Quenching device for tempered glass production
Through the combination of magnetic induction and stress removal mechanism, the problem of poor fluidity of the quenching medium in the quenching device is solved, uniform cooling and stress release of tempered glass are achieved, and the quenching effect is improved.
Patent Information
- Application Number
- CN202510463496.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2045-04-14
AI Technical Summary
The fluidity of the quenching medium in the existing tempered glass quenching device is poor, resulting in uneven cooling and affecting the quenching effect of the glass.
The magnetic induction mechanism and stress removal mechanism are used to surging the quenching liquid in the quenching tank through the alternating magnetic field, and the internal stress of the glass is released by the strike rack. Combined with the cooling fan, the uniform heat distribution and stress removal of the quenching liquid are achieved.
The quenching quality of tempered glass is improved, the heat distribution of the quenching liquid is uniform, the internal stress of the glass is reduced, and the quenching effect is improved.
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Figure CN120349093A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of glass product processing, and specifically to a quenching and cooling device for tempered glass production. Background Art
[0002] The quenching of glass is to heat the glass product to the transformation temperature T, and then rapidly and uniformly cool it in a cooling medium (quenching medium) (such as liquid cooling quenching, etc.). During this process, a large temperature gradient will be generated between the inner layer and the surface layer of the glass. The stress caused thereby is relaxed due to the viscous flow of the glass, so a state with a temperature gradient but no stress is created; According to a Chinese patent with the application publication number 202210469292.8, a quenching device for glass processing is disclosed. By optimizing the structure of the existing quenching equipment, the optimized quenching equipment can reduce the operation steps of the quenching process during actual use. Thus, during actual quenching, it can not only reduce the operation difficulty of the equipment, but also improve the effect of the quenching process. As a result, the optimized quenching equipment has higher application value during actual use. However, the overall fluidity of the quenching medium in the cooling tank of the above-mentioned quenching device for glass processing is relatively poor. After the glass contacts the quenching medium, the temperature of the quenching medium around the glass rises rapidly, causing uneven heating of the quenching medium in the cooling tank. For this reason, we propose a quenching and cooling device for tempered glass production to solve the above technical problems. Summary of the Invention
[0003] The present invention provides the following technical solution: A quenching and cooling device for tempered glass production, comprising: A base; A quenching and cooling pool, fixedly arranged on the top of the base; A magnetic induction mechanism, fixedly arranged at the front end and the rear end of the top of the base, and the quenching and cooling pool is located between the two magnetic induction mechanisms at the front and rear; A stress elimination mechanism, fixedly arranged on the top of the base.
[0004] As a preferred solution of the present invention, the magnetic induction mechanism includes: Bearing seats, fixedly installed at the four corners of the top of the base; Torsion rods, rotatably installed inside the bearing seats; Assembly frames, fixedly installed between the left and right torsion rods, with a quantity of two and distributed front and rear; Iron cores, fixedly installed on the side surfaces of the front and rear two assembly frames close to each other at equal distances left and right; Winding coils, sequentially wound around the peripheries of multiple iron cores; Support frames, fixedly installed on the side surfaces of the bearing seats away from the assembly frames; The first magnetic strip is fixedly installed between the left and right support frames; The second magnetic strip is fixedly installed between the left and right support frames and is located at the top of the first magnetic strip. The magnetism of the second magnetic strip is opposite to that of the first magnetic strip.
[0005] As a preferred solution of the present invention, the stress relief mechanism includes: Adapter seats are symmetrically distributed front and back and fixedly installed on the left and right sides of the base; A forward and reverse rotating shaft is rotatably installed between the front and back adapter seats; One-way bevel gears are fixedly installed at both ends of the forward and reverse rotating shaft; Two-way bevel gears are fixedly installed at the end of the torsion bar away from the assembly frame. The two-way bevel gears are meshed with the one-way bevel gears at the corresponding positions.
[0006] As a preferred solution of the present invention, the stress relief mechanism further includes: A swing frame is slidably installed around the left and right forward and reverse rotating shafts; A corrugated plate is fixedly installed on the top wall of the swing frame and extends into the quenching pool; A percussion frame is fixedly installed on the top of the swing frame and extends into the quenching pool.
[0007] As a preferred solution of the present invention, the stress relief mechanism further includes: A spring is sleeved around the forward and reverse rotating shaft. The spring is fixedly installed between the adapter seat and the swing frame.
[0008] As a preferred solution of the present invention, the stress relief mechanism further includes: Sheet metal plates are symmetrically distributed left and right and fixedly installed on the left and right side surfaces of the base; Position sensors are distributed front and back and fixedly installed on the top of the sheet metal plates; Metal induction sheets are fixedly installed on the left and right side surfaces of the swing frame, and their positions correspond to the positions of the position sensors.
[0009] As a preferred solution of the present invention, two left and right distributed cooling fans are fixedly installed inside the base. The controllers of the two cooling fans are electrically connected to the output end of the position sensor.
[0010] As a preferred solution of the present invention, the stress relief mechanism further includes: A servo cylinder is fixedly installed at the bottom of the sheet metal plate, and its output rod movably penetrates through the inside of the sheet metal plate; A limit top plate is fixedly installed at the top of the output rod of the servo cylinder; A V-shaped groove is opened on the top of the limit top plate; The swing plate is fixedly installed in the middle of the outer wall of the forward and reverse rotating shaft, and the bottom of the swing plate is located inside the V-shaped groove.
[0011] As a preferred solution of the present invention, the quenching pool is made of high-temperature resistant ceramic material, and the beating frame is made of rubber material.
[0012] As a preferred solution of the present invention, there is a clearance fit between the bottom of the corrugated plate and the bottom wall of the quenching pool, and the clearance is 20 mm.
[0013] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. In the present invention, an external rectifier is used to supply current to the winding coil, and the current release of the winding coil is continuously changed, resulting in an alternating magnetic field in the front and back directions generated by the winding coil wound around the periphery of the assembly frame. A magnetic force acts on the magnetic quenching liquid inside the quenching pool, causing the magnetic quenching liquid to surge back and forth inside the quenching pool, which is beneficial to the uniform distribution of the heat of the magnetic quenching liquid and improves the quenching quality of tempered glass. Due to the continuously changing magnetic field generated by the winding coil, under the magnetic force action with the first magnetic strip and the second magnetic strip, the assembly frame is driven to flip up and down along the transfer position of the torsion rod and the bearing seat, so that the iron core and the winding coil generate continuously changing angles up and down, increasing the magnetic force range of the quenching liquid inside the quenching pool left and right, and making the heat distribution of the magnetic quenching liquid better.
[0014] 2. In the present invention, the quenching liquid inside the quenching pool surges back and forth to push the support frame to swing back and forth. The front and back swing of the support frame drives the first magnetic strip and the metal induction sheet to swing together through the winding coil, and the beating frame swings back and forth to gently tap the tempered glass, which is sufficient to release the internal stress of the tempered glass.
[0015] 3. In the present invention, with the continuous quenching process of tempered glass, the temperature of the quenching liquid inside the quenching pool rises, and the magnetism of the magnetic quenching liquid decreases. As a result, the magnetic force between the magnetic force generated by the swing frame and the magnetic quenching liquid weakens, the surging amplitude of the magnetic quenching liquid back and forth inside the quenching pool decreases, the swinging range of the support frame back and forth decreases, further driving the swinging range of the winding coil driving the metal induction sheet back and forth to decrease. The front and back two metal induction sheets cannot collect the signals of the metal induction sheet, and the signal that the magnetic quenching liquid needs to dissipate heat is transmitted to the two cooling fans. The two cooling fans are immediately started to rotate and send wind upward to blow the bottom of the quenching pool, realizing the cooling of the magnetic quenching liquid.
[0016] 4. In the present invention, the output rod of the servo cylinder moves upward, pushing the limit top plate and the V-shaped groove to move upward together, so that the V-shaped groove is stuck around the swing plate, suppressing the swing of the swing plate, that is, suppressing the forward and reverse rotation of the forward and reverse rotating shaft, and braking the torsion rod through the meshing action of the second bevel gear and the first bevel gear, so that the assembly frame and the iron core are braked, resulting in the axis of the iron core being in a horizontal state. At this time, the computer controls the front and rear groups of winding coils to generate magnetic forces in opposite directions, absorbing the magnetic substances in the magnetic quenching liquid to the front and rear parts of the quenching pool, while the quenching liquid body is located in the middle area of the quenching pool, so as to be centrally cooled and continuously absorb the heat of the magnetic substances, driving the magnetic substances to cool down together. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is a schematic structural diagram of the bottom view of the present invention; Figure 3 is a schematic structural diagram of the magnetic induction mechanism and the stress elimination mechanism in the present invention; Figure 4 In the present invention Figure 3 is an enlarged structural diagram of part A; Figure 5 is a detailed structural diagram of the magnetic induction mechanism in the present invention; Figure 6 In the present invention Figure 5 is an enlarged structural diagram of part B; Figure 7 is a detailed structural diagram of the stress elimination mechanism in the present invention; Figure 8 In the present invention Figure 7 is an enlarged structural diagram of part C.
[0018] In the figure: 100, base; 200, quenching pool; 300, magnetic induction mechanism; 301, bearing seat; 302, torsion rod; 303, assembly frame; 304, iron core; 305, winding coil; 306, support frame; 307, first magnetic strip; 308, second magnetic strip; 400, stress elimination mechanism; 401, adapter seat; 402, forward and reverse rotating shaft; 403, first bevel gear; 404, second bevel gear; 405, swing frame; 406, corrugated plate; 407, percussion frame; 408, spring; 409, sheet metal plate; 4010, position sensor; 4011, metal induction sheet; 4012, servo cylinder; 4013, limit top plate; 4014, V-shaped groove; 4015, swing plate; 500, cooling fan. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0019] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0020] Please refer to Figures 1 to 8 , the technical solutions provided by the present invention specifically include the following embodiments: A quenching device for tempered glass production includes a base 100, a quenching pool 200 fixedly arranged on the top of the base 100, a magnetic induction mechanism 300 fixedly arranged at the front end and the rear end of the top of the base 100. The quenching pool 200 is located between the two magnetic induction mechanisms 300 at the front and rear. A stress elimination mechanism 400 is fixedly arranged on the top of the base 100. The quenching pool 200 is made of a high-temperature resistant ceramic material.
[0021] Further, specifically referring to Figures 2 to 5 as shown: The magnetic induction mechanism 300 includes bearing seats 301, torsion rods 302, mounting frames 303, iron cores 304, winding coils 305, support frames 306, first magnetic strips 307 and second magnetic strips 308. The bearing seats 301 are fixedly installed at the four corners of the top of the base 100. The torsion rods 302 are rotatably installed inside the bearing seats 301. The mounting frames 303 are fixedly installed between the left and right torsion rods 302, with a quantity of two and distributed front and rear. The iron cores 304 are equidistantly distributed left and right and fixedly installed on the side surfaces of the front and rear mounting frames 303 close to each other. The winding coils 305 are sequentially wound around the peripheries of the multiple iron cores 304. The support frames 306 are fixedly installed on the side surfaces of the bearing seats 301 away from the mounting frames 303. The first magnetic strips 307 are fixedly installed between the left and right support frames 306. The second magnetic strips 308 are fixedly installed between the left and right support frames 306 and are located on the top of the first magnetic strips 307. The magnetism of the second magnetic strips 308 is opposite to that of the first magnetic strips 307.
[0022] Specifically, by adding an appropriate amount of magnetic quenching liquid into the interior of the quenching pool 200, then vertically inserting the tempered glass into the interior of the quenching pool 200, and placing it at equal intervals front and back at the bottom of the quenching pool 200, and ensuring that each piece of tempered glass is located between each rod of the beating frame 407, the magnetic quenching liquid is used to perform liquid quenching on the tempered glass. At the same time, the output end of the external rectifier is connected to the input end of the winding coil 305. The external rectifier conveys current to the winding coil 305 and continuously changes the current direction of the winding coil 305, resulting in an alternating magnetic field in the front and back directions generated by the winding coil 305 wound around the periphery of the assembly frame 303. A magnetic force acts on the magnetic quenching liquid inside the quenching pool 200, causing the magnetic quenching liquid to surge back and forth inside the quenching pool 200, which is conducive to the uniform distribution of the heat of the magnetic quenching liquid and improves the quenching quality of the tempered glass. Due to the continuously changing magnetic field generated by the winding coil 305, under the magnetic force action with the first magnetic strip 307 and the second magnetic strip 308, the assembly frame 303 is driven to flip up and down along the connection position of the torsion rod 302 and the bearing seat 301, causing the iron core 304 and the winding coil 305 to generate continuously changing angles up and down, improving the left and right range of the magnetic force with the quenching liquid inside the quenching pool 200 and making the heat distribution of the magnetic quenching liquid better.
[0023] Further, specifically refer to Figure 4 、 Figure 7 and Figure 8 as shown: The stress elimination mechanism 400 includes an adapter seat 401, a forward and reverse rotating shaft 402, a first bevel gear 403, a second bevel gear 404, a swing frame 405, a corrugated plate 406, a beating frame 407 and a spring 408. The adapter seats 401 are symmetrically distributed front and back and fixedly installed on the left and right sides of the base 100. The forward and reverse rotating shaft 402 is rotatably installed between the front and back two adapter seats 401. The first bevel gears 403 are fixedly installed at both ends of the forward and reverse rotating shaft 402. The second bevel gear 404 is fixedly installed at the end of the torsion rod 302 away from the assembly frame 303. The second bevel gear 404 meshes with the corresponding first bevel gear 403. The swing frame 405 is slidably installed around the left and right forward and reverse rotating shafts 402. The corrugated plate 406 is fixedly installed on the top wall of the swing frame 405 and extends into the interior of the quenching pool 200. The beating frame 407 is fixedly installed on the top of the swing frame 405 and extends into the interior of the quenching pool 200. The beating frame 407 is made of rubber material. The spring 408 is sleeved around the forward and reverse rotating shaft 402. The spring 408 is fixedly installed between the adapter seat 401 and the swing frame 405. There is a clearance fit between the bottom of the corrugated plate 406 and the bottom wall of the quenching pool 200, and the clearance is 20 mm.
[0024] Specifically, when the quenching liquid inside the quenching pool 200 surges back and forth, it will push the support frame 306 to swing back and forth. The back-and-forth swing of the support frame 306 drives the first magnetic strip 307 and the metal induction sheet 4011 to swing together through the winding coil 305, and the beating frame 407 swings back and forth to gently tap the tempered glass, which helps to release the internal stress of the tempered glass.
[0025] Further, specifically refer to Figure 8 as shown in The stress elimination mechanism 400 further includes a sheet metal plate 409, a position sensor 4010, a metal induction sheet 4011, a servo cylinder 4012, a limit top plate 4013, a V-shaped groove 4014 and a swing plate 4015. The sheet metal plates 409 are symmetrically distributed and fixedly installed on the left and right sides of the base 100. The position sensors 4010 are distributed front and back and fixedly installed on the top of the sheet metal plate 409. The metal induction sheets 4011 are fixedly installed on the left and right sides of the swing frame 405, and the positions correspond to those of the position sensors 4010. Two heat dissipation fans 500 are fixedly installed inside the base 100 and are distributed left and right. The controllers of the two heat dissipation fans 500 are electrically connected to the output end of the position sensor 4010. The stress elimination mechanism 400 further includes a servo cylinder 4012 fixedly installed at the bottom of the sheet metal plate 409, and its output rod movably penetrates through the inside of the sheet metal plate 409. The limit top plate 4013 is fixedly installed on the top of the output rod of the servo cylinder 4012. The V-shaped groove 4014 is opened on the top of the limit top plate 4013. The swing plate 4015 is fixedly installed in the middle of the outer wall of the forward and reverse rotating shaft 402, and the bottom of the swing plate 4015 is located inside the V-shaped groove 4014.
[0026] Specifically, the metal induction sheet 4011 continuously reciprocates between the front and rear position sensors 4010. The two position sensors 4010 receive the signal of the metal induction sheet 4011, and further control the two cooling fans 500 to stop rotating. At the same time, due to the continuous up and down flipping of the torsion bar 302, the second bevel gear 404 is further driven to flip together, resulting in the continuous forward and reverse rotation of the first bevel gear 403 meshing with the second bevel gear 404, further driving the forward and reverse rotating shaft 402 and the swing plate 4015 to rotate forward and backward together. With the continuous quenching and cooling of the tempered glass, the temperature of the quenching liquid in the quenching pool 200 rises, and the magnetism of the magnetic quenching liquid decreases, resulting in the weakening of the magnetic force between the magnetic force generated by the swing frame 405 and the magnetic quenching liquid. The forward and backward surging amplitude of the magnetic quenching liquid in the quenching pool 200 decreases, resulting in the reduction of the forward and backward swing range of the support frame 306, further driving the reduction of the forward and backward swing range of the winding coil 305 driving the metal induction sheet 4011. The front and rear metal induction sheets 4011 cannot collect the signal of the metal induction sheet 4011, and transmit the heat dissipation signal required by the magnetic quenching liquid to the two cooling fans 500. The two cooling fans 500 immediately start to rotate and send wind upward to blow the bottom of the quenching pool 200 to achieve the cooling effect on the magnetic quenching liquid. At the same time, the output rod of the servo cylinder 4012 moves upward and pushes the limit top plate 4013 together with the V-shaped groove 4014 to move upward, so that the V-shaped groove 4014 is stuck on the periphery of the swing plate 4015 to inhibit the swing of the swing plate 4015, that is, to inhibit the forward and reverse rotation of the forward and reverse rotating shaft 402, and brake the torsion bar 302 through the meshing action of the second bevel gear 404 and the first bevel gear 403, so that the assembly frame 303 and the iron core 304 are braked, resulting in the axis of the iron core 304 being in a horizontal state. At this time, the computer controls the front and rear groups of winding coils 305 to generate magnetic forces in opposite directions, and absorbs the magnetic substances in the magnetic quenching liquid to the front and rear parts of the quenching pool 200, while the quenching liquid body is located in the middle area of the quenching pool 200, so as to be centrally cooled, continuously absorb the heat of the magnetic substances, drive the magnetic substances to cool down together. After the temperature drops, the external computer controls the output rod of the servo cylinder 4012 to move downward, so that the V-shaped groove 4014 releases the limiting effect on the swing plate 4015.
[0027] When a quenching device for tempered glass production in this solution is working, first add an appropriate amount of magnetic quenching liquid into the quenching pool 200, suck the top of the tempered glass with a suction cup on the external robotic arm, then vertically insert the tempered glass into the quenching pool 200, and place it at equal intervals in the front and back at the bottom of the quenching pool 200, and ensure that each piece of tempered glass is located between each rod of the beating frame 407, and use the magnetic quenching liquid to perform liquid quenching on the tempered glass; At the same time, the output end of the external rectifier is connected to the input end of the winding coil 305, and the external rectifier transmits current to the winding coil 305, and constantly changes the current direction of the winding coil 305, so that the winding coil 305 wound around the outer periphery of the assembly frame 303 generates an alternating magnetic field in the front-to-back direction, and generates a magnetic force with the magnetic quenching liquid inside the quenching pool 200, so that the magnetic quenching liquid surges back and forth inside the quenching pool 200, which is conducive to the uniform distribution of heat of the magnetic quenching liquid and improves the quenching quality of the tempered glass. Due to the magnetic field effect that constantly changes back and forth generated by the winding coil 305, it drives the assembly frame 303 to flip up and down along the transfer position of the torsion rod 302 and the bearing seat 301 under the magnetic force of the first magnetic strip 307 and the second magnetic strip 308, so that the iron core 304 and the winding coil 305 generate a constantly changing angle up and down, and the magnetic force of the quenching liquid inside the quenching pool 200 is improved. The left and right range, so that the heat distribution of the magnetic quenching liquid is better; It should be noted that during the forward and backward surging of the quenching liquid inside the quenching tank 200, it will push the support frame 306 to swing back and forth. The forward and backward swinging of the support frame 306 drives the first magnetic strip 307 and the metal induction sheet 4011 to swing together through the winding coil 305. The striking frame 407 swings back and forth and gently taps the tempered glass, which helps to release the internal stress of the tempered glass. The metal induction sheet 4011 continuously reciprocates between the front and rear position sensors 4010. The two position sensors 4010 receive the signal of the metal induction sheet 4011 and further control the two cooling fans 500 to stop rotating. At the same time, due to the continuous up and down flipping of the torsion bar 302, it further drives the second bevel gear 404 to flip together, resulting in the continuous forward and reverse rotation of the first bevel gear 403 meshing with the second bevel gear 404, further driving the forward and reverse rotating shaft 402 and the swing plate 4015 to rotate forward and backward together. With the continuous quenching process of the tempered glass, the temperature of the quenching liquid inside the quenching tank 200 rises, and the magnetism of the magnetic quenching liquid decreases. As a result, the magnetic force between the swing frame 405 and the magnetic quenching liquid weakens, and the forward and backward surging amplitude of the magnetic quenching liquid inside the quenching tank 200 decreases, leading to a reduction in the range of the forward and backward swing of the support frame 306, and further driving a reduction in the range of the forward and backward swing of the winding coil 305 driving the metal induction sheet 4011. The front and rear metal induction sheets 4011 cannot collect the signal of the metal induction sheet 4011, and transfer the signal that the magnetic quenching liquid needs to be cooled to the two cooling fans 500. The two cooling fans 500 then start to rotate and send wind upward to blow the bottom of the quenching tank 200, achieving the cooling effect on the magnetic quenching liquid. At the same time, the output rod of the servo cylinder 4012 moves upward and pushes the limit top plate 4013 and the V-shaped groove 4014 to move upward together, so that the V-shaped groove 4014 is stuck on the periphery of the swing plate 4015, suppressing the swing of the swing plate 4015, that is, suppressing the forward and backward rotation of the forward and reverse rotating shaft 402, and braking the torsion bar 302 through the meshing action of the second bevel gear 404 and the first bevel gear 403, so that the assembly frame 303 and the iron core 304 are braked, resulting in the axis of the iron core 304 being in a horizontal state. At this time, the computer controls the front and rear two groups of winding coils 305 to generate magnetic forces in opposite directions, absorbing the magnetic substances in the magnetic quenching liquid to the front and rear parts of the quenching tank 200, while the quenching liquid body is located in the middle area of the quenching tank 200, so as to be centrally cooled and continuously absorb the heat of the magnetic substances, driving the magnetic substances to cool down together. After the temperature drops, the external computer controls the output rod of the servo cylinder 4012 to move downward, so that the V-shaped groove 4014 releases the limiting effect on the swing plate 4015.
[0028] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made in these embodiments without departing from the principles and spirit of the present invention.
Claims
1. A quenching device for tempered glass production, characterized in that: Comprising: A base (100); A quenching bath (200), fixedly arranged on the top of the base (100); A magnetic induction mechanism (300), fixedly arranged at the front end and the rear end of the top of the base (100), and the quenching bath (200) is located between the two magnetic induction mechanisms (300) at the front and rear; A stress relief mechanism (400), fixedly arranged on the top of the base (100).
2. The quenching device for tempered glass production according to claim 1, characterized in that: The magnetic induction mechanism (300) includes: Bearing seats (301), fixedly installed at the four corners of the top of the base (100); Torsion rods (302), rotatably installed inside the bearing seats (301); Assembly frames (303), fixedly installed between the two torsion rods (302) on the left and right, with a quantity of two and distributed front and rear; Iron cores (304), equidistantly distributed and fixedly installed on the side surfaces of the two front and rear assembly frames (303) close to each other; Winding coils (305), sequentially wound around the peripheries of multiple iron cores (304); Support frames (306), fixedly installed on the side surfaces of the bearing seats (301) away from the assembly frames (303); First magnetic strips (307), fixedly installed between the two support frames (306) on the left and right; Second magnetic strips (308), fixedly installed between the two support frames (306) on the left and right and located at the top of the first magnetic strips (307), and the magnetism of the second magnetic strips (308) is opposite to that of the first magnetic strips (307).
3. The quenching device for tempered glass production according to claim 2, characterized in that: The stress relief mechanism (400) includes: Adapter seats (401), symmetrically distributed and fixedly installed on the left side and the right side of the base (100); A forward and reverse rotating shaft (402), rotatably installed between the two adapter seats (401) at the front and rear; First bevel gears (403), fixedly installed at both ends of the forward and reverse rotating shaft (402); Second bevel gears (404), fixedly installed at the ends of the torsion rods (302) away from the assembly frames (303), and the second bevel gears (404) are meshed with the first bevel gears (403) at the corresponding positions.
4. The quenching device for tempered glass production according to claim 3, characterized in that: The stress relief mechanism (400) further includes: Swing frames (405), slidably installed around the two forward and reverse rotating shafts (402) on the left and right; Wave plates (406), fixedly installed on the top walls of the swing frames (405) and extending into the quenching bath (200); Beating frames (407), fixedly installed on the tops of the swing frames (405) and extending into the quenching bath (200).
5. The quenching device for tempered glass production according to claim 4, characterized in that: The stress relief mechanism (400) further includes: Springs (408), sleeved around the forward and reverse rotating shafts (402), and the springs (408) are fixedly installed between the adapter seats (401) and the swing frames (405).
6. The quenching device for tempered glass production according to claim 5, characterized in that: The stress relief mechanism (400) further includes: Sheet metal plates (409), symmetrically distributed and fixedly installed on the left and right sides of the base (100); Position sensors (4010), distributed front and back and fixedly installed on the top of the sheet metal plates (409); Metal induction sheets (4011), fixedly installed on the left and right sides of the swing frame (405), and the positions corresponding to those of the position sensors (4010).
7. A quenching and cooling device for tempered glass production according to claim 6, characterized in that: Two heat dissipation fans (500) distributed left and right are fixedly installed inside the base (100), and the controllers of the two heat dissipation fans (500) are electrically connected to the output end of the position sensor (4010).
8. A quenching and cooling device for tempered glass production according to claim 7, characterized in that: The stress relief mechanism (400) further includes: A servo cylinder (4012), fixedly installed at the bottom of the sheet metal plate (409), and its output rod movably penetrates through the inside of the sheet metal plate (409); A limit top plate (4013), fixedly installed at the top of the output rod of the servo cylinder (4012); A V-shaped groove (4014), opened at the top of the limit top plate (4013); A swing plate (4015), fixedly installed in the middle of the outer wall of the forward and reverse rotating shaft (402), and the bottom of the swing plate (4015) is located inside the V-shaped groove (4014).
9. A quenching and cooling device for tempered glass production according to claim 8, characterized in that: The quenching pool (200) is made of high-temperature resistant ceramic material, and the beating frame (407) is made of rubber material.
10. A quenching and cooling device for tempered glass production according to claim 9, characterized in that: There is a clearance fit between the bottom of the corrugated plate (406) and the bottom wall of the quenching pool (200), and the clearance is 20 mm.
Citation Information
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