experimenter does not need to manually lift the carrier 21, and the inaccuracy of the tilting angle caused by the experimenter's hand error or uneven force is avoided.
[0033] In this embodiment, the driving device 32 is implemented to comprise a motor, a transmission gear, etc.
[0034] The display assembly 40 comprises a display member 41 and an indicating member 42. The display member 41 is provided with scale lines representing the angle size and numbers corresponding to the scale lines. One end of the indicating member 42 points to the scale lines provided on the display member 41.
[0035] In one embodiment, the display member 41 is fixedly installed on the equipment body 10, and the end of the indicating member 42 away from the display member 41 is connected with the rotating shaft 31. In brief, when the carrier 21 is driven by the rotating shaft 31 to rotate along the axial direction of the rotating shaft 31, the end of the indicating member 42 is driven by the rotating shaft 31 to rotate, so that the other end of the indicating member 42 pointing to the display member 41 also rotates, and the experimenter obtains the value of the inclination angle of the carrier 21 by reading the numbers on the display member 41 pointed by the indicating member 42.
[0036] In another embodiment, the display member 41 is provided to be connected with the rotating shaft 31, and the end of the indicating member 42 away from the display member 41 is fixedly installed on the equipment body 10. In brief, when the carrier 21 is driven by the rotating shaft 31 to rotate along the axial direction of the rotating shaft 31, the display member 41 is also driven by the rotating shaft 31 to rotate, and similarly, the experimenter obtains the value of the inclination angle of the carrier 21 by reading the numbers on the display member 41 pointed by the indicating member 42.
[0037] The inclination assembly 20 comprises at least one fixing component 22. The fixing component 22 is located at the first end 2102. The fixing component 22 comprises a fixing member 221 and a fastener 222. The fixing member 221 is located above the bottom wall of the sliding groove 2101. The fastener 222 is rotatably connected between the fixing member 221 and the carrier 21. By the fastener 222, the gap between the fixing member 221 and the carrier 21 is reduced, so as to fix the printing material 800; by the fastener 222, the gap between the fixing member 221 and the carrier 21 is increased, so as to facilitate the experimenter to take and place the printing material 800 between the fixing member 221 and the carrier 21.
[0038] Preferably, two fixing members 22 are provided. One of the two fixing members 22 is located at the first end 2102, and the other one is located at the second end 2103. The two fixing members 22 respectively fix the two ends of the printing material 800, so that the printing material 800 does not deviate with the movement of the slider 900 when the slider 900 slides on the printing material 800, thereby ensuring the smoothness of the experiment and the accuracy of the experimental data.
[0039] More preferably, the thickness of the fixing member 221 located at the second end 2103 is greater than the height of the slider 900, so as to block the slider 900 from sliding from the first end 2102 to the second end 2103, and avoid the slider 900 from sliding out of the sliding groove 2101 from the second end 2103.
[0040] In another embodiment, the fixing member 22 located at the second end 2103 is arranged to be slidable in the sliding groove 2101, and the bottom wall of the carrier 21 is spaced apart to be provided with a mounting hole adapted to the fastener 222. In this way, the experimenter adjusts the mounting position of the fixing member 221 and the fastener 222 located at the second end 2103 and the carrier 21 according to the length of the printing material 800, so as to meet the needs of printing materials 800 of different lengths. When the slider 900 slides from the first end 2102 to the second end 2103, it is always in contact with the surface of the printing material 800 coated with ink.
[0041] In an embodiment, the fixing member 221 is implemented as a plate, and the fastener 222 is implemented as a screw.
[0042] In other embodiments, the fixing member 22 can also be implemented as a clip, a nail, etc.
[0043] Preferably, a collision sensor and a controller are further mounted on the fixing member 221 located at the second end 2103. The collision sensor is communicatively connected to the driving member 32 through the controller. In this way, after the slider 900 slides from the first end 2102 to the second end 2103 and collides with the fixing member 221 located at the second end 2103, the controller converts the collision signal of the collision sensor into an electrical signal and transmits it to the driving member 32, so that the driving member 32 stops driving the rotating shaft 31, thereby stopping the carrier 21 from tilting, so that the experimenter obtains a more accurate value of the tilting angle of the carrier 21.
[0044] The inclination measuring device further comprises a control assembly 50. The control assembly 50 is mounted on the device body 10, and the control assembly 50 is electrically connected with the driving rotor 32. The control assembly 50 comprises a starting member 51 and a warning light 52. The starting member 51 is used to control the start and stop of the driving rotor 32. The warning light 52 is used to prompt the experimenter the start and stop of the driving rotor 32.
[0045] It should be understood by those skilled in the art that the above description and the embodiments of the present application shown in the drawings are only examples and do not limit the present application. The advantages of the present application have been fully and effectively realized. The functions and structural principles of the present application have been shown and described in the embodiments, and the embodiments of the present application can be any deformation or modification without departing from the principles.
Claims
1. A tilt measuring device for detecting a tilt angle of a printing material at the time when a slider starts to slide on the printing material coated with ink, characterized by, The inclination measuring device comprises: a device body having a high end portion and a low end portion lower than the high end portion; a tilting assembly mounted to the high end portion of the device body, the tilting assembly comprising a carrier forming a sliding groove, a first end portion in communication with the sliding groove, and a second end portion in communication with the sliding groove; a rotating assembly comprising a rotating shaft rotatably mounted to the carrier, the rotating shaft being used to drive the carrier to rotate around the axis of the rotating shaft; a display assembly comprising a display member and an indicating member, the display member being fixedly mounted to the device body, a surface of the display member being provided with scale lines representing angle sizes and numbers corresponding to the scale lines, one end portion of the indicating member pointing to the scale lines provided on the display member, and the end portion of the indicating member away from the display member being connected to the rotating shaft.
2. The tilt measuring device according to claim 1, characterized in that The tilting assembly further comprises a fixing component at the first end portion, the fixing component comprising a fixing member and a fastener rotatably connected between the fixing member and the carrier.
3. The tilt measuring device of claim 1, wherein The display member is arranged to be connected to the rotating shaft, and the end portion of the indicating member away from the display member is fixedly mounted to the device body.
4. The tilt measuring device of claim 2, wherein The rotating assembly further comprises a driving member, the rotating shaft being connected to the driving member, and the driving member being used to drive the rotating shaft to rotate.
5. The tilt measuring device of claim 4, wherein The inclination measuring device further comprises a control assembly mounted to the device body, the control assembly comprising an actuating member in circuit connection with the driving member, the actuating member being used to control the start and stop of the driving member.
6. The tilt measuring device of claim 5, wherein The control assembly further comprises a warning light in circuit connection with the driving member, the warning light being used to prompt an experimenter about the start and stop of the driving member.
7. The tilt measuring device of claim 4, wherein The fixing component is arranged in two, one of the two fixing components being at the first end portion, and the other of the two fixing components being at the second end portion.
8. The tilt measuring device of claim 7, wherein The thickness of the fixing member at the second end portion is arranged to be greater than the height of the slider, so as to block the slider from sliding from the first end portion to the second end portion.
9. The tilt measuring device of claim 8, wherein The fixing component at the second end portion is arranged to be slidable in the sliding groove, and the bottom wall of the carrier is spaced apart to be provided with a mounting hole adapted to the fastener.
10. The tilt measuring device of claim 9, wherein A collision sensor and a controller are further mounted on the fixing member at the second end portion, the collision sensor being in communication connection with the driving member through the controller, and the controller being used to convert the collision signal of the collision sensor into an electrical signal and transmit the electrical signal to the driving member.