Intelligent servo die-casting device for iron pan
By designing an intelligent servo die-casting device in the iron cooker die-casting molding machine, the precise alignment of the convex arc die-casting mold and the concave mold is solved, and the stability of the molding process and the quality of the iron cooker are improved.
Patent Information
- Application Number
- CN202510319851.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2025-05-13
AI Technical Summary
When used in existing iron cooker die-casting molding machines, the thickness of the pot wall of the iron cooker is uneven because the convex arc mold is difficult to accurately align above the concave mold.
An intelligent servo die-casting device for iron pot is designed, through L-shaped wide frame, electric telescopic rod, servo cylinder and other components, the left and right adjustment of the convex arc mold is realized to accurately align it with the concave mold.
Through precisely aligned convex arc die and concave die, the problem of uneven thickness of the iron pot wall is avoided, the stability of the molding process is ensured, the production cycle is shortened, and the mechanical properties and surface quality of the iron pot are improved.
Smart Images

Figure CN119972902A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of iron pot die-casting, and in particular to an iron pot intelligent servo die-casting device. Background Art
[0002] Iron pan die casting is to place the iron blank on the mold and perform cold pressing to form it. Changing the casting iron pan to the servo pressing process is a modern technological improvement. The pressure, speed and position are controlled by a high-precision servo system to achieve efficient and high-quality forming of the iron pan.
[0003] The patent with publication number CN219464735U discloses an iron pot die-casting molding machine, including an ejection mechanism arranged inside the die-casting base, a guide groove is opened on the inner wall of the die-casting base, a lower mold is arranged at the end of the die-casting base, an embedding groove is opened on the surface of the lower mold, an ejection column is plugged into the inside of the die-casting base, a plug-in hole is opened at one end of the ejection column, a side claw is arranged at the other end of the ejection column, and a guide block is arranged on the side of the ejection column. The beneficial effect is that the side claw is driven by the second piston rod to disengage from the inside of the embedding groove, and the iron pot molding is lifted up from the inside of the lower mold. At this time, the ejection column is pushed against the middle part of the bottom of the iron pot molding, and the side claws are supported on the four sides of the bottom of the iron pot molding, so that the support for the iron pot molding is more stable, and the problem that the ejection block can only be pushed against the central position of the bottom of the iron pot molding when ejecting the iron pot molding in the lower mold, resulting in the unstable placement of the iron pot molding on the surface of the ejection block is solved.
[0004] However, the current iron pot die-casting machine has the following problems: when the iron pot die-casting machine is in use, since the convex arc mold is difficult to accurately align above the concave mold during the die-casting process of the iron pot, which leads to the problem of uneven thickness of the pot wall of the iron pot. Therefore, we propose an intelligent servo die-casting device for iron pots. Summary of the invention
[0005] In view of the deficiencies in the prior art, the present invention provides an intelligent servo die-casting device for an iron pan, which solves the problems raised in the above-mentioned background technology.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: an intelligent servo die-casting device for an iron pot, comprising an L-shaped wide frame, a horizontal plate is welded on the top of the left side of the L-shaped wide frame, arc-shaped slide grooves are opened on the front and back sides of the L-shaped wide frame, an infrared laser thermometer is arranged on the right side of the inner wall of the L-shaped wide frame, a T-shaped plate is fixed on the top of the horizontal plate, an electric telescopic rod is hinged on the top of the outer wall of the T-shaped plate, a T-shaped rod is fixed on the side of the telescopic end of the electric telescopic rod away from the T-shaped plate, a circular frame is rotatably installed on the outer wall of the T-shaped rod, a strip plate is fixed on the right side of the circular frame, and a square shaft block is fixed on the bottom of the left side of the strip plate. The rotating shaft of the square shaft block is rotatably connected to the inner wall of the L-shaped wide frame, a servo electric cylinder is fixedly installed on the inner wall of the circular frame, the servo electric cylinder is located on the right side of the T-shaped rod, the servo electric cylinder is fixedly connected to the inner wall of the square shaft block, the left side of the strip plate is fixedly connected to the right side of the servo electric cylinder, a convex plate is fixed on the bottom surface of the telescopic end of the servo electric cylinder, the convex plate is located below the L-shaped wide frame, a cross is fixedly installed on the bottom surface of the convex plate, a convex arc mold is fixed on the bottom surface of the cross, and the telescopic end of the electric telescopic rod is contracted and extended, so that the equipment can fine-tune the convex arc mold left and right when die-casting the iron pot, so that the convex arc mold and the concave mold are accurately aligned.
[0007] According to the above technical solution, a bottom plate is fixed to the bottom surface of the L-shaped wide frame, a concave mold is placed on the right side of the top surface of the bottom plate, and the concave mold is located below the convex arc mold.
[0008] According to the above technical solution, a circular hole is opened on the outer wall of the convex plate, and the cross includes a top plate, a cross recessed frame and a ring plate. The top plate is fixed on the bottom surface of the convex plate, the cross recessed frame is fixed on the bottom surface of the top plate, and the outer wall of the cross recessed frame is embedded with a ring plate.
[0009] According to the above technical solution, a limiting device is provided on the inner wall of the circular hole of the convex disk, and the limiting device is used to limit the downward pressure of the convex arc mold. A demoulding device is provided on the outer wall of the limiting device, and the demoulding device is used to reduce the iron pot from being stuck in the concave mold.
[0010] According to the above technical solution, a cross bar is fixed to the inner wall of the circular hole of the convex disc, a fork frame is rotatably installed on the outer wall of the cross bar, a sliding rod is embedded in the middle of the left side of the fork frame, a cylinder is slidably installed on the outer wall of the sliding rod, a spring is fixed to the right side of the inner wall of the cylinder, the end of the spring away from the cylinder is fixedly connected to the left side of the sliding rod, a hole block is fixed to the left side of the cylinder, a frame rod is rotatably installed on the inner wall of the hole block, and both ends of the frame rod are fixedly connected to the inner wall of the L-shaped wide frame, and under the elastic force of the spring, the force of pressing down the convex disc is limited.
[0011] According to the above technical solution, a square block is fixed in the middle of the outer wall of the cylinder, short rods are fixed on the front and back sides of the square block, and two rubber rollers are rotatably installed on the outer walls of the two short rods respectively. The outer walls of the two rubber rollers are in rolling contact with the inner walls of the two arc-shaped slide grooves of the L-shaped wide frame. The rubber rollers roll downward in the arc-shaped slide grooves of the L-shaped wide frame, and under the action of friction, the jitter of the cylinder during rotation is reduced.
[0012] According to the above technical solution, a U-shaped inclined frame is fixed to the outer wall of the two short rods, a bracket is fixed to the bottom end of the U-shaped inclined frame, an electric spray head is fixedly installed on the inner wall of the bracket, a hose is fixedly installed on the left side of the electric spray head, a liquid storage tank is fixedly installed at the bottom end of the inner part of the L-shaped wide frame, a liquid inlet is opened on the top surface of the liquid storage tank, the hose passes through and is fixed on the top surface of the liquid storage tank, a liquid pump is fixed at one end of the hose away from the electric spray head, and the bottom surface of the liquid pump is fixedly connected to the bottom end of the liquid storage tank, the liquid pump transports the release agent to the hose, the hose transports the release agent to the electric spray head, and the electric spray head sprays the release agent into the concave mold.
[0013] According to the above technical solution, a U-shaped bar frame is rotatably installed at the bottom of the outer wall of the U-shaped inclined frame, and F-shaped plates are fixed to the front and rear inner walls of the U-shaped bar frame. A liquid collecting box is fixed opposite the two F-shaped plates, and the bottom surface of the liquid collecting box is fixedly connected to the bottom end of the U-shaped bar frame. The liquid collecting box is located below the electric spray head. The liquid collecting box rotates to the bottom of the electric spray head to allow the release agent dripped from the electric spray head to enter the liquid collecting box.
[0014] The present invention provides an intelligent servo die-casting device for an iron pot, which has the following beneficial effects: (1) The present invention uses an L-shaped wide frame, a horizontal plate, a T-shaped plate, an electric telescopic rod, a T-shaped rod, a circular frame, a strip plate, a square shaft block, a servo electric cylinder, a convex plate and a cross to cooperate with a convex arc mold. The telescopic end of the electric telescopic rod can be retracted and extended, so that the convex arc mold can be fine-tuned left and right when the equipment is die-casting an iron pot, so that the convex arc mold and the concave mold are accurately aligned, and the uneven thickness of the pot wall of the iron pot caused by the difficulty in accurately aligning the convex arc mold and the concave mold is prevented. The telescopic end of the servo electric cylinder drives the convex plate to move downward, and the convex plate drives the cross to move downward, and the cross drives the convex arc mold to move downward. The convex arc mold presses the iron blank into the concave mold. The servo electric cylinder can accurately control the pressure and speed to ensure the stability of the forming process, so that the production cycle of the iron pot is shortened and it is convenient for large-scale production. At the same time, the servo system can adjust the energy output according to actual needs to reduce energy waste. By accurately controlling the forming process, the mechanical properties and surface quality of the iron pot are improved.
[0015] (2) The present invention sets a limit device so that the cross bar, fork frame, slide bar, cylinder, spring and hole block cooperate with the frame bar, and the slide bar in the cylinder slides downward, and the slide bar pulls the spring. Under the elastic force of the spring, the downward pressure of the convex plate is limited, so that when the cross drives the convex arc mold to move downward, the convex arc mold will not over-extrude the iron blank, thereby preventing the convex arc mold from over-extruding the iron blank and causing the iron pot wall to be thin.
[0016] (3) The present invention sets a limit device so that the square sleeve block and the short rod cooperate with the rubber roller, and the rubber roller rolls downward in the arc-shaped slide groove of the L-shaped wide frame. Under the action of friction, the shaking of the cylinder during rotation is reduced, so that the convex arc mold will not shake and press the iron blank, thereby preventing the convex arc mold from shaking and pressing the iron blank, resulting in poor iron pot forming effect.
[0017] (4) The demoulding device of the present invention is arranged so that the U-shaped inclined frame, the bracket, the electric spray head, the hose and the liquid storage tank cooperate with the liquid pump. The liquid pump extracts the demoulding agent in the liquid storage tank, and the liquid pump transports the demoulding agent to the hose. The hose transports the demoulding agent to the electric spray head, and the electric spray head sprays the demoulding agent into the die. After the pot is taken out, the device can automatically spray the demoulding agent into the die, thereby preventing the need to manually apply the demoulding agent to the die, which causes low efficiency of the die-cast iron pot.
[0018] (5) The demoulding device of the present invention is arranged so that the U-shaped bar frame and the F-shaped plate cooperate with the liquid collecting box, and the liquid collecting box is rotated to the bottom of the electric spray head, so that the demoulding agent dripped from the electric spray head enters the liquid collecting box, thereby preventing the electric spray head from dripping the demoulding agent into the L-shaped wide frame and causing the L-shaped wide frame to be aged and damaged. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 A schematic diagram of the present invention as a whole; Figure 2 It is a schematic diagram of the internal structure of the present invention; Figure 3 It is a cross-sectional schematic diagram of the L-shaped wide frame of the present invention; Figure 4 It is a schematic diagram of the left side of the L-shaped wide frame of the present invention; Figure 5 is a schematic diagram of a limiting device of the present invention; Figure 6 For the present invention Figure 5 A local enlarged schematic diagram of the middle A; Figure 7 It is a schematic diagram of the demoulding device of the present invention; Figure 8 For the present invention Figure 7 A local enlarged schematic diagram of point B in the middle.
[0020] In the figure: 1, L-shaped wide frame; 2, horizontal plate; 3, T-shaped plate; 4, electric telescopic rod; 5, T-shaped rod; 6, circular frame; 7, strip board; 8, square shaft block; 9, servo electric cylinder; 10, convex plate; 11, cross; 12, convex arc mold; 13, limit device; 131, cross bar; 132, fork frame; 133, slide bar; 134, cylinder; 135, spring; 136, hole block; 137, rack rod; 138, square sleeve block; 139, short rod; 1310, rubber roller; 14, demoulding device; 141, U-shaped oblique frame; 142, bracket; 143, electric nozzle; 144, hose; 145, liquid storage tank; 146, liquid pump; 147, U-shaped strip frame; 148, F-shaped plate; 149, liquid collecting box; 15, bottom plate; 16, concave mold. DETAILED DESCRIPTION
[0021] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0022] See also Figure 1-Figure 8One embodiment of the present invention is: an intelligent servo die-casting device for an iron pot, comprising an L-shaped wide frame 1, a horizontal plate 2 is welded on the top of the left side of the L-shaped wide frame 1, arc-shaped slide grooves are opened on the front and back sides of the L-shaped wide frame 1, an infrared laser thermometer is arranged on the right side of the inner wall of the L-shaped wide frame 1, and the infrared laser thermometer detects the real-time temperature in the concave mold 16 before pressing up and down, and then compares it with the reference temperature. If the current temperature is lower than the reference temperature, the press automatically increases the output, otherwise the output is reduced to ensure that the thickness and weight of each finished product are consistent, a T-shaped plate 3 is fixed on the top surface of the horizontal plate 2, an electric telescopic rod 4 is hinged on the top of the outer wall of the T-shaped plate 3, and a T-shaped rod 5 is fixed on the side of the telescopic end of the electric telescopic rod 4 away from the T-shaped plate 3 A circular frame 6 is rotatably installed on the outer wall of the T-shaped rod 5, a strip plate 7 is fixed on the right side of the circular frame 6, a square shaft block 8 is fixed on the bottom of the left side of the strip plate 7, and the rotating shaft of the square shaft block 8 is rotatably connected to the inner wall of the L-shaped wide frame 1. A servo electric cylinder 9 is fixedly installed on the inner wall of the circular frame 6. The servo electric cylinder 9 is located on the right side of the T-shaped rod 5. The servo electric cylinder 9 is fixedly connected to the inner wall of the square shaft block 8. The left side of the strip plate 7 is fixedly connected to the right side of the servo electric cylinder 9. A convex plate 10 is fixed to the bottom surface of the telescopic end of the servo electric cylinder 9. The convex plate 10 is located below the L-shaped wide frame 1. A cross 11 is fixedly installed on the bottom surface of the convex plate 10. A convex arc mold 12 is fixed on the bottom surface of the cross 11. A round hole is opened on the outer wall of the convex plate 10. The cross 11 includes a top plate, A cross concave frame and a ring plate, a top plate is fixed on the bottom surface of the convex plate 10, a cross concave frame is fixed on the bottom surface of the top plate, a ring plate is embedded in the outer wall of the cross concave frame, a bottom plate 15 is fixed on the bottom surface of the L-shaped wide frame 1, a concave die 16 is placed on the right side of the top surface of the bottom plate 15, and the concave die 16 is located below the convex arc die 12. The telescopic end of the electric telescopic rod 4 is contracted and extended, so that the square shaft block 8 drives the servo electric cylinder 9 to rotate left and right, the telescopic end of the servo electric cylinder 9 drives the convex plate 10 to rotate left and right, the convex plate 10 drives the cross 11 to rotate left and right, and the cross 11 drives the convex arc die 12 to rotate left and right, so that when the equipment is die-casting an iron pot, the convex arc die 12 can be fine-tuned left and right, so that the convex arc die 12 is accurately aligned with the concave die 16, avoiding smart When the servo die-casting device is die-casting an iron pot, it is difficult to accurately align the convex arc mold 12 with the concave mold 16, resulting in uneven thickness of the pot wall of the iron pot. The telescopic end of the servo electric cylinder 9 drives the convex plate 10 to move downward, the convex plate 10 drives the cross 11 to move downward, and the cross 11 drives the convex arc mold 12 to move downward. The convex arc mold 12 presses the iron blank into the concave mold 16, so that the iron blank forms a pot body. The servo electric cylinder 9 can accurately control the pressure and speed to ensure the stability of the forming process, shorten the production cycle of the iron pot, and facilitate large-scale production. At the same time, the servo system can adjust the energy output according to actual needs, reduce energy waste, and improve the mechanical properties and surface quality of the iron pot by accurately controlling the forming process. A limiting device 13 is provided on the inner wall of the circular hole of the convex disc 10 , and the limiting device 13 is used to limit the downward pressure of the convex arc mold 12 . A demoulding device 14 is provided on the outer wall of the limiting device 13 , and the demoulding device 14 is used to reduce the iron pot from being stuck in the concave mold 16 .
[0023] Since it is difficult for the convex arc mold 12 to be accurately aligned above the concave mold 16 during the die-casting process of the iron pot, when in use, the operator places the concave mold 16 on the bottom plate 15, and then places the iron blank on the concave mold 16, the L-shaped wide frame 1 supports the horizontal plate 2, the horizontal plate 2 supports the T-shaped plate 3, the operator starts the electric telescopic rod 4 on the T-shaped plate 3, the telescopic end of the electric telescopic rod 4 begins to shrink, and at the same time, the telescopic end of the electric telescopic rod 4 drives the T-shaped rod 5 to move to the left, the T-shaped rod 5 drives the circular frame 6 to move to the left, the circular frame 6 drives the strip plate 7 to move to the left, the strip plate 7 drives the square shaft block 8 to move to the left, and the square shaft block 8 Restricted by the L-shaped wide frame 1, the electric telescopic rod 4 rotates left on the T-shaped plate 3, the circular frame 6 rotates left on the T-shaped rod 5, and the square shaft block 8 rotates left in the L-shaped wide frame 1. The square shaft block 8 drives the servo electric cylinder 9 to rotate left, and the telescopic end of the servo electric cylinder 9 drives the convex plate 10 to rotate left, and the convex plate 10 drives the cross 11 to rotate left, and the cross 11 drives the convex arc mold 12 to rotate left. When the telescopic end of the electric telescopic rod 4 begins to extend, the cross 11 drives the convex arc mold 12 to rotate right, so that when the equipment is die-casting the iron pot, the convex arc mold 12 can be fine-tuned left and right to make the convex arc The die 12 is precisely aligned with the die 16 to prevent the convex arc die 12 and the concave die 16 from being difficult to align accurately when the equipment is in use, thereby avoiding the problem of uneven thickness of the pot wall of the iron pot caused by the convex arc die 12 and the concave die 16 being difficult to align accurately when the intelligent servo die-casting device is die-casting the iron pot. When the convex arc die 12 is aligned with the concave die 16, the operator starts the servo electric cylinder 9, and the telescopic end of the servo electric cylinder 9 moves downward, the telescopic end of the servo electric cylinder 9 drives the convex plate 10 to move downward, the convex plate 10 drives the cross 11 to move downward, the cross 11 drives the convex arc die 12 to move downward, and the convex arc die 12 presses the iron blank The iron blank is put into the die 16 to form the pot body. The servo electric cylinder 9 can accurately control the pressure and speed to ensure the stability of the forming process, shorten the production cycle of the iron pot, and facilitate large-scale production. At the same time, the servo system can adjust the energy output according to actual needs to reduce energy waste. By accurately controlling the forming process, the mechanical properties and surface quality of the iron pot are improved. Before pressing up and down, the infrared laser thermometer detects the real-time temperature in the die 16, and then compares it with the reference temperature. If the current temperature is lower than the reference temperature, the press automatically increases the output, otherwise the output is reduced to ensure that the thickness and weight of the finished product are consistent each time.
[0024] See also Figure 1-Figure 8On the basis of the above embodiment, in another embodiment of the present invention, a cross bar 131 is fixed to the inner wall of the circular hole of the convex disc 10, a fork frame 132 is rotatably mounted on the outer wall of the cross bar 131, a slide bar 133 is embedded in the middle of the left side of the fork frame 132, a cylinder 134 is slidably mounted on the outer wall of the slide bar 133, a spring 135 is fixed to the right side of the inner wall of the cylinder 134, one end of the spring 135 away from the cylinder 134 is fixedly connected to the left side of the slide bar 133, a hole block 136 is fixed to the left side of the cylinder 134, and the inner wall of the hole block 136 is rotatably mounted. A frame rod 137 is dynamically installed, and both ends of the frame rod 137 are fixedly connected to the inner wall of the L-shaped wide frame 1. The slide rod 133 in the cylinder 134 slides downward, and the slide rod 133 pulls the spring 135. Under the elastic force of the spring 135, the downward pressure of the convex plate 10 is limited, so that when the cross 11 drives the convex arc mold 12 to move downward, the convex arc mold 12 will not over-extrude the iron blank, thereby avoiding the convex arc mold 12 over-extruding the iron blank when the intelligent servo die-casting device is die-casting the iron pot, resulting in a thinner iron pot wall.
[0025] A square block 138 is fixed in the middle of the outer wall of the cylinder 134, and short rods 139 are fixed on the front and back sides of the square block 138. Two rubber rollers 1310 are rotatably installed on the outer walls of the two short rods 139 respectively. The outer walls of the two rubber rollers 1310 are in rolling contact with the inner walls of the two arc-shaped slide grooves of the L-shaped wide frame 1. The rubber rollers 1310 roll downward in the arc-shaped slide grooves of the L-shaped wide frame 1. Under the action of friction, the shaking of the cylinder 134 during rotation is reduced, so that the convex arc mold 12 will not shake and press the iron blank, thereby avoiding the poor forming effect of the iron pot caused by the convex arc mold 12 shaking and pressing the iron blank when the intelligent servo die-casting device is die-casting the iron pot.
[0026] A U-shaped oblique frame 141 is fixed to the outer wall of the two short rods 139, a bracket 142 is fixed to the bottom end of the U-shaped oblique frame 141, an electric spray head 143 is fixedly installed on the inner wall of the bracket 142, a hose 144 is fixedly installed on the left side of the electric spray head 143, a liquid storage tank 145 is fixedly installed at the bottom end of the L-shaped wide frame 1, a liquid inlet is opened on the top surface of the liquid storage tank 145, the hose 144 passes through and is fixed to the top surface of the liquid storage tank 145, and a liquid pump 146 is fixed to the end of the hose 144 away from the electric spray head 143. The bottom surface of the liquid pump 146 is fixedly connected to the bottom end of the liquid storage tank 145. The liquid pump 146 extracts the release agent in the liquid storage tank 145, and the liquid pump 146 transports the release agent to the hose 144. The hose 144 transports the release agent to the electric nozzle 143, and the electric nozzle 143 sprays the release agent into the die 16, so that the equipment can automatically spray the release agent into the die 16 after taking the pot, avoiding the need for the intelligent servo die-casting device to manually apply the release agent in the die 16 when die-casting the iron pot, resulting in low efficiency of die-casting the iron pot.
[0027] A U-shaped bar frame 147 is rotatably installed at the bottom of the outer wall of the U-shaped inclined frame 141, and F-shaped plates 148 are fixed on the front and back of the inner walls of the U-shaped bar frame 147. A liquid collecting box 149 is fixed opposite the two F-shaped plates 148. The bottom surface of the liquid collecting box 149 is fixedly connected to the bottom end of the U-shaped bar frame 147. The liquid collecting box 149 is located below the electric nozzle 143. The liquid collecting box 149 rotates to the bottom of the electric nozzle 143 to allow the release agent dripped from the electric nozzle 143 to enter the liquid collecting box 149, so as to prevent the electric nozzle 143 from dripping the release agent into the L-shaped wide frame 1 when the intelligent servo die-casting device is die-casting an iron pot, causing aging and damage to the L-shaped wide frame 1.
[0028] While the telescopic end of the servo electric cylinder 9 drives the convex plate 10 to move downward, the convex plate 10 drives the cross bar 131 to move downward, the fork frame 132 is restricted by the slide bar 133, the fork frame 132 rotates rightward on the cross bar 131, and the fork frame 132 drives the slide bar 133 to move downward. At the same time, the slide bar 133 slides in the cylinder 134, the hole block 136 is restricted by the frame rod 137, the hole block 136 rotates downward on the frame rod 137, and the hole block 136 drives the cylinder 134 to rotate downward The slide bar 133 in the cylinder 134 slides downward, and the slide bar 133 pulls the spring 135. Under the elastic force of the spring 135, the downward pressure of the convex plate 10 is limited, so that when the cross 11 drives the convex arc mold 12 to move downward, the convex arc mold 12 will not over-extrude the iron blank, thereby preventing the convex arc mold 12 from over-extending the iron blank when the equipment is in use, thereby avoiding the problem of the convex arc mold 12 over-extruding the iron blank when the intelligent servo die-casting device is die-casting the iron pot, causing the iron pot wall to be thin.
[0029] While the hole block 136 drives the cylinder 134 to rotate downward, the cylinder 134 drives the square sleeve block 138 to rotate downward, the square sleeve block 138 drives the short rod 139 to rotate downward, the short rod 139 drives the rubber roller 1310 to rotate downward, and the rubber roller 1310 rolls downward in the arc-shaped slide groove of the L-shaped wide frame 1. Under the action of friction, the shaking of the cylinder 134 during rotation is reduced, so that the convex arc mold 12 will not shake and press the iron blank, thereby preventing the convex arc mold 12 from shaking and pressing the iron blank when the equipment is in use, thereby avoiding the problem of poor iron pot forming effect caused by the convex arc mold 12 shaking and pressing the iron blank when the intelligent servo die-casting device is die-casting an iron pot.
[0030] While the square sleeve block 138 drives the short rod 139 to rotate downward, the short rod 139 drives the U-shaped inclined frame 141 to rotate downward, the U-shaped inclined frame 141 drives the bracket 142 to rotate downward, and the bracket 142 drives the electric spray head 143 to rotate downward. When the die casting is completed, the telescopic end of the servo electric cylinder 9 is reset, the short rod 139 drives the U-shaped inclined frame 141 to rotate upward, the U-shaped inclined frame 141 drives the bracket 142 to rotate upward, and the bracket 142 drives the electric spray head 143 to rotate upward. The operator takes out the iron pot from the die 16, and at the same time, the operator starts the liquid storage tank 14 5, the liquid pump 146 extracts the release agent in the liquid storage tank 145, the liquid pump 146 transports the release agent to the hose 144, the hose 144 transports the release agent to the electric nozzle 143, the electric nozzle 143 sprays the release agent into the die 16, so that the device can automatically spray the release agent into the die 16 after taking the pot, preventing the need to manually apply the release agent to the die 16 when the device is in use, thereby avoiding the problem of low efficiency of die-casting iron pots caused by the need to manually apply the release agent to the die 16 when the intelligent servo die-casting device is die-casting the iron pot.
[0031] While the short rod 139 drives the U-shaped inclined frame 141 to rotate downward, the U-shaped inclined frame 141 drives the U-shaped bar frame 147 to rotate downward, and under the action of gravity, the U-shaped bar frame 147 rotates right on the U-shaped inclined frame 141, and the U-shaped bar frame 147 drives the F-shaped plate 148 to rotate right, and the F-shaped plate 148 drives the liquid collecting box 149 to rotate right, and the liquid collecting box 149 rotates to the bottom of the electric nozzle 143, allowing the release agent dripped from the electric nozzle 143 to enter the liquid collecting box 149, preventing the electric nozzle 143 from dripping the release agent into the L-shaped wide frame 1 when the equipment is in use, thereby avoiding the problem of the electric nozzle 143 dripping the release agent into the L-shaped wide frame 1 when the intelligent servo die-casting device is die-casting an iron pot, causing the L-shaped wide frame 1 to age and be damaged.
[0032] The above description is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical scheme and inventive concept of the present invention within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.
Claims
1. An intelligent servo die-casting device for an iron pot, comprising an L-shaped wide frame (1), a horizontal plate (2) being welded to the top of the left side of the L-shaped wide frame (1), characterized in that: The front and back sides of the L-shaped wide frame (1) are provided with arc-shaped sliding grooves, a T-shaped plate (3) is fixed on the top surface of the horizontal plate (2), an electric telescopic rod (4) is hingedly connected to the top of the outer wall of the T-shaped plate (3), a T-shaped rod (5) is fixed on the side of the telescopic end of the electric telescopic rod (4) away from the T-shaped plate (3), a circular frame (6) is rotatably mounted on the outer wall of the T-shaped rod (5), a strip plate (7) is fixed on the right side of the circular frame (6), a square shaft block (8) is fixed on the left bottom of the strip plate (7), and the rotating shaft of the square shaft block (8) is rotatably connected to the inner wall of the L-shaped wide frame (1). A servo electric cylinder (9) is fixedly mounted on the inner wall of the circular frame (6), the servo electric cylinder (9) is located on the right side of the T-shaped rod (5), the servo electric cylinder (9) is fixedly connected to the inner wall of the square shaft block (8), the left side of the strip plate (7) is fixedly connected to the right side of the servo electric cylinder (9), a convex plate (10) is fixedly mounted on the bottom surface of the telescopic end of the servo electric cylinder (9), the convex plate (10) is located below the L-shaped wide frame (1), a cross (11) is fixedly mounted on the bottom surface of the convex plate (10), and a convex arc mold (12) is fixedly mounted on the bottom surface of the cross (11).
2. The intelligent servo die-casting device for an iron pot according to claim 1, characterized in that: A bottom plate (15) is fixed to the bottom surface of the L-shaped wide frame (1), a concave mold (16) is placed on the right side of the top surface of the bottom plate (15), and the concave mold (16) is located below the convex arc mold (12).
3. The intelligent servo die-casting device for an iron pot according to claim 2, characterized in that: The outer wall of the convex plate (10) is provided with a circular hole. The cross (11) comprises a top plate, a cross recessed frame and a ring plate. The top plate is fixed to the bottom surface of the convex plate (10), the cross recessed frame is fixed to the bottom surface of the top plate, and the outer wall of the cross recessed frame is embedded with a ring plate.
4. The intelligent servo die-casting device for an iron pot according to claim 3, characterized in that: A limiting device (13) is provided on the inner wall of the circular hole of the convex plate (10), the limiting device (13) being used to limit the downward pressure of the convex arc mold (12), and a demoulding device (14) is provided on the outer wall of the limiting device (13), the demoulding device (14) being used to reduce the possibility of the iron pot being stuck in the concave mold (16).
5. The intelligent servo die-casting device for an iron pan according to claim 4, characterized in that: A cross bar (131) is fixed to the inner wall of the circular hole of the convex plate (10); a fork frame (132) is rotatably mounted on the outer wall of the cross bar (131); a sliding bar (133) is embedded in the middle of the left side of the fork frame (132); a cylinder (134) is slidably mounted on the outer wall of the sliding bar (133); a spring (135) is fixed to the right side of the inner wall of the cylinder (134); one end of the spring (135) away from the cylinder (134) is fixedly connected to the left side of the sliding bar (133); a hole block (136) is fixed to the left side of the cylinder (134); a frame rod (137) is rotatably mounted on the inner wall of the hole block (136); and both ends of the frame rod (137) are fixedly connected to the inner wall of the L-shaped wide frame (1).
6. The intelligent servo die-casting device for an iron pan according to claim 5, characterized in that: A square sleeve (138) is fixed in the middle of the outer wall of the cylinder (134), short rods (139) are fixed on the front and back sides of the square sleeve (138), and two rubber rollers (1310) are rotatably mounted on the outer walls of the two short rods (139), and the outer walls of the two rubber rollers (1310) are in rolling contact with the inner walls of the two arc-shaped slide grooves of the L-shaped wide frame (1).
7. The intelligent servo die-casting device for an iron pot according to claim 6, characterized in that: A U-shaped oblique frame (141) is fixed to the outer wall of the two short rods (139), a bracket (142) is fixed to the bottom end of the U-shaped oblique frame (141), an electric spray head (143) is fixedly mounted on the inner wall of the bracket (142), a hose (144) is fixedly mounted on the left side of the electric spray head (143), a liquid storage tank (145) is fixedly mounted on the bottom end of the inner side of the L-shaped wide frame (1), a liquid inlet is provided on the top surface of the liquid storage tank (145), the hose (144) passes through and is fixed to the top surface of the liquid storage tank (145), a liquid pump (146) is fixed to one end of the hose (144) away from the electric spray head (143), and the bottom surface of the liquid pump (146) is fixedly connected to the bottom end of the inner side of the liquid storage tank (145).
8. The intelligent servo die-casting device for an iron pan according to claim 7, characterized in that: A U-shaped bar frame (147) is rotatably mounted on the bottom of the outer wall of the U-shaped inclined frame (141); F-shaped plates (148) are fixed to the front and rear inner walls of the U-shaped bar frame (147); a liquid collecting box (149) is fixed directly opposite the two F-shaped plates (148); the bottom surface of the liquid collecting box (149) is fixedly connected to the bottom end of the U-shaped bar frame (147); and the liquid collecting box (149) is located below the electric spray head (143).
Citation Information
Patent Citations
Iron pan die-casting forming machine
CN219464735U