Glass production detection device
Technical Field
The utility model relates to the technical field of glass production, in particular to a glass production detection device.
Background
Glass production refers to the process of manufacturing glass products, which generally includes raw material preparation, glass forming, glass quenching, glass processing and quality inspection, wherein quality inspection generally ensures that the quality of glass products meets the requirements through various inspection and testing means, and the most common inspection method is to use a durometer to measure the hardness of glass so as to judge whether the glass meets the standards.
However, the present glass production detection device has the problems that at least the following problems are not solved, when the present glass production detection device is used, protection work cannot be well carried out, the glass is easy to break during detection, so that potential safety hazards exist, broken fragments are inconvenient to collect and clean, detection efficiency is affected, and improvement is needed.
Disclosure of utility model
The utility model aims to provide a glass production detection device, which solves the problems in the background technology.
The embodiment of the application provides a glass production detection device, which comprises a base, a protection box and a durometer, wherein the protection box is fixedly arranged at the top of the base, two sides of the top of the protection box are movably provided with box covers through hinges, and two groups of box covers are centrally provided with detection perforations in a penetrating way;
The utility model discloses a motor protection box, including the protection box, servo motor, screw, slide block, movable mounting has been seted up to the protection box front end bilateral symmetry, the spout has been seted up to the inside bilateral symmetry of protection box, movable mounting has the screw in the spout, servo motor pivot is connected with screw drive, the inside perpendicular clearance board that installs of protection box, the slider is installed to clearance board both ends symmetry, run through in the slider and seted up the screw, slider slidable mounting is in the spout, just the screw runs through in the screw.
Through adopting above-mentioned technical scheme, can arrange glass in the protective housing and detect, collapse out when preventing that glass from breaking, also can be convenient for to the collection work of glass piece, and only need start servo motor when the clearance can release the glass piece in the protective housing, labour saving and time saving need not manual clearance, consequently this detection device can be safe high-efficient accomplish the detection work of glass hardness.
Optionally, the blown down tank is installed to the protective housing rear side, the blown down tank link up each other with the protective housing.
By adopting the technical scheme, the glass fragments can be conveniently discharged.
Optionally, the outer wall of one side of the base is fixedly provided with a support, the top of the support is fixedly provided with a hydraulic rod, and the bottom of the hydraulic rod is fixedly provided with a hardness tester.
By adopting the technical scheme, the pressing down of the sclerometer can be automatically pushed for detection.
Optionally, the bottom pressure head of the durometer is on the same axis as the detection perforation.
By adopting the technical scheme, the pressure head at the bottom of the sclerometer can be ensured to smoothly enter the protective box and then be pressed on glass.
Optionally, rubber pads are fixedly arranged at four corners of the bottom of the base.
By adopting the technical scheme, the stability and the reliability of the equipment when being placed on a tabletop can be greatly improved.
Compared with the prior art, the technical scheme of the application has the following beneficial effects:
According to the technical scheme, the glass can be placed in the protective box for detection through the design of the protective box, so that detected glass fragments are collected in the protective box, subsequent cleaning work of the fragments is facilitated, potential safety hazards caused by breakage and collapse of the glass during detection can be prevented, and the cleaning plate can be driven to move backwards by starting the servo motor, so that the glass fragments can be pushed to be discharged from the rear, automatic cleaning work after detection can be realized, manual cleaning is not needed, detection efficiency is greatly improved, and time and labor are saved.
Drawings
Other features, objects and advantages of the present utility model will become more apparent upon reading of the detailed description of non-limiting embodiments, given with reference to the accompanying drawings in which:
FIG. 1 is a schematic diagram showing the front view of a glass production inspection apparatus according to the present utility model;
FIG. 2 is a schematic top view of a protective housing of a glass production inspection device according to the present utility model;
FIG. 3 is a schematic top sectional view of a protective housing of a glass production inspection device according to the present utility model;
fig. 4 is a schematic diagram showing the front view of a cleaning plate of a glass production inspection device according to the present utility model.
In the figure, 1, a base; 2, a protective box, 3, a bracket, 4, a hydraulic rod, 5, a durometer, 6, a servo motor, 7, a box cover, 8, a rubber pad, 9, a discharge chute, 10, a detection perforation, 11, a chute, 12, a screw rod, 13, a cleaning plate, 14, a sliding block, 15 and a screw hole.
Detailed Description
Referring to FIGS. 1-4, the utility model provides a technical scheme that the glass production detection device comprises a base 1, a protective box 2 and a durometer 5, wherein the protective box 2 is fixedly arranged at the top of the base 1, two sides of the top of the protective box 2 are movably provided with box covers 7 through hinges, and detection perforations 10 are formed in the centers of the two groups of box covers 7 in a penetrating manner;
The servo motor 6 is symmetrically installed on two sides of the front end of the protection box 2, the sliding grooves 11 are symmetrically formed in two sides of the inside of the protection box 2, the screw rods 12 are movably installed in the sliding grooves 11, the rotating shafts of the servo motor 6 are in transmission connection with the screw rods 12, the cleaning plates 13 are vertically installed inside the protection box 2, the sliding blocks 14 are symmetrically installed on two ends of the cleaning plates 13, screw holes 15 are formed in the sliding blocks 14 in a penetrating mode, the sliding blocks 14 are slidably installed in the sliding grooves 11, and the screw rods 12 penetrate through the screw holes 15.
In this technical scheme, can place glass in the protective housing 2 after opening through two sets of case lids 7, the time cover 7 is closed again after through the sclerometer 5 downwardly moving pass detect perforation 10 with glass contact, the sclerometer 5 can detect glass hardness this moment, the piece that utilizes protective housing 2 can make glass detect when broken is collected, also can prevent that the piece from flying out, improve the security, and the accessible servo motor 6 starts after the detection and drives lead screw 12 rotation, lead screw 12 can be located screw 15 at this moment and rotate, thereby drive slider 14 is located spout 11 backward movement, and simultaneously clearance board 13 also can backward movement, can promote the glass piece backward movement discharge through clearance board 13 this moment.
In some technical schemes, as shown in fig. 2, a discharge chute 9 is arranged at the rear side of the protective box 2, and the discharge chute 9 is communicated with the protective box 2, so that glass fragments can be smoothly discharged through the discharge chute 9 when the protective box is used.
In the technical scheme, as shown in fig. 1, a bracket 3 is fixedly arranged on the outer wall of one side of a base 1, a hydraulic rod 4 is fixedly arranged at the top of the bracket 3, a hardness tester 5 is fixedly arranged at the bottom of the hydraulic rod 4, and when the hydraulic rod 4 is used, the hardness tester 5 can be driven to move downwards.
In some technical schemes, as shown in fig. 1-2, the pressure head at the bottom of the hardness tester 5 and the detection perforation 10 are positioned on the same axis, when in use, the pressure head at the bottom of the hardness tester 5 can pass through the detection perforation 10 and then be positioned on glass to apply pressure until the glass is broken, and the maximum compressive strength of the glass can be measured.
In the technical scheme, as shown in fig. 1, rubber pads 8 are fixedly arranged at four corners of the bottom of the base 1, and when the desk is used, the contact friction force between the base 1 and the desk surface can be improved through the rubber pads 8.
When the device is used, firstly, the box cover 7 can be opened, glass to be detected can be horizontally placed in the protective box 2, then the box cover 7 is closed, the hydraulic rod 4 is started, the hydraulic rod 4 can drive the sclerometer 5 to move downwards, at the moment, the pressure head at the bottom of the sclerometer 5 can pass through the detection perforation 10 and then contact with the glass placed in the protective box 2, and continuously presses down until the glass is broken, so that the maximum compressive strength of the glass is detected, after the glass is broken, the broken glass can be located in the protective box 2, the protective box 2 can be prevented from being broken, the detection safety is improved, then the servo motor 6 is started to drive the screw rod 12 to rotate in the screw hole 15, at the moment, the slide block 14 can be driven to move backwards in the slide groove 11, and the cleaning plate 13 can be located in the protective box 2, so that the cleaning plate 13 pushes the glass broken glass to move backwards and is discharged through the discharge groove 9, and the broken glass can be automatically cleaned.