Stainless steel basin detection equipment
By designing a knocking and squeezing mechanism and combining it with the cooperation of rotating parts and sliding parts, the problem that existing equipment cannot fully detect stainless steel basins is solved, comprehensive detection of stainless steel basins is achieved, and the accuracy of detection results is improved.
Patent Information
- Application Number
- CN202510783248.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-12
- Publication Date
- 2025-10-14
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing stainless steel basin testing equipment cannot fully detect the sides and bottoms of stainless steel basins, which affects the accuracy of the test results.
A stainless steel basin testing equipment was designed, which included a knocking mechanism for impact testing on the bottom surface and an extrusion mechanism for extrusion testing on the side surface. Through the cooperation of rotating parts and sliding parts, comprehensive testing of the stainless steel basin was achieved.
A comprehensive inspection of stainless steel basins is achieved, which improves the accuracy and comprehensiveness of the inspection results.
Smart Images

Figure CN120778348A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of stainless steel, in particular to a stainless steel basin detection device. Background Art
[0002] Stainless steel has good hardness, and stainless steel basins made of stainless steel are relatively stronger. In order to test whether the hardness of stainless steel basins meets the standards, proprietary testing equipment will be used.
[0003] The patent announcement number CN214472389U discloses a stainless steel strength testing device, including a clamping mechanism, a flat extrusion plate, a curved extrusion plate, a pointed extrusion rod and a testing platform. The testing platform is fixedly installed on the upper surface of the fixed base. The upper surface of the testing platform is provided with a support plate. The support plate is fixedly connected to both sides of the upper surface of the testing platform. The support plate is provided with a placement groove. The surface of the testing platform is provided with a slide groove. A sliding support plate is slidably connected in the slide groove.
[0004] When using the above-mentioned detection device, first place the stainless steel pipe in the placement groove on the support plate, start the hydraulic device, so that the hydraulic rod drives the top plate to move downward, drives the flat extrusion plate, the curved extrusion plate and the tip extrusion rod to move downward and squeeze the stainless steel pipe, so that the hardness of the stainless steel pipe can be detected. The above-mentioned detection device is also suitable for detecting stainless steel basins, but the above-mentioned detection device can only perform extrusion detection on the bottom surface of stainless steel, while the side surface of stainless steel is difficult to be detected, resulting in incomplete detection and affecting the accuracy of the detection results. Therefore, a stainless steel basin detection device is now developed that can make the detection results more accurate. Summary of the Invention
[0005] In order to overcome the shortcomings of existing detection devices that the detection is not comprehensive enough and affects the accuracy of the detection results, the technical problem of the present invention is to provide a stainless steel basin detection device that can make the detection results more accurate.
[0006] The technical solution is as follows: A stainless steel basin detection device, including: The base and the bidirectional screw are rotatably connected between the front and rear sides of the left side of the base; A first motor is connected to the left side of the front upper portion of the base, and the rear side of the first motor output shaft is connected to the front side of the bidirectional screw; The front and rear sides of the bidirectional screw are both threadedly connected to the limit parts, and the limit parts are both slidably connected to the base; A knocking mechanism is provided on the upper right side of the base for performing impact detection on the bottom surface of the stainless steel basin; An extrusion mechanism is provided on the upper side of the base for performing extrusion detection on the side of the stainless steel basin.
[0007] Optionally, the striking mechanism includes: A second motor is connected to the right side of the upper portion of the base; A rotating member is connected to the left side of the output shaft of the second motor; A connecting rod is connected to the right side of the upper portion of the base, and the connecting rod is rotatably connected to the rotating member; The flapping frame is connected to the upper side of the connecting rod in a sliding manner, and the flapping frame is extruded and matched with the rotating part; A first spring is wound between the lower right side of the beating frame and the upper right side of the base, and the first spring is wound around the connecting rod.
[0008] Optionally, the extrusion mechanism includes: A connecting plate is connected between the front and rear sides of the upper right portion of the base; A first circular slide rail is connected between the front and rear sides of the left portion of the connecting plate; Sliding members, the front and rear sides of the first circular slide rail are both slidably connected with sliding members, and the upper sides of the sliding members are all inclined; A second spring is provided between the lower side of the sliding member and the first circular slide rail, and the second spring is wound around the first circular slide rail; Extrusion frame: The front and rear sides of the right part of the beating frame are both connected with extrusion frames.
[0009] Optionally, a replacement mechanism for increasing the squeezing force is also included, and the replacement mechanism includes: Conical extrusion rods, the lower sides of the sliding parts are all slidably connected with conical extrusion rods; A third spring is provided between the side of the tapered extrusion rod that is away from each other and the adjacent sliding member, and the third spring is wound around the adjacent tapered extrusion rod; The first extrusion member and the lower side of the sliding member are both slidably connected with the first extrusion member, and the first extrusion members are extrusion-matched with the adjacent tapered extrusion rods; The fourth spring is wound between the upper side of the first extrusion piece and the adjacent sliding piece, and the fourth spring is wound around the adjacent first extrusion piece.
[0010] Optionally, an edge detection mechanism for detecting the groove of the stainless steel basin is further included, and the edge detection mechanism includes: A connecting frame is connected to the upper right side of the base; A second extrusion member is slidably connected to the left side of the connecting frame; A third extrusion member is also slidably connected to the left side of the connecting frame, and the third extrusion member is slidably connected to the second extrusion member; A fifth spring is provided between the second extrusion piece and the upper portion of the third extrusion piece, and the fifth spring is wound on the connecting frame; The extrusion block is connected to the middle and lower side of the beating frame. The extrusion block is extruded and matched with the second extrusion piece, and the extrusion block is also extruded and matched with the third extrusion piece.
[0011] Optionally, a scraping mechanism is further included for scraping and cleaning impurities on the stainless steel basin, and the scraping mechanism includes: A first connecting block is connected to the left side of the upper portion of the base; The scraper frame is slidably connected to the first connecting block, the scraper frame and the limiting member are both slidably connected, the right side of the scraper frame is inclined, and the right side of the scraper frame is made of soft material; A sixth spring is arranged between the left side of the scraper frame and the first connecting block, and the sixth spring is wound around the scraper frame.
[0012] Optionally, a heating mechanism for heating the stainless steel basin is also included, and the heating mechanism includes: A second circular slide rail is connected between the front and rear sides of the right portion of the connecting plate; a second connecting block, the second circular slide rail being slidably connected to the second connecting block; A hot air blower is connected to the second connecting block.
[0013] Optionally, it also includes: The rollers are rotatably connected to the sides of the lower part of the extrusion frame that are close to each other, and the rollers are extruded and matched with the inclined surfaces on the adjacent sliding parts.
[0014] The present invention has the following advantages: 1. The present invention squeezes the beating frame through the rotating part, so that the beating frame hits and beats the bottom surface of the stainless steel basin downward, thereby detecting the bottom surface of the stainless steel basin, and through the squeezing cooperation of the roller and the sliding part, the sliding part moves along the first circular slide rail and approaches the side of the stainless steel basin to be squeezed, thereby detecting the side of the stainless steel basin, thereby being able to more comprehensively detect the stainless steel basin and making the detection result more accurate.
[0015] 2. The present invention adjusts the position of the tapered extrusion rod so that the sliding member or the tapered extrusion rod can be used to squeeze and detect the side of the stainless steel basin, thereby making the detection result more accurate.
[0016] 3. The present invention utilizes the extrusion cooperation between the extrusion block and the second extrusion piece and the third extrusion piece so that the second extrusion piece and the third extrusion piece exert an extrusion force on both sides on the groove on the stainless steel basin, thereby facilitating a more comprehensive extrusion inspection of the stainless steel basin and making the inspection result more accurate.
[0017] 4. The present invention scrapes and cleans impurities adhering to the lower side of the stainless steel basin through the scraper frame, so that the stainless steel basin can be placed more stably, which is conducive to better inspection of the stainless steel basin.
[0018] 5. The present invention uses a hot air blower to evenly heat the stainless steel basin, so that the hardness of the stainless steel basin can be tested under high temperature conditions, which is conducive to making the test results more accurate. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0020] Figure 2 It is a partial three-dimensional structural schematic diagram of the present invention.
[0021] Figure 3 It is a schematic diagram of the three-dimensional structure of the knocking mechanism of the present invention.
[0022] Figure 4 It is a schematic diagram of the three-dimensional structure of the extrusion mechanism of the present invention.
[0023] Figure 5 It is a partially cutaway three-dimensional structural diagram of the extrusion mechanism of the present invention.
[0024] Figure 6 It is a partial three-dimensional structural diagram of the rotating mechanism of the present invention.
[0025] Figure 7 It is a schematic diagram of the three-dimensional structure of the replacement mechanism of the present invention.
[0026] Figure 8 It is a partial three-dimensional structural schematic diagram of the replacement mechanism of the present invention.
[0027] Figure 9 It is a schematic diagram of the three-dimensional structure of the side detection mechanism of the present invention.
[0028] Figure 10 It is a schematic diagram of the three-dimensional structure of the first part of the side detection mechanism of the present invention.
[0029] Figure 11 It is a schematic diagram of the third part of the side detection mechanism of the present invention.
[0030] Figure 12 It is a schematic diagram of the three-dimensional structure of the scraping mechanism of the present invention.
[0031] Figure 13 It is a partially cutaway three-dimensional structural schematic diagram of the scraping mechanism of the present invention.
[0032] Figure 14 It is a schematic diagram of the three-dimensional structure of the heating mechanism of the present invention.
[0033] Among them, the above-mentioned drawings include the following figure marks: 1_base, 2_bidirectional screw, 3_first motor, 4_limiting member, 5_stainless steel basin, 6_knocking mechanism, 61_second motor, 62_rotating member, 63_first spring, 64_beating frame, 65_connecting rod, 7_extrusion mechanism, 71_connecting plate, 72_first circular slide rail, 73_sliding member, 74_extrusion frame, 75_roller, 76_second spring, 8_replacing mechanism, 81_conical extrusion rod, 82_third spring, 83_first extrusion member, 84_fourth spring, 9_edge detection mechanism, 91_connecting frame, 92_fifth spring, 93_extrusion block, 94_second extrusion member, 95_third extrusion member, 10_scraping mechanism, 101_scraping frame, 102_first connecting block, 103_sixth spring, 11_heating mechanism, 111_second circular slide rail, 112_second connecting block, 113_hot air blower. DETAILED DESCRIPTION
[0034] Hereinafter, embodiments of the present invention will be described with reference to the accompanying drawings. Example 1
[0035] A stainless steel basin testing device, such as Figure 1 and Figure 2 As shown, it includes a base 1, a bidirectional screw 2, a first motor 3, a limiter 4, a knocking mechanism 6 and an extrusion mechanism 7. A bidirectional screw 2 is rotatably connected between the front and rear sides of the inner left part of the base 1, and the first motor 3 is connected to the left side of the upper front part of the base 1. The rear side of the output shaft of the first motor 3 is connected to the front side of the bidirectional screw 2. The front and rear sides of the bidirectional screw 2 are both threadedly connected to the limiter 4, and the limiter 4 is slidably connected to the base 1. A knocking mechanism 6 is provided on the upper right side of the base 1, and the knocking mechanism 6 is used to perform impact detection on the bottom surface of the stainless steel basin 5 to check whether the hardness of the bottom surface of the stainless steel basin 5 meets the production standards. An extrusion mechanism 7 is provided on the upper side of the base 1, and the extrusion mechanism 7 is used to perform extrusion detection on the side of the stainless steel basin 5 to check whether the hardness of the side of the stainless steel basin 5 meets the production standards.
[0036] like Figure 1 and Figure 3As shown, the knocking mechanism 6 includes a second motor 61, a rotating member 62, a first spring 63, a beating frame 64 and a connecting rod 65. The second motor 61 is connected to the right side of the upper part of the base 1, and the rotating member 62 is connected to the left side of the output shaft of the second motor 61. The right side of the upper part of the base 1 is connected to the connecting rod 65. The connecting rod 65 is rotatably connected to the rotating member 62, and the upper side of the connecting rod 65 is slidably connected to the beating frame 64. The beating frame 64 is squeezed and fitted with the rotating member 62. A first spring 63 is wound between the lower right side of the beating frame 64 and the upper right side of the base 1. The first spring 63 is wound on the connecting rod 65, and the beating frame 64 is squeezed by the rotating member 62. Under the action of the first spring 63, the beating frame 64 can hit and beat the bottom surface of the stainless steel basin 5.
[0037] like Figure 1 、 Figure 4 、 Figure 5 and Figure 6 As shown, the extrusion mechanism 7 includes a connecting plate 71, a first circular slide rail 72, a sliding member 73, an extrusion frame 74 and a second spring 76. The connecting plate 71 is connected between the front and rear sides of the upper right part of the base 1, and the first circular slide rail 72 is connected between the front and rear sides of the left part of the connecting plate 71. The front and rear sides of the first circular slide rail 72 are both slidably connected with a sliding member 73 for extrusion detection on the side of the stainless steel basin 5. The upper side of the sliding member 73 is inclined, and a second spring 76 is wound between the lower side of the sliding member 73 and the first circular slide rail 72 for making the sliding member 73 move in the opposite direction and reset. The second spring 76 is wound on the first circular slide rail 72, and the front and rear sides of the right part of the beating frame 64 are connected with an extrusion frame 74.
[0038] like Figure 4 and Figure 5 As shown, rollers 75 are also included. The sides of the lower part of the extrusion frame 74 that are close to each other are rotatably connected with the rollers 75, and the rollers 75 are extruded and matched with the inclined surfaces on the adjacent sliding members 73.
[0039] When using the present stainless steel basin detection equipment to detect the stainless steel basin 5, first start the first motor 3, the output shaft of the first motor 3 rotates, driving the bidirectional screw 2 to rotate, so that the limiter 4 moves to the side away from each other, and then people can put the stainless steel basin 5 upside down on the inner side of the first circular slide rail 72, that is, the bottom surface of the stainless steel basin 5 faces upward, at this time the stainless steel basin 5 will be located between the two limiters 4, and the height of the lower side of the stainless steel basin 5 is roughly located in the middle position of the limiter 4, and then the output shaft of the first motor 3 rotates in the opposite direction, driving the bidirectional screw 2 to rotate in the opposite direction, so that the limiter 4 moves to the side close to each other and resets, until the front and back sides of the stainless steel basin 5 can extend into the adjacent limiters 4, and then turn off the first motor 3. In this way, the limiter 4 can be used to provide support for the stainless steel basin 5, and the first circular slide rail 72 can be used to roughly limit the stainless steel basin 5 to prevent the stainless steel basin 5 from sliding and shifting significantly and affecting the detection. After placing the stainless steel basin 5, people can start the second motor 61, and the output shaft of the second motor 61 rotates, driving the rotating member 62 to rotate accordingly. When the rotating member 62 rotates to squeeze the slapping frame 64, the slapping frame 64 will be squeezed downward, and the first spring 63 will be compressed, so that the slapping frame 64 will hit the bottom surface of the stainless steel basin 5. When the rotating member 62 rotates to no longer squeeze the slapping frame 64, the slapping frame 64 will move upward and reset under the action of the first spring 63. When the rotating member 62 rotates again to squeeze the slapping frame 64, the above operation will be repeated. Steps, in this way, the slapping frame 64 can be made to slap and hit the bottom surface of the stainless steel basin 5 several times from top to bottom to detect whether the hardness of the bottom surface of the stainless steel basin 5 meets the production standards. If the bottom surface of the stainless steel basin 5 is concave, it means that the hardness of the stainless steel basin 5 does not meet the production standards, otherwise it means that the hardness of the stainless steel basin 5 meets the production standards. At the same time, when the slapping frame 64 moves downward, it will drive the extrusion frame 74 to move downward, so that the roller 75 also moves downward. When the roller 75 contacts the inclined surface on the sliding member 73, it will squeeze the inclined surface on the sliding member 73, so that the front sliding member 73 moves along the first circular slide rail 72 to the right rear side, and the rear sliding member 73 moves along the first circular slide rail 72 to the left front When the slapping frame 64 moves upward and resets, the squeezing frame 74 will also move upward and reset, causing the roller 75 to move upward and reset accordingly, and the roller 75 will gradually move away from the inclined surface on the slider 73, and the slider 73 will move in the opposite direction and reset under the action of the corresponding second spring 76, causing the roller 75 to rotate in the opposite direction under the action of friction. At this time, people can rotate the stainless steel basin 5, and when the slapping frame 64 moves downward again to perform a collision test on the bottom surface of the stainless steel basin 5, the above steps will be repeated.Thus, the sliding member 73 can continuously perform squeezing detection on different areas of the side of the stainless steel basin 5, that is, while the bottom surface of the stainless steel basin 5 is detected by the slapping frame 64, the side of the stainless steel basin 5 is also squeezed and detected by the sliding member 73, so that the stainless steel basin 5 can be detected more comprehensively, making the detection result more accurate. When the detection is completed, the second motor 61 is turned off, and then people can start the first motor 3 again, so that the output shaft of the first motor 3 rotates, driving the bidirectional screw 2 to rotate, so that the limit member 4 moves to the side away from each other, away from the stainless steel basin 5. At this time, people can take away the stainless steel basin 5 that has been tested, and then control the output shaft of the first motor 3 to rotate in the opposite direction, driving the bidirectional screw 2 to rotate in the opposite direction, so that the limit member 4 moves to the side close to each other and resets, and then turn off the first motor 3. In summary, the work of detecting the stainless steel basin 5 can be completed. Example 2
[0040] On the basis of Example 1, Figure 1 、 Figure 7 and Figure 8 As shown, a replacement mechanism 8 is also included, which includes a tapered extrusion rod 81, a third spring 82, a first extrusion piece 83 and a fourth spring 84. The lower side of the sliding piece 73 is slidably connected to the tapered extrusion rod 81, and a third spring 82 is wound between the side of the tapered extrusion rod 81 away from each other and the adjacent sliding piece 73. The third spring 82 is wound on the adjacent tapered extrusion rod 81. The lower side of the sliding piece 73 is slidably connected to the first extrusion piece 83, and the first extrusion piece 83 is extruded and matched with the adjacent tapered extrusion rod 81. A fourth spring 84 is wound between the upper side of the first extrusion piece 83 and the adjacent sliding piece 73. The fourth spring 84 is wound on the adjacent first extrusion piece 83. By adjusting the position of the tapered extrusion rod 81, it is convenient for people to choose the tapered extrusion rod 81 or the sliding piece 73 to perform extrusion detection on the side of the stainless steel 5.
[0041] In the initial state, the first extrusion piece 83 squeezes the adjacent conical extrusion rod 81, and the adjacent sliding piece 73 extends from the side where the conical extrusion rods 81 are close to each other, and the third spring 82 is in a compressed state. Sometimes, the inspection standards of different stainless steel basins 5 are also different. When the hardness of the stainless steel basin 5 is relatively small, people can move the first extrusion piece 83 upward, and the fourth spring 84 is stretched, so that the first extrusion piece 83 no longer squeezes the adjacent conical extrusion rod 81, and the conical extrusion rod 81 will move to the side away from each other on the corresponding third spring 82, that is, the adjacent sliding piece 73 is no longer extended from the side where the conical extrusion rods 81 are close to each other, and the conical extrusion rod 81 will squeeze the adjacent first extrusion piece 83, so that the fourth spring 84 remains in a stretched state, so that the side of the stainless steel basin 5 can be squeezed and inspected through the sliding piece 73 later. 3 The contact area with the side of the stainless steel basin 5 is larger, and the squeezing force will be relatively smaller. When the hardness of the stainless steel basin 5 to be tested is relatively large, the tapered squeezing rod 81 can be moved to the side close to each other to reset, and the third spring 82 is compressed and reset. The first squeezing member 83 will move downward and reset under the action of the adjacent fourth spring 84, so that the first squeezing member 83 squeezes the adjacent tapered squeezing rod 81 again, that is, the side of the tapered squeezing rod 81 close to each other will maintain the state of extending the adjacent sliding member 73, so that the side of the stainless steel basin 5 can be tested later by the tapered squeezing rod 81, and the squeezing force of the tapered squeezing rod 81 on the side of the stainless steel basin 5 will be relatively large. In this way, whether to use the tapered squeezing rod 81 can be decided according to different testing standards, so that the hardness of the stainless steel basin 5 can be tested more accurately, that is, the test result can be made more accurate.
[0042] like Figure 1 、 Figure 9 、 Figure 10 and Figure 11 As shown, it also includes an edge detection mechanism 9, which includes a connecting frame 91, a fifth spring 92, an extrusion block 93, a second extrusion piece 94 and a third extrusion piece 95. The upper right side of the base 1 is connected to the connecting frame 91, and the left side of the connecting frame 91 is slidably connected to the second extrusion piece 94. The left side of the connecting frame 91 is also slidably connected to the third extrusion piece 95. The third extrusion piece 95 is slidably connected to the second extrusion piece 94. A fifth spring 92 is wound between the upper parts of the second extrusion piece 94 and the third extrusion piece 95. The fifth spring 92 is wound on the connecting frame 91. The middle and lower side of the beating frame 64 is connected to the extrusion block 93. The extrusion block 93 is extruded and matched with the second extrusion piece 94. The extrusion block 93 is also extruded and matched with the third extrusion piece 95. The second extrusion piece 94 and the third extrusion piece 95 are squeezed by the extrusion block 93, so that the second extrusion piece 94 and the third extrusion piece 95 apply an extrusion force to both sides on the groove on the stainless steel basin 5, so as to detect whether the hardness of the groove of the stainless steel basin 5 meets the production standard.
[0043] When the opening of the stainless steel basin 5 is facing upward, the outer ring of the upper part of the stainless steel basin 5 is a groove type that is concave downward. When the stainless steel basin 5 is placed upside down, the groove on the stainless steel basin 5 will face upward. Before placing the stainless steel basin 5, the second extrusion member 94 and the third extrusion member 95 are first moved to the side close to each other, and the fifth spring 92 is compressed. Then the stainless steel basin 5 is placed, and the second extrusion member 94 and the third extrusion member 95 are located in the groove of the stainless steel basin 5. The second extrusion member 94 and the third extrusion member 95 are released, and the second extrusion member 94 and the third extrusion member 95 are moved to the side away from each other under the action of the fifth spring 92 to reset. At this time, the second extrusion member 94 and the third extrusion member 95 will squeeze into the groove of the stainless steel basin 5. When the slapping frame 64 moves downward, it will drive the extrusion block 93 to move downward as well. The extrusion block 93 will contact and squeeze the second extrusion piece 94 and the third extrusion piece 95. The second extrusion piece 94 and the third extrusion piece 95 will apply an extrusion force to both sides on the groove of the stainless steel basin 5 to check whether the stainless steel basin 5 will be squeezed and deformed, so as to detect whether the hardness of the groove on the stainless steel basin 5 meets the production standards. When the beating frame 64 moves upward and resets, it will drive the extrusion block 93 to move upward and reset, and then people will rotate the stainless steel basin 5, so that when the extrusion block 93 moves downward next time, the second extrusion piece 94 and the third extrusion piece 95 will apply an extrusion force to other areas of the groove of the stainless steel basin 5, so that the stainless steel basin 5 can be further and more comprehensively detected, which is also conducive to making the detection results more accurate.
[0044] like Figure 1 、 Figure 12 and Figure 13 As shown, a scraping mechanism 10 is also included, and the scraping mechanism 10 includes a scraper frame 101, a first connecting block 102 and a sixth spring 103. The first connecting block 102 is connected to the left side of the upper part of the base 1, and the first connecting block 102 is slidably connected to the scraper frame 101 for scraping and wiping impurities adhered to the lower side of the stainless steel basin 5. The scraper frame 101 and the limit member 4 are both slidably connected. The right side of the scraper frame 101 is in the shape of an inclined plane, and the right side of the scraper frame 101 is made of soft material. A sixth spring 103 is wound between the left side of the scraper frame 101 and the first connecting block 102, and the sixth spring 103 is wound around the scraper frame 101.
[0045] When the stainless steel basin 5 is placed, people can push the scraping frame 101 to the right, the sixth spring 103 is compressed, when the scraping frame 101 contacts the stainless steel basin 5, it will press the stainless steel basin 5, so that the stainless steel basin 5 moves slightly upward, and the scraping frame 101 will also be compressed and deformed appropriately, so that the scraping frame 101 can move below the stainless steel basin 5, so that the impurities adhered to the lower side of the stainless steel basin 5 can be scraped and wiped by the scraping frame 101, so that the stainless steel basin 5 can be placed more stably on the limiting piece 4, so that the stainless steel basin 5 can better perform subsequent detection, then release the scraping frame 101, the scraping frame 101 will move left under the action of the sixth spring 103, and the scraping frame 101 will extend and reset under the action of its own elasticity after moving away from the stainless steel basin 5, and the stainless steel basin 5 will move slightly downward under the action of its own gravity.
[0046] As shown in Figure 1 and Figure 14 Further include a heating mechanism 11, the heating mechanism 11 includes a second circular slide rail 111, a second connecting block 112 and a hot air blower 113, the second circular slide rail 111 is connected between the front and back sides of the right part of the connecting plate 71, the second connecting block 112 is connected on the second circular slide rail 111 in a sliding manner, the hot air blower 113 is connected on the second connecting block 112, the hot air blower 113 is used to blow hot air to heat the stainless steel basin 5, so that the stainless steel basin 5 can be in a high temperature state for detection.
[0047] When people detect the stainless steel basin 5, people can also start the hot air blower 113, heat the stainless steel basin 5 through the hot air blower 113, and people can move the second connecting block 112 along the second circular slide rail 111, drive the hot air blower 113 to move, so that the hot air blower 113 can heat the stainless steel basin 5 more evenly, so that the hardness of the stainless steel basin 5 under high temperature can be detected whether it meets the production standard, which is also beneficial to make the detection result more accurate, when the detection is completed, the hot air blower 113 is turned off.
[0048] The above only describes the preferred embodiments of the present application, and it should be noted that those skilled in the art can make some improvements and refinements without departing from the principles of the present application, and these improvements and refinements should also be considered as the protection scope of the present application.
Claims
1. A stainless steel basin detection device, characterized in that: Includes: A base (1) and a bidirectional screw (2), wherein the bidirectional screw (2) is rotatably connected between the front and rear sides of the left inner portion of the base (1); A first motor (3), the left side of the front upper portion of the base (1) is connected to the first motor (3), and the rear side of the output shaft of the first motor (3) is connected to the front side of the bidirectional screw (2); The limiting member (4) is threadedly connected to the limiting member (4) on both the front and rear sides of the bidirectional screw (2), and the limiting member (4) is slidably connected to the base (1); A striking mechanism (6) is provided on the upper right side of the base (1) for performing impact detection on the bottom surface of the stainless steel basin; A squeezing mechanism (7) is provided on the upper side of the base (1) for squeezing and testing the side of the stainless steel basin.
2. A stainless steel basin detection device according to claim 1, characterized in that: The striking mechanism (6) comprises: A second motor (61), the right side of the upper portion of the base (1) is connected to the second motor (61); A rotating member (62), the rotating member (62) is connected to the left side of the output shaft of the second motor (61); A connecting rod (65) is connected to the right side of the upper portion of the base (1), and the connecting rod (65) is rotatably connected to the rotating member (62); The flapping frame (64) is slidably connected to the upper side of the connecting rod (65), and the flapping frame (64) is extruded and matched with the rotating member (62); A first spring (63) is wound between the lower right side of the beating frame (64) and the upper right side of the base (1), and the first spring (63) is wound on the connecting rod (65).
3. A stainless steel basin detection device according to claim 2, characterized in that: The extrusion mechanism (7) comprises: A connecting plate (71) is connected between the front and rear sides of the upper right portion of the base (1); A first circular slide rail (72) is connected between the front and rear sides of the left portion of the connecting plate (71); Sliding member (73), the front and rear sides of the first circular slide rail (72) are both slidably connected with the sliding member (73), and the upper side of the sliding member (73) is inclined; A second spring (76) is wound between the lower side of the sliding member (73) and the first circular slide rail (72), and the second spring (76) is wound on the first circular slide rail (72); Extrusion frame (74), the front and rear sides of the right portion of the slapping frame (64) are connected with the extrusion frame (74).
4. A stainless steel basin detection device according to claim 3, characterized in that: It also includes a replacement mechanism (8) for increasing the extrusion force, and the replacement mechanism (8) includes: A conical extrusion rod (81), the lower side of the sliding member (73) is slidably connected to the conical extrusion rod (81); A third spring (82) is wound between the side of the tapered extrusion rod (81) that is away from each other and the adjacent sliding member (73), and the third spring (82) is wound around the adjacent tapered extrusion rod (81); The first extrusion member (83) and the lower side of the sliding member (73) are both slidably connected to the first extrusion member (83), and the first extrusion member (83) is extruded and matched with the adjacent tapered extrusion rod (81); A fourth spring (84) is wound between the upper side of the first extrusion member (83) and the adjacent sliding member (73), and the fourth spring (84) is wound around the adjacent first extrusion member (83).
5. A stainless steel basin detection device according to claim 4, characterized in that: It also includes an edge detection mechanism (9) for detecting the groove of the stainless steel basin, and the edge detection mechanism (9) includes: A connecting frame (91), the upper right side of the base (1) is connected to the connecting frame (91); A second extruded member (94), the left side of the connecting frame (91) being slidably connected to the second extruded member (94); A third extrusion member (95) is also slidably connected to the left side of the connecting frame (91), and the third extrusion member (95) is slidably connected to the second extrusion member (94); A fifth spring (92) is wound between the second extrusion member (94) and the upper portion of the third extrusion member (95), and the fifth spring (92) is wound on the connecting frame (91); The extrusion block (93) is connected to the middle and lower side of the beating frame (64), the extrusion block (93) is extruded and matched with the second extrusion piece (94), and the extrusion block (93) is also extruded and matched with the third extrusion piece (95).
6. A stainless steel basin detection device according to claim 5, characterized in that: It also includes a scraping mechanism (10) for scraping and cleaning impurities on the stainless steel basin, and the scraping mechanism (10) includes: A first connecting block (102), the left side of the upper portion of the base (1) being connected to the first connecting block (102); A scraper frame (101) is slidably connected to the first connecting block (102), the scraper frame (101) and the limiting member (4) are both slidably connected, the right side of the scraper frame (101) is in an inclined shape, and the right side of the scraper frame (101) is made of soft material; A sixth spring (103) is wound between the left side of the scraper frame (101) and the first connecting block (102), and the sixth spring (103) is wound on the scraper frame (101).
7. A stainless steel basin detection device according to claim 6, characterized in that: The invention also includes a heating mechanism (11) for heating the stainless steel basin, wherein the heating mechanism (11) includes: A second circular slide rail (111), wherein the second circular slide rail (111) is connected between the front and rear sides of the right portion of the connecting plate (71); A second connecting block (112), the second circular slide rail (111) being slidably connected to the second connecting block (112); A hot air blower (113) is connected to the second connecting block (112).
8. The stainless steel basin detection device according to claim 7, characterized in that: Also included are: The roller (75) and the lower side of the extrusion frame (74) close to each other are both rotatably connected with the roller (75), and the roller (75) is extruded and matched with the inclined surface on the adjacent sliding member (73).
Citation Information
Patent Citations
Stainless steel strength detection device
CN214472389U