Operating platform for oxygen determination probe inspection
By adopting the design of transmission components and anti-slip transmission belts on the oxygen probe inspection platform and using a variable frequency drive motor to achieve rolling exposure and shooting of the oxygen probe, the problem of low detection efficiency caused by rotary clamping in the existing platform is solved, and fast multiple exposure detection is achieved.
Patent Information
- Application Number
- CN202422568367.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-24
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-10-24
AI Technical Summary
When an existing X-ray detection platform for inspecting oxygen probes performs X-ray irradiation inspection on a circle of the axis of the oxygen probe, it is difficult to rotate the object and clamp it for shooting, resulting in low inspection efficiency.
An operating platform including a transmission component, a variable frequency drive motor, an X-ray inspection table and an electrical control box was designed. Utilizing a combination of a trapezoidal bracket and an anti-slip transmission belt, the variable frequency drive motor controls the high-speed rotation of the anti-slip transmission belt, causing the oxygen probe to roll to the bottom of the X-ray inspection table for multiple high-speed exposures, thus realizing rolling X-ray fluoroscopy of objects without the need for clamping.
It realizes fast multiple exposure shooting around the oxygen probe, improves detection efficiency, and solves the problem of low detection efficiency caused by rotation clamping in the existing platform.
Smart Images

Figure CN223362068U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of oxygen probe inspection, and particularly relates to an operating platform for oxygen probe inspection. Background Art
[0002] As an important tool for online measurement of liquid metal in metallurgical processes, the quality and performance of oxygen probes are crucial to the accuracy and safety of the metallurgical process. Therefore, using an X-ray inspection platform to inspect internal defects and structures has become an important means of ensuring the quality of oxygen probes.
[0003] Existing X-ray inspection platforms for oxygen probe inspection typically utilize the penetrating power of X-rays to image objects, detecting internal structures and defects. However, these platforms face difficulties in rotating the object while performing X-ray inspection around the axis of the oxygen probe. This is primarily due to the slow loading and unloading speed of the clamp holding the oxygen probe cylinder, resulting in slow rotation and adjustment of the object relative to the X-ray imaging module, which in turn reduces overall inspection efficiency.
[0004] Therefore, with regard to the above-mentioned existing X-ray detection platform for inspecting the constant oxygen probe, since it is difficult to rotate, clamp and shoot the X-ray irradiation inspection object around the axis of the constant oxygen probe, resulting in low X-ray detection efficiency around the axis of the constant oxygen probe, an operating platform for inspecting the constant oxygen probe can be designed. Utility Model Content
[0005] In order to overcome the problem that the existing X-ray detection platform for oxygen probe inspection has low efficiency of X-ray detection around the axis of the oxygen probe because it is difficult to rotate, clamp and shoot the X-ray irradiation inspection object around the axis of the oxygen probe.
[0006] The technical solution of the utility model is: an operating platform for checking oxygen probes includes a transmission component, a variable frequency drive motor, an X-ray detection platform, and an electric control box; the rear end of the transmission component is provided with a variable frequency drive motor; the upper end of the transmission component is provided with an X-ray detection platform; the front of the transmission component is provided with an electric control box, and the electric control box is electrically connected to the variable frequency drive motor; the transmission component includes a trapezoidal bracket, a first transmission roller, a second transmission roller, an anti-slip transmission belt, a belt tension adjustment screw sleeve, a baffle, and a third transmission roller.
[0007] Preferably, by setting the upper end surface of the inclined anti-skid transmission belt of the trapezoidal bracket, the oxygen probe placed from the high point of the second transmission roller slides down along the anti-skid transmission belt under the action of gravity. At the same time, the frequency conversion drive motor controls the second transmission roller to drive the anti-skid transmission belt to rotate clockwise at high speed, so that the oxygen probe can roll to the bottom of the X-ray detection table. At this time, the X-ray detection table performs multiple high-speed exposure shots on the rotating oxygen probe, thereby extremely quickly performing multiple exposure shots and inspections on the oxygen probe around the body, thereby realizing the rolling X-ray fluoroscopic shooting and inspection function of the object without clamping, solving the problem of low efficiency of X-ray inspection of the oxygen probe in one circle due to the difficulty of rotating, clamping and shooting the X-ray irradiation inspection object around the axis of the oxygen probe on the existing X-ray detection platform for oxygen probe inspection.
[0008] Preferably, a first transmission roller and a second transmission roller are respectively provided on both sides of the upper end of the trapezoidal bracket, and the axis height of the second transmission roller is higher than the axis height of the first transmission roller.
[0009] Preferably, a third transmission roller is provided below the first transmission roller and the second transmission roller, and four third transmission rollers are provided, and the third transmission rollers are connected to the trapezoidal bracket bearings.
[0010] Preferably, the outer sides of the first transmission roller, the second transmission roller and the third transmission roller are covered with anti-skid transmission belts, and the anti-skid transmission belts are connected to the first transmission roller, the second transmission roller and the third transmission roller by belt transmission.
[0011] Preferably, the X-ray detection table is arranged above the center of the anti-slip transmission belt, and the outer shell of the X-ray detection table is fixedly connected to the outer shell of the trapezoidal bracket by bolts; baffles are provided on both sides of the X-ray detection table, and the baffles are fixedly connected to the trapezoidal bracket, and four baffles are provided.
[0012] Preferably, a belt tension adjustment screw sleeve is provided at both ends of the first transmission roller, and one end of the belt tension adjustment screw sleeve is connected to the first transmission roller bearing, and the other end of the belt tension adjustment screw sleeve is connected to the hollow metal sheet on the outer wall of the trapezoidal bracket by a bolt locking connection.
[0013] Preferably, the output end of the variable frequency drive motor is drivingly connected to the second transmission roller.
[0014] Beneficial effects of the utility model:
[0015] The existing X-ray detection platform for inspecting oxygen probes has a problem that it is difficult to rotate, clamp and shoot the X-ray irradiation inspection object around the axis of the oxygen probe, resulting in low X-ray inspection efficiency around the axis of the oxygen probe. By setting the upper end surface of the inclined anti-slip transmission belt of the trapezoidal bracket, the oxygen probe is placed from the high point of the second transmission roller and slides down along the anti-slip transmission belt under the action of gravity. At the same time, the variable frequency drive motor controls the second transmission roller to drive the anti-slip transmission belt to rotate clockwise at high speed, so that the oxygen probe can be rolled under the X-ray detection table. At this time, the X-ray detection table performs multiple high-speed exposure and shooting of the rotating oxygen probe, thereby extremely quickly performing multiple exposure and shooting inspections of the oxygen probe around the entire body, thereby realizing the rolling X-ray fluoroscopic shooting and inspection function of the object without clamping. This solves the problem that the existing X-ray detection platform for inspecting oxygen probes has a problem that it is difficult to rotate, clamp and shoot the X-ray irradiation inspection object around the axis of the oxygen probe, resulting in low X-ray inspection efficiency around the axis of the oxygen probe.
[0016] By setting the belt tension adjustment screw sleeve, the belt tension adjustment screw sleeve adjusts the axial position of the first transmission roller by the tightness of the locking bolt, thereby facilitating the adjustment of the tightness of the anti-slip transmission belt, increasing the friction coefficient between the anti-slip transmission belt and the oxygen probe, and improving the convenience of adjusting the anti-slip performance. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 Shown is a schematic diagram of the three-dimensional structure of the operating platform for checking the oxygen probe of the present invention;
[0018] Figure 2 Shown is a schematic diagram of the three-dimensional structure of the operating platform for checking the oxygen probe of the present invention;
[0019] Figure 3 Shown is a schematic diagram of the three-dimensional structure of the operating platform for checking the oxygen probe of the present invention;
[0020] Figure 4 What is shown is a schematic diagram of the three-dimensional structure of the operating platform for checking the oxygen probe of the present invention.
[0021] The markings in the accompanying drawings are: 1. Conveying assembly; 2. Variable frequency drive motor; 3. X-ray inspection table; 4. Electric control box; 101. Trapezoidal bracket; 102. First transmission roller; 103. Second transmission roller; 104. Anti-slip transmission belt; 105. Belt tension adjustment screw sleeve; 106. Baffle; 107. Third transmission roller. DETAILED DESCRIPTION
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] See also Figure 1-4The utility model provides an embodiment: an operating platform for checking oxygen probes, comprising a conveying assembly 1, and also comprising a variable frequency drive motor 2, an X-ray detection table 3, and an electric control box 4; the rear end of the conveying assembly 1 is provided with a variable frequency drive motor 2; the upper end of the conveying assembly 1 is provided with an X-ray detection table 3; the front end of the conveying assembly 1 is provided with an electric control box 4, and the electric control box 4 is electrically connected to the variable frequency drive motor 2; the conveying assembly 1 comprises a trapezoidal bracket 101, a first transmission roller 102, a second transmission roller 103, an anti-slip transmission belt 104, a belt tension adjustment screw sleeve 105, a baffle 106, and a third transmission roller 107.
[0024] See also Figure 1-4 In this embodiment, a first transmission roller 102 and a second transmission roller 103 are respectively provided on both sides of the upper end of the trapezoidal bracket 101, and the axis height of the second transmission roller 103 is higher than the axis height of the first transmission roller 102; a third transmission roller 107 is provided below the first transmission roller 102 and the second transmission roller 103, and four third transmission rollers 107 are provided, and the third transmission rollers 107 are connected to the trapezoidal bracket 101 bearings; the outer sides of the first transmission roller 102, the second transmission roller 103, and the third transmission roller 107 are provided with an anti-slip transmission belt 104, and the anti-slip transmission belt 104 is connected to the first transmission roller 102, the second transmission roller 103, and the third transmission roller 107 by belt transmission.
[0025] See also Figure 1-4 In this embodiment, the X-ray detection table 3 is arranged above the center of the anti-slip transmission belt 104, and the shell of the X-ray detection table 3 is fixedly connected to the shell of the trapezoidal bracket 101 with bolts; baffles 106 are provided on both sides of the X-ray detection table 3, and the baffles 106 are fixedly connected to the trapezoidal bracket 101, and four baffles 106 are provided; belt tension adjustment screw sleeves 105 are provided at both ends of the first transmission roller 102, and one end of the belt tension adjustment screw sleeve 105 is connected to the bearing of the first transmission roller 102, and the other end of the belt tension adjustment screw sleeve 105 is connected to the hollow metal sheet on the outer wall of the trapezoidal bracket 101 by bolt locking; the output end of the variable frequency drive motor 2 is transmission-connected to the second transmission roller 103.
[0026] During operation, the upper end surface of the inclined anti-skid transmission belt 104 of the trapezoidal bracket 101 is set, so that the oxygen probe placed from the high point of the second transmission roller 103 slides down along the anti-skid transmission belt 104 under the action of gravity. At the same time, the variable frequency drive motor 2 controls the second transmission roller 103 to drive the anti-skid transmission belt 104 to rotate clockwise at high speed, so that the oxygen probe can roll to the bottom of the X-ray detection table 3. At this time, the X-ray detection table 3 performs multiple high-speed exposure shots on the rotating oxygen probe, thereby extremely quickly performing multiple exposure shots and inspections on the oxygen probe around the body, thereby realizing the rolling X-ray fluoroscopic shooting and inspection function of the object without clamping; solving the problem of the existing X-ray detection platform for oxygen probe inspection, because it is difficult to rotate, clamp and shoot the X-ray irradiation inspection object around the axis of the oxygen probe, resulting in low X-ray detection efficiency of the oxygen probe around the axis;
[0027] Next, the belt tension adjustment screw sleeve 105 adjusts the axial position of the first transmission roller 102 by tightening the locking bolt, thereby facilitating the adjustment of the tightness of the anti-slip transmission belt 104, increasing the friction coefficient between the anti-slip transmission belt 104 and the oxygen probe, and improving the convenience of adjusting the anti-slip performance.
[0028] Through the above steps, by setting the upper end surface of the inclined anti-slip transmission belt 104 of the trapezoidal bracket 101, the oxygen probe placed from the high point of the second transmission roller 103 slides down along the anti-slip transmission belt 104 under the action of gravity. At the same time, the frequency conversion drive motor 2 controls the second transmission roller 103 to drive the anti-slip transmission belt 104 to rotate clockwise at high speed, so that the oxygen probe can roll to the bottom of the X-ray detection table 3. At this time, the X-ray detection table 3 performs multiple high-speed exposure shots on the rotating oxygen probe, thereby extremely quickly performing multiple exposure shots and inspections on the oxygen probe around the body, thereby realizing the rolling X-ray fluoroscopic shooting and inspection function of the object without clamping, avoiding the problem of low X-ray detection efficiency of the oxygen probe around the axis of the existing X-ray detection platform for oxygen probe inspection, because it is difficult to rotate and clamp the X-ray irradiation inspection object around the axis of the oxygen probe.
[0029] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.
Claims
1. An operating platform for checking an oxygen probe, comprising a transmission assembly (1), characterized in that: The invention also includes a variable frequency drive motor (2), an X-ray detection table (3), and an electric control box (4); the rear end of the transmission component (1) is provided with a variable frequency drive motor (2); the upper end of the transmission component (1) is provided with an X-ray detection table (3); the front end of the transmission component (1) is provided with an electric control box (4), and the electric control box (4) is electrically connected to the variable frequency drive motor (2); the transmission component (1) includes a trapezoidal bracket (101), a first transmission roller (102), a second transmission roller (103), an anti-slip transmission belt (104), a belt tension adjustment screw sleeve (105), a baffle (106), and a third transmission roller (107).
2. The operating platform for oxygen probe inspection according to claim 1, characterized in that: A first transmission roller (102) and a second transmission roller (103) are respectively provided on both sides of the upper end of the trapezoidal bracket (101), and the axis height of the second transmission roller (103) is higher than the axis height of the first transmission roller (102).
3. The operating platform for oxygen probe inspection according to claim 2, characterized in that: A third transmission roller (107) is provided below the first transmission roller (102) and the second transmission roller (103), and four third transmission rollers (107) are provided. The third transmission rollers (107) are connected to the bearings of the trapezoidal bracket (101).
4. The operating platform for oxygen probe inspection according to claim 2, characterized in that: The outer sides of the first transmission roller (102), the second transmission roller (103), and the third transmission roller (107) are provided with an anti-skid transmission belt (104), and the anti-skid transmission belt (104) is connected to the first transmission roller (102), the second transmission roller (103), and the third transmission roller (107) by belt transmission.
5. The operating platform for oxygen probe inspection according to claim 4 is characterized in that: The X-ray detection table (3) is arranged above the center of the anti-slip transmission belt (104), and the shell of the X-ray detection table (3) is fixedly connected to the shell of the trapezoidal bracket (101) by bolts; baffles (106) are provided on both sides of the X-ray detection table (3), and the baffles (106) are fixedly connected to the trapezoidal bracket (101), and four baffles (106) are provided.
6. The operating platform for oxygen probe inspection according to claim 2, characterized in that: Both ends of the first transmission roller (102) are provided with a belt tension adjustment screw sleeve (105), one end of the belt tension adjustment screw sleeve (105) is connected to the bearing of the first transmission roller (102), and the other end of the belt tension adjustment screw sleeve (105) is connected to the hollow metal sheet on the outer wall of the trapezoidal bracket (101) by means of a bolt locking connection.
7. The operating platform for oxygen probe inspection according to claim 2, characterized in that: The output end of the variable frequency drive motor (2) is in driving connection with the second transmission roller (103).