Energy-saving and environment-friendly glass processing furnace

By designing a hydraulic cylinder-driven rack and impact block system in a glass processing furnace, combined with the gear transmission driven by a motor, the problems of unsmooth glass dumping and unstable material discharge in the prior art are solved, and more stable glass dumping and lower safety hazards are achieved.

CN119930133AInactive Publication Date: 2025-05-06QIDONG MINGYU ENERGY SAVING TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202411917659.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-12-24
Publication Date
2025-05-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When the molten glass dumping is not smooth, existing glass processing furnaces need to manually tap to help discharge materials, but the manual tapping force is inconsistent, resulting in unstable discharge volume and easy to start the knock structure due to misoperation, affecting the glass dumping effect, posing a safety hazard.

Method used

A glass processing furnace is designed including a knocking device, hydraulic cylinder, circular plate, vertical rod and groove plate. The hydraulic cylinder drives the rack and impact block to move on the groove plate to generate vibration to help the glass pour, and drives the gear transmission system through the motor to ensure that the force of each strike is consistent.

Benefits of technology

Through the cooperation of the hydraulic cylinder and the gear transmission system, stable control of the glass dumping process is achieved, the smoothness of glass dumping and the stability of the discharge volume are improved, and safety hazards caused by misoperation are reduced.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119930133A_ABST
    Figure CN119930133A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of glass processing furnaces, in particular to an energy-saving and environment-friendly glass processing furnace which comprises a furnace body, a supporting plate and connecting plates, the connecting plates are symmetrically and fixedly connected to the surface of the furnace body, rotating shafts are fixedly connected to the surfaces of the connecting plates on the two sides, and the surfaces of the rotating shafts on the two sides are movably connected with triangular blocks through bearings; the surfaces of the triangular blocks on the two sides are fixedly connected with the surfaces of the supporting legs, a discharging device is arranged on the surface of the supporting leg on one side, a knocking device, a hydraulic cylinder, a circular plate, a vertical rod and a groove plate are matched, a second gear drives a first gear to rotate by the same distance at a time, the compressed degree of a spring is the same, and the strength of impacting the furnace body is the same; the furnace body can discharge materials at a constant speed under the action of the same impact force, the problem that molten glass is not smoothly poured is effectively solved by knocking with the same force, and meanwhile, the impact force is the same, so that the discharging amount during discharging can be more stable.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of glass processing furnaces, in particular to an energy-saving and environment-friendly glass processing furnace. Background Art

[0002] Glass tempering furnace is also known as glass tempering unit, tempering furnace, tempering equipment, tempering unit, etc. Glass tempering furnace uses physical or chemical methods to form a compressive stress layer on the surface of the glass and a tensile stress layer inside; when the glass is subjected to external force, the compressive stress layer can offset part of the tensile stress to prevent the glass from breaking, thereby achieving the purpose of improving the strength of the glass. By monitoring the real-time temperature of the glass in the furnace, the temperature of the glass out of the furnace can be accurately controlled, the difficulty of operation can be reduced, the glass quality, yield rate and production capacity can be improved, and energy consumption can be reduced.

[0003] However, the prior art requires manual knocking to help pouring the molten glass when it does not pour smoothly. However, the manual knocking has a small force and is not conducive to long-term maintenance. Therefore, it is easy to cause the problem that the molten glass does not pour smoothly and cannot be effectively alleviated.

[0004] At the same time, the prior art requires manual knocking when the molten glass is not poured smoothly, and the repeated manual knocking process is prone to unstable discharge volume during the furnace pouring process because the force applied each time is not consistent.

[0005] Moreover, if only a simple knocking structure control is adopted, since it is directly installed on the outer wall of the furnace, when knocking is not needed, the equipment is prone to cause the knocking structure to be activated due to misoperation, affecting the effect of the furnace dumping process, and further causing the molten glass to dump and splash, posing a certain safety hazard. Summary of the invention

[0006] The purpose of the present invention is to solve the problems that the molten glass is not poured smoothly, the force during knocking is inconsistent, the dumping and filtering discharge volume is unstable, and the equipment is easily activated due to misoperation, which affects the effect of the furnace dumping process and causes the molten glass to splash. There are certain safety hazards.

[0007] To achieve the above object, the present invention provides the following technical solutions: A processing furnace for energy-saving and environmentally friendly glass is designed, comprising a furnace body and a connecting plate, wherein the outer wall of the furnace body is symmetrically fixedly connected with the connecting plate, the outer wall centers of the connecting plates on both sides are fixedly connected with rotating shafts, the end outer walls of the rotating shafts on both sides are movably connected to triangular blocks through bearings, the lower ends of the triangular blocks on both sides are fixedly connected to the upper ends of supporting legs, a discharging device is provided on the surface of one of the supporting legs, one side of the supporting legs on both sides is provided with auxiliary supporting devices, the front and rear sides of the upper end of the support plate in the auxiliary supporting device are symmetrically fixedly connected with hydraulic cylinders, the main body of the hydraulic cylinder passes through a groove plate, and a plurality of knocking devices are provided on the upper end of the groove plate.

[0008] Preferably, the auxiliary support device includes a support plate, a slider, a round rod, a slide rod and a support frame; One end of the support frame is fixedly connected to the support leg, and the other end of the support frame is fixedly connected to the inner wall of the slide rod. The outer wall of the slide rod is slidably connected to the inner walls of the two sliders. The outer walls of the two sliders are fixedly connected with round rods, and the ends of the round rods on both sides are fixedly connected to the support plate.

[0009] Preferably, the telescopic ends of the hydraulic cylinders on both sides are fixedly connected to circular plates, the lower ends of the circular plates on both sides are symmetrically fixedly connected to vertical rods, and the ends of the vertical rods on both sides are fixedly connected to the groove plates.

[0010] Preferably, the knocking device includes a motor, a motor bracket, a second straight plate, a first straight plate, a spring, a first gear, a slide bar, a rack, a knock block and a second gear; The lower end of the motor bracket is fixedly connected to the groove plate, the outer wall of the motor bracket is fixedly connected to the motor, the output shaft of the motor is rotatably connected to the motor bracket through a bearing, the output shaft of the motor passes through the motor bracket and is fixedly connected to the second gear, the teeth of the second gear are meshed with the tooth grooves of the first gear, the protruding part of the surface of one side of the second gear is rotatably connected to the first straight plate through a bearing, one end of the first straight plate is fixedly connected to the groove plate, the protruding part of the first gear is rotatably connected to the two second straight plates through a bearing, the lower ends of the second straight plates on both sides are fixedly connected to the groove plate, the first gear is meshed with the rack, the protruding part of the rack is sleeved on the outer wall of the sliding rod, the lower end of the sliding rod is fixedly connected to the groove plate, the protruding part of the rack and the upper surface of the groove plate are respectively fixedly connected to the two ends of the spring, and the upper end of the rack is fixedly connected with an impact block.

[0011] Preferably, a plurality of groups of square holes are provided on the surface of the groove plate, and both sides of the upper end of the support plate are fixedly connected to one end of a support arm, and the other ends of the support arms on both sides are fixedly connected to the lower end of the furnace body.

[0012] Preferably, the end of the supporting leg is fixedly connected to a bottom plate, and inclined rods are distributed on both sides of the upper end of the bottom plate, and the two sides of the inclined rods are respectively fixedly connected to the supporting leg and the bottom plate.

[0013] Preferably, the discharging device comprises a horizontal plate, a sleeve rod, a push block and a cylinder; The horizontal plate is fixedly connected to the outer wall of the rear supporting leg, a cylinder is fixedly connected to one side of the upper end of the horizontal plate, a push block is fixedly connected to the telescopic end of the cylinder, the push block is slidably connected to the inner wall slideway of the sleeve rod through the protruding part of the surface, and one end of the sleeve rod is fixedly connected to the outer wall of the rotating shaft on one side.

[0014] The energy-saving and environmentally friendly glass processing furnace proposed by the present invention has the following beneficial effects: Through the cooperation of the knocking device, hydraulic cylinder, circular plate, vertical rod and groove plate, the output shafts of the three sets of motors rotate to drive the second gear to rotate. After the transmission of the first gear, the rack slides on the surface of the sliding rod, so that the spring is compressed. When the second gear is no longer engaged with the surface of the first gear, the spring is no longer compressed, so that the spring can push the rack to move upward quickly, so that the rack can drive the impact block to hit the furnace body, so that the impact block can make the furnace body vibrate, and the three impact blocks are knocked at the same time, so that the knocking force is increased, and the pouring of molten glass can be smoother.

[0015] Through the cooperation of the knocking device, hydraulic cylinder, circular plate and groove plate, the second gear drives the first gear to rotate the same distance at a time, so that the spring is compressed to the same degree, the force of hitting the furnace body is the same, and the furnace body can discharge materials at a uniform speed under the action of the same impact force. By knocking with the same force, the problem of the molten glass pouring being not smooth is effectively solved. At the same time, the same impact force can make the discharge amount during discharge more stable.

[0016] Through the cooperation of the auxiliary supporting device, the discharging device, the hydraulic cylinder, the circular plate, the vertical rod and the groove plate, the supporting arms on both sides can be driven to move synchronously while the furnace body rotates, and the supporting arms on both sides can drive the four circular rods to move synchronously through the support plate while moving, and the four round rods can drive the four sliders to slide on the surface of the slide rod, so that the support plate can move synchronously with the furnace body, and the telescopic end of the hydraulic cylinder extends synchronously to drive the circular plates on both sides to move synchronously, so that the circular plates on both sides can drive the four vertical rods on both sides to move synchronously, and the four vertical rods can drive the groove plate to move, so that the groove plate can move toward the direction close to the furnace body, and the movement distance of the three impact blocks can hit the surface of the furnace body, so that the knocking device can be made to move synchronously with the furnace body. At the same time, when the knocking device is not in use, the knocking distance of the knocking device cannot contact the furnace body, thereby reducing the situation where the knocking device is activated due to misoperation, causing the molten glass to spill when knocking, and improving safety. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a schematic diagram of the appearance structure of the present invention; Figure 2 For the present invention Figure 1 Schematic diagram of the upward-looking state; Figure 3 For the present invention Figure 1 Schematic diagram of rear view state; Figure 4 It is a schematic diagram of the local structure of the auxiliary support device of the present invention; Figure 5 It is a structural schematic diagram of the striking device of the present invention; Figure 6 For the present invention Figure 5 Schematic diagram of the side view state structure in; Figure 7 It is a partial structural schematic diagram of the striking device of the present invention; Figure 8 for Figure 6 Schematic diagram of the structure of part A.

[0018] In the figure: 1, furnace body, 2, supporting legs, 3, bottom plate, 4, inclined rod, 5, auxiliary supporting device, 501, supporting plate, 502, sliding block, 503, round rod, 504, slide rod, 6, connecting plate, 7, triangular block, 8, discharging device, 801, horizontal plate, 802, sleeve rod, 803, push block, 804, cylinder, 9, knocking device, 901, motor, 902, motor bracket, 903, second straight plate, 904, first straight plate, 905, spring, 906, first gear, 907, sliding rod, 908, rack, 909, impact block, 910, second gear, 10, rotating shaft, 11, groove plate, 12, round plate, 13, supporting arm, 14, vertical rod, 15, square hole, 16, hydraulic cylinder. DETAILED DESCRIPTION

[0019] The present invention will be further described below in conjunction with the accompanying drawings: See attached Figure 1-8: In the present embodiment, a processing furnace for energy-saving and environmentally friendly glass includes a furnace body 1 and a connecting plate 6. The outer wall of the furnace body 1 is symmetrically fixedly connected with the connecting plate 6. The centers of the outer walls of the connecting plates 6 on both sides are fixedly connected with a rotating shaft 10. The rotating shafts 10 on both sides can support the furnace body 1 to tilt so that the molten glass inside can be poured out. The outer walls of the ends of the rotating shafts 10 on both sides are movably connected to the triangular blocks 7 through bearings. The triangular blocks 7 on both sides can support the rotating shafts 10 on both sides. The lower ends of the triangular blocks 7 on both sides are fixedly connected to the upper ends of the supporting legs 2. A discharging device 8 is provided on the surface of one side of the supporting legs 2. Auxiliary supporting devices 5 are provided on one side of the supporting legs 2 on both sides. Hydraulic cylinders 16 are symmetrically fixedly connected on the front and rear sides of the upper end of the support plate 501. The hydraulic cylinders 16 can meet the working needs according to actual needs. The hydraulic cylinders 16 can push the circular plate 12 to move. The hydraulic cylinders 16 penetrate the groove plate 11 through the opening on the surface of the groove plate 11. A plurality of knocking devices 9 are provided on the upper end of the groove plate 11.

[0020] The auxiliary support device 5 includes a support plate 501, a slider 502, a round rod 503, a slide rod 504 and a support frame 505; One end of the support frame 505 is fixedly connected to the support leg 2, and the other end of the support frame 505 is fixedly connected to the inner wall of the slide rod 504. The support frame 505 can fix the position of the slide rod 504. The outer wall of the slide rod 504 is slidably connected to the inner walls of the two sliders 502. The sliders 502 on both sides can slide on the surface of the slide rod 504 on both sides. The outer walls of the two sliders 502 are fixedly connected with round rods 503, and the ends of the round rods 503 on both sides are fixedly connected to the surface of the support plate 501.

[0021] The telescopic ends of the hydraulic cylinders 16 on both sides are fixedly connected to the circular plates 12, and the lower ends of the circular plates 12 on both sides are symmetrically fixedly connected to the vertical rods 14. The circular plates 12 are connected to the vertical rods 14 on both sides, and the vertical rods 14 on both sides can be connected to the groove plates 11 at the same time, so that the telescopic ends of the hydraulic cylinders 16 can drive the groove plates 11 to rise and fall, and the ends of the vertical rods 14 on both sides are fixedly connected to the surfaces of the groove plates 11.

[0022] The striking device 9 includes a motor 901, a motor bracket 902, a second straight plate 903, a first straight plate 904, a spring 905, a first gear 906, a slide bar 907, a rack 908, a striking block 909 and a second gear 910; The lower end of the motor bracket 902 is fixedly connected to the groove plate 11, and the outer wall of the motor bracket 902 is fixedly connected to the motor 901. The motor 901 is set according to actual needs to meet the working needs. The motor 902 can drive the second gear 910 to rotate, and the output shaft of the motor 901 is rotatably connected to the motor bracket 902 through a bearing. The output shaft of the motor passes through the motor bracket 902 and is fixedly connected to the second gear 910. The teeth of the second gear 910 are meshed with the teeth of the first gear 906. The second gear 910 is an incomplete gear. The second gear 910 can drive the first gear 906 to rotate intermittently. The protruding part of the surface of one side of the second gear 910 is rotatably connected to the surface of the first straight plate 904 through a bearing. The first straight plate 904 is fixedly connected to the surface of the groove plate 11. The protrusion of the first gear 906 The first gear 906 is meshed with the rack 908. The rotation of the first gear 906 can drive the rack 908 to move downward, so that the rack 908 can compress the spring 905. The elastic coefficient of the spring 905 is set according to actual needs to meet the working needs. The spring 905 can push the rack 908 to move upward quickly. The protruding part of the rack 908 is socketed with the outer wall of the slide bar 907, and the lower end of the slide bar 907 is fixedly connected to the groove plate 11. The protruding part of the rack 908 and the upper surface of the groove plate 11 are respectively fixedly connected to the two ends of the spring 905. The upper end of the rack 908 is fixedly connected with a collision block 909, which can be made of rubber.

[0023] Through the cooperation of the knocking device 9, the hydraulic cylinder 16, the circular plate 12, the vertical rod 14 and the groove plate 11, the output shafts of the three motors 901 rotate to drive the second gear 910 to rotate, and through the transmission of the first gear 906, the rack 908 slides on the surface of the slide bar 907, so that the spring 905 is compressed. When the second gear 910 is no longer engaged with the surface of the first gear 906, the spring 905 is no longer compressed, so that the spring 905 can push the rack 908 to move upward quickly, so that the rack can drive the impact block 909 to impact the furnace body 1, so that the impact block 909 can make the furnace body 1 vibrate, and the three impact blocks 909 are used to knock at the same time, so that the force of the knocking is increased, and the pouring of the molten glass can be smoother.

[0024] Through the cooperation of the knocking device 9, the hydraulic cylinder 16, the circular plate 12 and the groove plate 11, the second gear 910 drives the first gear 906 to rotate the same distance at a time, so that the spring 905 is compressed to the same degree, and the force of hitting the furnace body 1 is the same, so that the furnace body 1 can discharge materials at a uniform speed under the action of the same impact force. By knocking with the same force, the problem of the molten glass pouring being not smooth is effectively solved. At the same time, the impact force is the same, so that the discharge amount during discharge can be more stable.

[0025] A plurality of groups of square holes 15 are provided on the surface of the groove plate 11, and the square holes 15 allow the rack 908 to have sufficient downward movement space. Both sides of the upper end of the support plate 501 are fixedly connected to one end of the support arm 13, and the other ends of the support arms 13 on both sides are fixedly connected to the lower end of the furnace body 1. Under the action of the support arms 13 on both sides, the furnace body 1 can be tilted while driving the support plate 501 to move synchronously.

[0026] The end of the supporting leg 2 is fixedly connected to the base plate 3, and inclined rods 4 are distributed on both sides of the upper end of the base plate 3. The two sides of the inclined rod 4 are respectively fixedly connected to the supporting leg 2 and the base plate 3. The inclined rod 4 can support the base plate 3 and the supporting leg 2 to be more stable.

[0027] The discharging device 8 includes a horizontal plate 801, a sleeve rod 802, a push block 803 and a cylinder 804; The cross plate 801 is fixedly connected to the outer wall of the rear supporting leg 2, and a cylinder 804 is fixedly connected to the surface of the cross plate 801. The cylinder 804 can be set according to actual needs to meet the working needs. The telescopic end of the cylinder 804 can push the push block 803 to move synchronously, so that the push block 803 can drive the sleeve rod 802 to rotate a certain angle around the rotating shaft 10. The telescopic end of the cylinder 804 is fixedly connected to the push block 803, and the push block 803 is slidably connected to the inner wall slide of the sleeve rod 802 through the protruding part of the surface. The sleeve rod 802 can drive the rotating shaft 10 to rotate synchronously, and one end of the sleeve rod 802 is fixedly connected to the outer wall of the rotating shaft 10 on one side.

[0028] Through the cooperation of the auxiliary support device 5, the discharging device 8, the hydraulic cylinder 16, the circular plate 12, the vertical rod 14, and the groove plate 11, the support arms 13 on both sides can be driven to move synchronously while the furnace body 1 rotates. The support arms 13 on both sides can drive the four round rods 503 to move synchronously through the support plate 501 while moving. The four round rods 503 can drive the four sliders 502 to slide on the surface of the slide rod 504, so that the support plate 501 can move synchronously with the furnace body 1, and the telescopic end of the hydraulic cylinder 16 can extend synchronously to drive the circular plates 12 on both sides to move synchronously. The circular plates 12 on both sides can drive the four vertical rods 14 on both sides to move synchronously, and the four vertical rods 14 can drive the groove plate 11 to move, so that the groove plate 11 can move toward the direction close to the furnace body 1, and the movement distance of the three impact blocks 909 can hit the surface of the furnace body 1. The knocking device can be made to move synchronously with the furnace body 1. At the same time, when the knocking device 9 is not in use, the knocking distance of the knocking device 9 cannot contact the furnace body, which reduces the situation that the knocking device 9 is started due to misoperation, causing the molten glass to spill when knocking, thereby improving safety.

[0029] Working principle: When processing energy-saving and environmentally friendly glass: Discharging process: After the glass is heated and molten, it is stored inside the furnace body 1, and the required environmental protection agent is added to the molten glass (the specific method can be selected according to actual conditions). When the molten glass inside needs to be poured out, the cylinder 804 is controlled to work, and the telescopic end of the cylinder 804 is started to extend to push the push block 803 to move, so that the protruding part of the push block 803 slides in the slideway on the surface of the sleeve rod 802, so that the push block 803 can push the sleeve rod 802 to rotate a certain angle around the rotating shaft 10, so that the rotating shaft 10 can drive the connecting plate 6 to move synchronously, and the connecting plate 6 can drive the furnace body 1 to rotate and tilt, so that the molten glass inside the furnace body 1 can be poured out from the pointed mouth.

[0030] Transmission process: While the furnace body 1 is rotating, the support arms 13 on both sides can be driven to move synchronously. While the support arms 13 on both sides are moving, the four round rods 503 can be driven to move synchronously through the support plate 501. The four round rods 503 can drive the four sliders 502 to slide on the surface of the slide rod 504, so that the support plate 501 can move synchronously with the furnace body 1, and the support plate 501 can drive the knocking device 9 to move synchronously, so that the knocking device 9 can move with the furnace body 1, and the knocking device 9 can knock on the furnace body 1 at any time.

[0031] Tapping process: When pouring the molten glass, the hydraulic cylinder 16 is controlled to work, and the telescopic end of the hydraulic cylinder 16 is started to extend synchronously to drive the circular plates 12 on both sides to move synchronously, so that the circular plates 12 on both sides can drive the four vertical rods 14 on both sides to move synchronously, so that the four vertical rods 14 can drive the groove plate 11 to move, so that the groove plate 11 can move toward the direction close to the furnace body 1, and the three impact blocks 909 are transported to the knocking station, so that the movement distance of the three impact blocks 909 can hit the surface of the furnace body 1, and at the same time, the external power supply of the three motors 901 is connected, and the output shafts of the three motors 901 are started to rotate to drive the second gear 910 to rotate, so that the second gear 910 can drive the first gear 906 to rotate synchronously, and the first gear 906 can drive the rack 908 to move, so that the rack 908 can move in the direction away from the furnace body 1, so that the rack 908 moves on the sliding rod 90 7 slides on the surface, so that the spring 905 is compressed. When the second gear 910 rotates a certain angle, the second gear 910 is no longer meshed with the surface of the first gear 906, so that the spring 905 can push the rack 908 to move upward quickly, so that the rack 908 can drive the impact block 909 to impact the furnace body 1, so that the impact block 909 can make the furnace body 1 vibrate, and under the action of vibration, the molten glass inside can flow out more smoothly. The first gear 906 is driven by the second gear 910 to rotate the same distance once, and the first gear 906 drives the rack 908 to move a certain distance, so that the degree of compression of the spring 905 is the same, and the force generated by the spring 905 when released is also the same, so that the force of impacting the furnace body 1 is the same, so that the furnace body 1 can make the molten glass inside the furnace body 1 vibrate with the same force under the action of the same impact force, so as to achieve uniform and uniform discharge.

[0032] Although the present invention has been shown and described with reference to preferred embodiments, it will be understood by those skilled in the art that various changes in form and details may be made therein within the scope of the claims.

Claims

1. An energy-saving and environmentally friendly glass processing furnace, comprising a furnace body (1) and a connecting plate (6), wherein the outer wall of the furnace body (1) is symmetrically fixedly connected to the connecting plate (6), characterized in that: The centers of the outer walls of the connecting plates (6) on both sides are fixedly connected with a rotating shaft (10), the outer walls of the ends of the rotating shafts (10) on both sides are movably connected with the triangular blocks (7) through bearings, the lower ends of the triangular blocks (7) on both sides are fixedly connected with the upper ends of the supporting legs (2), a discharging device (8) is provided on the surface of one supporting leg (2), and one side of the supporting legs (2) on both sides is provided with an auxiliary supporting device (5), and the upper ends of the supporting plates (501) in the auxiliary supporting devices (5) are symmetrically fixedly connected with hydraulic cylinders (16) on both sides, the main body of the hydraulic cylinder (16) passes through the groove plate (11), and the upper end of the groove plate (11) is provided with a plurality of knocking devices (9).

2. The energy-saving and environmentally friendly glass processing furnace according to claim 1, characterized in that: The auxiliary support device (5) comprises a support plate (501), a sliding block (502), a round rod (503), a slide rod (504) and a support frame (505); One end of the support frame (505) is fixedly connected to the support leg (2), and the other end of the support frame (505) is fixedly connected to the inner wall of the slide rod (504). The outer wall of the slide rod (504) is slidably connected to the inner walls of the two sliders (502). The outer walls of the two sliders (502) are fixedly connected to round rods (503), and the ends of the round rods (503) on both sides are fixedly connected to the support plate (501).

3. The energy-saving and environmentally friendly glass processing furnace according to claim 1, characterized in that: The telescopic ends of the hydraulic cylinders (16) on both sides are fixedly connected to circular plates (12), the lower ends of the circular plates (12) on both sides are symmetrically fixedly connected to vertical rods (14), and the ends of the vertical rods (14) on both sides are fixedly connected to the groove plate (11).

4. The energy-saving and environmentally friendly glass processing furnace according to claim 1, characterized in that: The striking device (9) comprises a motor (901), a motor bracket (902), a second straight plate (903), a first straight plate (904), a spring (905), a first gear (906), a sliding rod (907), a rack (908), a striking block (909) and a second gear (910); The lower end of the motor bracket (902) is fixedly connected to the groove plate (11); the outer wall of the motor bracket (902) is fixedly connected to the motor (901); the output shaft of the motor (901) is rotatably connected to the motor bracket (902) via a bearing; the output shaft of the motor (901) passes through the motor bracket (902) and is fixedly connected to the second gear (910); the teeth of the second gear (910) are meshed with the tooth grooves of the first gear (906); a protruding portion on one side of the surface of the second gear (910) is rotatably connected to the first straight plate (904) via a bearing; one end of the first straight plate (904) is connected to the groove plate (11). The first gear (906) is fixedly connected to the second straight plates (903) through a bearing, and the lower ends of the second straight plates (903) on both sides are fixedly connected to the groove plate (11). The first gear (906) is meshed with the rack (908), and the protruding part of the rack (908) is sleeved with the outer wall of the slide bar (907). The lower end of the slide bar (907) is fixedly connected to the groove plate (11). The protruding part of the rack (908) and the upper surface of the groove plate (11) are respectively fixedly connected to the two ends of the spring (905), and the upper end of the rack (908) is fixedly connected to a collision block (909).

5. The energy-saving and environmentally friendly glass processing furnace according to claim 1, characterized in that: The surface of the groove plate (11) is provided with a plurality of groups of square holes (15), and both sides of the upper end of the support plate (501) are fixedly connected to one end of a support arm (13), and the other ends of the support arms (13) on both sides are fixedly connected to the lower end of the furnace body (1).

6. The energy-saving and environmentally friendly glass processing furnace according to claim 1, characterized in that: The ends of the supporting legs (2) are fixedly connected to a bottom plate (3), and inclined rods (4) are distributed on both sides of the upper end of the bottom plate (3), and the two sides of the inclined rods (4) are respectively fixedly connected to the supporting legs (2) and the bottom plate (3).

7. The energy-saving and environmentally friendly glass processing furnace according to claim 1, characterized in that: The discharging device (8) comprises a transverse plate (801), a sleeve rod (802), a push block (803) and a cylinder (804); The horizontal plate (801) is fixedly connected to the outer wall of the rear supporting leg (2); a cylinder (804) is fixedly connected to one side of the upper end of the horizontal plate (801); a push block (803) is fixedly connected to the telescopic end of the cylinder (804); the push block (803) is slidably connected to the inner wall slideway of the sleeve rod (802) through a protruding portion of the surface; and one end of the sleeve rod (802) is fixedly connected to the outer wall of the rotating shaft (10) on one side.