Metal casting pouring equipment
By designing a metal casting casting equipment with guide rails, molten iron parts and transmission parts, the problem of inefficiency of traditional equipment when pouring multiple molds continuously is solved, and the smooth flow of liquid and isolation of impurities is ensured through the design of the flow guide groove body and the flow guide cone, which improves the safety and reliability of the equipment.
Patent Information
- Application Number
- CN202510171282.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2025-05-13
AI Technical Summary
Traditional casting and casting equipment is inefficient when pouring multiple molds continuously, and requires precise control of the inclination angle of the molten iron bag to avoid excessive molten iron flowing out, affecting safety and reliability.
A metal casting casting equipment is designed, including guide rails, molten iron parts and transmission parts. The driven wheel and support shaft are driven by the driving motor, so that the flow guide groove body and the flow guide cone can rotate clockwise and counterclockwise, realize the inclination of the transmission parts, and ensure the smooth flow of liquid and the isolation of impurities through the flow guide plate and the isolation plate.
Continuous casting of several casting molds on the top of the two groups of transmission components is realized, which improves the casting efficiency, avoids the problem of excessive molten outflow, enhances safety and reliability, and effectively removes impurities in the casting structure.
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Figure CN119973086A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of metal casting and pouring, in particular to a metal casting and pouring equipment. Background Art
[0002] In the traditional casting process, the ladle is the key pouring tool. In the foundry, the ladle is hoisted by a crane to the bottom of the furnace to receive the molten iron, and then transported to the casting position for pouring. The ladle has a two-way rotation function. When operated, it is tilted at a certain angle so that the molten iron flows into the mold cavity through the pouring gate. After the pouring is completed, the molten iron overflows from the mold cap, indicating that the pouring operation is completed. Usually, this process relies on manually operating a hand wheel or using power equipment to control the tilt of the ladle.
[0003] However, this traditional tilting ladle has the problem of low efficiency when pouring multiple molds continuously because the pouring interval between molds is long. In addition, the tilt angle of the ladle needs to be precisely controlled during operation to prevent excessive molten iron from flowing out and posing a threat to the mold and personnel safety. Therefore, the current pouring method needs to be improved in terms of safety and reliability. Summary of the invention
[0004] The present invention provides a metal casting pouring equipment, which solves the problems raised by the above background technology.
[0005] The present invention provides the following technical solution: a metal casting pouring equipment, comprising a guide rail, a ladle component is arranged on the top of the guide rail, two groups of transmission components are arranged on the bottom of the guide rail, and auxiliary pouring equipment is fixedly installed on the inner walls of the opposite sides of the two groups of transmission components.
[0006] As a preferred technical solution of the present invention: the ladle component includes a ladle body, the top inner cavity of the ladle body is provided with a molten iron containing bin, the top outer wall of the ladle body is fixedly equipped with a fixed swivel, both sides of the fixed swivel are rotatably connected with vertical plates, the outer walls of two groups of the vertical plates are fixedly equipped with fixed plates, the outer walls of both sides of the two groups of the vertical plates are fixedly equipped with limited slides, the outer wall of one end of the fixed swivel is fixedly equipped with a driven wheel 1, the inner wall of one group of the vertical plates is fixedly equipped with a driving motor 1, the outer wall of the output shaft of the driving motor 1 is fixedly equipped with a driving wheel 1, and the driving wheel 1 and the driven wheel 1 are meshed with each other.
[0007] As a preferred technical solution of the present invention: the transmission component includes a supporting body, and a top inner wall of the supporting body is rotatably connected to a plurality of rollers.
[0008] As a preferred technical solution of the present invention: the inner wall of the supporting body is also inlaid with a driving motor connected to the roller drive.
[0009] As a preferred technical solution of the present invention: the auxiliary pouring equipment includes a stand, the inner wall of the stand is fixedly equipped with two driving motors, the outer wall of the output shaft of the two driving motors is fixedly equipped with two driving wheels, the top inner wall of the stand is rotatably connected with a support shaft, one end of the support shaft is fixedly equipped with two driven wheels, the other end of the support shaft is fixedly equipped with a guide trough body, the side of the stand close to the guide trough body is fixedly equipped with a fixing rod, the end of the fixing rod away from the stand is fixedly equipped with an engaging ring, and the bottom of both sides of the guide trough body are fixedly equipped with guide cones.
[0010] As a preferred technical solution of the present invention: the outer wall of the guide trough body away from the driven wheel two is fixedly equipped with a mounting plate, the top of the mounting plate is fixedly equipped with a guide plate, the outer wall of the meshing ring is slidably sleeved with a limiting sleeve, the inner wall of the limiting sleeve is threadedly connected to a limiting bolt, the top of both sides of the guide trough body are provided with a slot, the inner wall of the slot is rotatably connected with a shaft body, the end of the shaft body close to the meshing ring is fixedly equipped with the driven wheel three, the top of the guide trough body is rotatably connected with a pressure plate, and the bottom outer wall of the shaft body is fixedly equipped with an isolation plate.
[0011] As a preferred technical solution of the present invention: driving wheel two and driven wheel two are meshed, the two sides of the meshing ring are respectively meshed with two groups of driven wheels three, the isolation plate is located on the inner wall of the guide groove body, the two groups of guide cones are connected through the inner cavity of the guide groove body, the limit sleeve is fixed by abutting against the outer wall of the meshing ring through a limit bolt, and the pressure plate is located at the top of the slot.
[0012] As a preferred technical solution of the present invention: the driving motor 2 drives the support shaft to rotate at an angle of ±15 degrees through the engagement of the driving wheel 2 and the driven wheel 2, and the straight-line distance between the liquid discharge point where the guide cone rotates +15 degrees with the support shaft as the axis and the liquid discharge point where the guide cone rotates -15 degrees with the support shaft as the axis is X, and X is smaller than the inner wall diameter of the pouring port;
[0013] The auxiliary pouring equipment is fixedly assembled through the stand and the outer wall between the two groups of transmission components.
[0014] The present invention has the following beneficial effects:
[0015] 1. The metal casting pouring equipment, driving motor 2 drives driven wheel 2 through driving wheel 2, so that driven wheel 2 drives guide trough body to rotate clockwise through supporting shaft, so that guide trough body drives guide cone and guide plate to realize tilting toward first group of transmission components; through pouring port corresponding to one group of guide cones tilted, the casting mold on the top of the first group of transmission components is realized to realize pouring, after the casting mold on the top of the first group of transmission components is poured, the guide trough body drives guide cone and guide plate to realize tilting toward second group of transmission components; at this time, the second group of transmission components drives casting mold, so that pouring port corresponds to one group of guide cones tilted; at the same time, the first group of transmission components drives another casting mold, so that the pouring port on the top of the casting mold moves to a predetermined position, and repeatedly realizes continuous pouring of several casting molds on the top of two groups of transmission components, thereby solving the problem of low efficiency in continuous pouring of multiple molds due to long pouring interval between molds.
[0016] 2. In the metal casting pouring equipment, when the guide trough body is tilted, the shaft body meshes with the meshing ring through the driven wheel three, and the meshing ring is fixed by the fixing rod and the stand, so that the shaft body drives the isolation plate to rotate, thereby causing a gap to appear between the bottom of the isolation plate and the guide trough body. When the liquid flows to the guide cone on the inclined side of the inner cavity of the guide trough body, the liquid flows through the gap between the bottom of the isolation plate and the guide trough body, thereby causing the bottom of the isolation plate to isolate impurities on the top surface of the liquid, so that the liquid without impurities is discharged into the inner cavity of the casting mold through the guide cone, thereby solving the problem of a large amount of impurities in the casting structure during pouring of traditional equipment.
[0017] 3. The metal casting pouring equipment receives the liquid through the guide plate, and makes the liquid guided by the top inner wall of the guide plate flow to one side of the guide groove body in the inclined direction, and is guided through the guide groove body to a group of inclined guide cones, and then discharged to the inner cavity of the pouring port through the guide cone to realize the pouring of the casting mold; it avoids the problem that the molten iron directly contacts the pouring port from a high place, resulting in excessive impact force of the molten iron. On the other hand, the temporary collection of the molten iron by the guide groove body solves the problem in the traditional method that the tilt angle of the molten iron ladle needs to be precisely controlled to prevent excessive outflow of molten iron and avoid posing a threat to the mold and personnel safety. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0019] Figure 2 This is a schematic diagram of the structure of the ladle components of the present invention;
[0020] Figure 3 It is a schematic diagram of the structure of the transmission component of the present invention;
[0021] Figure 4 This is a schematic diagram of the mounting plate structure of the present invention;
[0022] Figure 5 This is a schematic diagram of the guide plate structure of the present invention;
[0023] Figure 6 This is a schematic diagram of the third structure of the driven wheel of the present invention;
[0024] Figure 7 It is a schematic diagram of the structure of the pressing plate of the present invention;
[0025] Figure 8 It is a schematic diagram of the inclined state of the isolation plate of the present invention.
[0026] In the figure: 1. Guide rail; 2. Ladle parts; 3. Transmission parts; 4. Casting mold; 5. Pouring nozzle; 6. Auxiliary pouring equipment;
[0027] 201, molten iron ladle body; 202, molten iron ladle storage bin; 203, fixed swivel; 204, vertical plate; 205, fixed plate; 206, limit slide; 207, driven wheel 1; 208, driving motor 1; 209, driving wheel 1;
[0028] 301, supporting body; 302, rotating roller;
[0029] 601, stand; 602, driving motor 2; 603, driving wheel 2; 604, driven wheel 2; 605, supporting shaft; 606, fixing rod; 607, engaging ring; 608, guide trough body; 609, guide cone; 610, mounting plate; 611, guide plate; 612, limiting sleeve; 613, limiting bolt; 614, slot; 615, shaft body; 616, driven wheel 3; 617, pressure plate; 618, isolation plate. DETAILED DESCRIPTION
[0030] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0031] See also Figure 1-Figure 8 A metal casting pouring equipment comprises a guide rail 1, a ladle component 2 is arranged on the top of the guide rail 1, two groups of transmission components 3 are arranged on the bottom of the guide rail 1, and auxiliary pouring equipment 6 is fixedly installed on the inner walls of the opposite sides of the two groups of transmission components 3.
[0032] A casting mold 4 is disposed on the top of the transmission component 3 , and the top of the casting mold 4 also includes a pouring port 5 for pouring.
[0033] In a preferred embodiment: the ladle component 2 includes a ladle body 201, the top inner cavity of the ladle body 201 is provided with a molten iron containing chamber 202, the top outer wall of the ladle body 201 is fixedly equipped with a fixed swivel 203, both sides of the fixed swivel 203 are rotatably connected with vertical plates 204, the outer walls of the two groups of vertical plates 204 are fixedly equipped with fixed plates 205, the outer walls of both sides of the two groups of vertical plates 204 are fixedly equipped with limited slides 206, the outer wall of one end of the fixed swivel 203 is fixedly equipped with a driven wheel 207, the inner wall of one group of vertical plates 204 is fixedly equipped with a driving motor 208, the outer wall of the output shaft of the driving motor 208 is fixedly equipped with a driving wheel 209, and the driving wheel 209 and the driven wheel 207 are meshed.
[0034] In the above structure, the inner cavity of the limit slide 206 also includes a driving component, and the limit slide 206 is driven and connected to the guide rail 1 through the driving component, so that the ladle component 2 can move along the guide rail 1 through the limit slide 206 and the driving component;
[0035] It can be understood that the driving component for the ladle component 2 to move on the outer wall of the guide rail 1 can use other existing structures;
[0036] For example, the limit slide 206 and the guide rail 1 are slidably sleeved, the outer wall of the guide rail 1 is provided with a tooth groove, the inner cavity of the limit slide 206 is provided with a driving motor meshing with the tooth groove, and the output shaft of the driving motor is provided with a gear meshing with the tooth groove;
[0037] The driving motor drives the gears, and the gears and tooth grooves are meshed to move the limit slide 206 located on the outer wall of the guide rail 1;
[0038] The ladle component 2 is reciprocated along the guide rail 1, so that the ladle component 2 can be moved to the bottom of the furnace to receive the molten iron, and then directly moved to the position of the pouring port 5 for pouring;
[0039] The driving motor 208 drives the driven wheel 207 through the driving wheel 209, and the driven wheel 207 drives the fixed rotating ring 203, so that the fixed rotating ring 203 drives the molten iron ladle body 201 to rotate, and then the liquid located in the inner cavity of the molten iron ladle bin 202 is discharged through the inclined top pouring port of the molten iron ladle body 201.
[0040] In a preferred embodiment, the transmission component 3 includes a supporting body 301 , and a plurality of rollers 302 are rotatably connected to the top inner wall of the supporting body 301 .
[0041] In a preferred embodiment, the inner wall of the supporting body 301 is also inlaid with a driving motor that is drivingly connected to the rotating roller 302 .
[0042] In the above structure, the rollers 302 are driven by a driving motor, so that the casting mold 4 located on the top of the plurality of rollers 302 is moved by the plurality of rotating rollers 302 .
[0043] In a preferred embodiment: the auxiliary pouring equipment 6 includes a stand 601, the inner wall of the stand 601 is fixedly equipped with a driving motor 2 602, the outer wall of the output shaft of the driving motor 2 602 is fixedly equipped with a driving wheel 2 603, the top inner wall of the stand 601 is rotatably connected with a support shaft 605, one end of the support shaft 605 is fixedly equipped with a driven wheel 2 604, the other end of the support shaft 605 is fixedly equipped with a guide trough body 608, a fixing rod 606 is fixedly equipped on one side of the stand 601 close to the guide trough body 608, an engaging ring 607 is fixedly equipped on the end of the fixing rod 606 away from the stand 601, and guide cones 609 are fixedly equipped on the bottom of both sides of the guide trough body 608.
[0044] In a preferred embodiment: the outer wall of the guide trough body 608 away from the driven wheel two 604 is fixedly equipped with a mounting plate 610, the top of the mounting plate 610 is fixedly equipped with a guide plate 611, the outer wall of the meshing ring 607 is slidably sleeved with a limiting sleeve 612, the inner wall of the limiting sleeve 612 is threadedly connected to a limiting bolt 613, the top of both sides of the guide trough body 608 are provided with a slot 614, the inner wall of the slot 614 is rotatably connected with a shaft body 615, the end of the shaft body 615 close to the meshing ring 607 is fixedly equipped with a driven wheel three 616, the top of the guide trough body 608 is rotatably connected with a pressure plate 617, and the bottom outer wall of the shaft body 615 is fixedly equipped with an isolation plate 618.
[0045] In the above structure, the pressing plate 617 is made of high-density metal, such as platinum or tungsten, and the shaft 615 located on the inner wall of the slot 614 is limited by the high-density pressing plate 617, so that the shaft 615 will not be separated from the slot 614 during the operation of the device;
[0046] By rotating the pressure plate 617 and the guide groove body 608, when a large amount of molten iron is adhered to the bottom of the isolation plate 618, the pressure plate 617 can be rotated to remove the shaft body 615 from the slot 614, thereby realizing the replacement and cleaning operation of the isolation plate 618.
[0047] In a preferred embodiment: driving wheel 2 603 is meshed with driven wheel 2 604, both sides of the meshing ring 607 are respectively meshed with two groups of driven wheels 3 616, the isolation plate 618 is located on the inner wall of the guide groove body 608, the two groups of guide cones 609 are connected through the inner cavity of the guide groove body 608, the limit sleeve 612 is fixed by abutting against the outer wall of the meshing ring 607 through the limit bolt 613, and the pressure plate 617 is located at the top of the slot 614.
[0048] In the above structure, the limiting bolt 613 is threadedly connected to the inner wall of the limiting sleeve 612, and the limiting bolt 613 is abutted against the meshing ring 607 to fix the limiting sleeve 612 and the meshing ring 607. By adjusting the position of the limiting sleeve 612 on the meshing ring 607, when the guide groove body 608 rotates around the support shaft 605 as the axis, the limiting sleeve 612 can limit the driven wheel three 616, thereby limiting the rotation of the guide groove body 608, so as to avoid damage to the driving motor two 602, which would cause the guide groove body 608 to rotate too much and cause liquid splashing.
[0049] In a preferred embodiment: the driving motor 2 602 drives the support shaft 605 to rotate at an angle of ±15 degrees through the engagement of the driving wheel 2 603 and the driven wheel 2 604, and the straight-line distance between the liquid discharge point where the guide cone 609 rotates +15 degrees with the support shaft 605 as the axis and the liquid discharge point where the guide cone 609 rotates -15 degrees with the support shaft 605 as the axis is X, and X is smaller than the inner wall diameter of the pouring port 5;
[0050] The auxiliary pouring equipment 6 is fixedly assembled with the stand 601 and the outer wall between the two groups of transmission components 3 .
[0051] The straight line distance between the liquid discharge point where the guide cone 609 rotates +15 degrees with the support shaft 605 as the axis and the liquid discharge point where the guide cone 609 rotates -15 degrees with the support shaft 605 as the axis is X, and X is smaller than the inner wall diameter of the pouring port 5, so that when the guide cone 609 rotates ±15 degrees with the support shaft 605 as the axis, the downward flow path of the liquid discharged from the guide cone 609 is still maintained in the inner wall of the pouring port 5;
[0052] Two groups of transmission components 3 are arranged in parallel, and a plurality of casting molds 4 are respectively arranged on the top of the two groups of transmission components 3;
[0053] In the above structure, the second driving motor 602 drives the second driven wheel 604 through the second driving wheel 603, so that the second driven wheel 604 drives the guide groove body 608 to rotate clockwise and counterclockwise through the support shaft 605, so that the guide groove body 608 drives the guide cone 609 and the guide plate 611 to tilt toward the first group of transmission components 3;
[0054] By setting the guide plate 611, when the iron ladle component 2 moves along the guide rail 1 to the top of the guide plate 611, the driven motor 208 drives the driven wheel 207 through the driving wheel 209, and the driven wheel 207 drives the fixed rotating ring 203, so that the fixed rotating ring 203 drives the iron ladle body 201 to rotate, and then the liquid located in the inner cavity of the iron ladle storage bin 202 is discharged through the inclined top pouring port of the iron ladle body 201, so that the liquid located in the inner cavity of the iron ladle storage bin 202 is discharged to the top of the guide plate 611;
[0055] At this time, the first group of transmission components 3 drives the casting mold 4 so that the pouring port 5 corresponds to the inclined group of guide cones 609;
[0056] The guide plate 611 is driven to rotate with the support shaft 605 by the guide groove body 608, so that the guide plate 611 is in an inclined state, so that the liquid guided by the top inner wall of the guide plate 611 flows to the side of the guide groove body 608 in the inclined direction, and is guided to the inclined guide cone 609 through the guide groove body 608, and then discharged to the inner cavity of the pouring port 5 through the guide cone 609, so as to realize the pouring of the casting mold 4;
[0057] When the guide trough body 608 is tilted, the shaft body 615 is meshed with the meshing ring 607 through the driven wheel 3 616, and the meshing ring 607 is fixed by the fixing rod 606 and the stand 601, so that the shaft body 615 drives the isolation plate 618 to rotate, thereby causing a gap to appear between the bottom of the isolation plate 618 and the guide trough body 608. When the liquid flows to the guide cone 609 on the tilted side of the inner cavity of the guide trough body 608, the liquid flows through the gap between the bottom of the isolation plate 618 and the guide trough body 608, thereby causing the bottom of the isolation plate 618 to isolate impurities on the top surface of the liquid, so that the liquid without impurities is discharged to the inner cavity of the casting mold 4 through the guide cone 609;
[0058] After the casting mold 4 on the top of the first group of transmission components 3 is poured, the second driving motor 602 drives the second driven wheel 604 through the second driving wheel 603, so that the second driven wheel 604 drives the guide groove body 608 to rotate clockwise and counterclockwise through the support shaft 605, so that the guide groove body 608 drives the guide cone 609 and the guide plate 611 to tilt toward the second group of transmission components 3;
[0059] At this time, the second group of transmission components 3 drives the casting mold 4 so that the pouring port 5 corresponds to the inclined group of guide cones 609;
[0060] At the same time, the first group of transmission components 3 drives another casting mold 4, so that the pouring port 5 at the top of the casting mold 4 moves to a predetermined position;
[0061] By repeating this process, continuous pouring of the plurality of casting molds 4 at the top of the two groups of transmission components 3 can be achieved.
[0062] Working principle: the driving motor 2 602 drives the driven wheel 2 604 through the driving wheel 2 603, so that the driven wheel 2 604 drives the guide groove body 608 to rotate clockwise through the support shaft 605, so that the guide groove body 608 drives the guide cone 609 and the guide plate 611 to tilt toward the first group of transmission components 3;
[0063] When the ladle component 2 moves along the guide rail 1 to the top of the guide plate 611, the driven motor 208 drives the driven wheel 207 through the driving wheel 209, and the driven wheel 207 drives the fixed rotating ring 203, so that the fixed rotating ring 203 drives the ladle body 201 to rotate, so that the liquid in the inner cavity of the ladle bin 202 is discharged through the inclined top pouring port of the ladle body 201, so that the liquid in the inner cavity of the ladle bin 202 is discharged to the top of the guide plate 611;
[0064] The guide plate 611 is driven to rotate with the support shaft 605 by the guide groove body 608, so that the guide plate 611 is in an inclined state, so that the liquid guided by the top inner wall of the guide plate 611 flows to the side of the guide groove body 608 in the inclined direction, and is guided to the inclined guide cone 609 through the guide groove body 608, and then discharged to the inner cavity of the pouring port 5 through the guide cone 609, so as to realize the pouring of the casting mold 4;
[0065] At this time, the first group of transmission components 3 drives the casting mold 4 so that the pouring port 5 corresponds to the inclined group of guide cones 609;
[0066] When the guide trough body 608 is tilted, the shaft body 615 is meshed with the driven wheel three 616 and the meshing ring 607, and the meshing ring 607 is fixed by the fixing rod 606 and the stand 601, so that the shaft body 615 drives the isolation plate 618 to rotate, thereby causing a gap to appear between the bottom of the isolation plate 618 and the guide trough body 608. When the liquid flows into the inner cavity of the guide trough body 608 and flows toward the guide cone 609 on the inclined side, the liquid flows through the gap between the bottom of the isolation plate 618 and the guide trough body 608, thereby causing the bottom of the isolation plate 618 to isolate the impurities on the top surface of the liquid, so that the liquid without impurities is discharged into the inner cavity of the casting mold 4 through the guide cone 609.
[0067] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.
[0068] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A metal casting pouring device, comprising a guide rail (1), characterized in that: A ladle component (2) is arranged at the top of the guide rail (1), two groups of transmission components (3) are arranged at the bottom of the guide rail (1), and auxiliary pouring equipment (6) is fixedly mounted on the inner walls of opposite sides of the two groups of transmission components (3).
2. A metal casting pouring equipment according to claim 1, characterized in that: The ladle component (2) comprises a ladle body (201), the top inner cavity of the ladle body (201) is provided with a molten iron containing chamber (202), the top outer wall of the ladle body (201) is fixedly equipped with a fixed rotating ring (203), both sides of the fixed rotating ring (203) are rotatably connected with vertical plates (204), the outer walls of two groups of the vertical plates (204) are fixedly equipped with fixed plates (205), the outer walls of both sides of the two groups of the vertical plates (204) are fixedly equipped with limited sliding tables (206), the outer wall of one end of the fixed rotating ring (203) is fixedly equipped with a driven wheel (207), the inner wall of one group of the vertical plates (204) is fixedly equipped with a driving motor (208), the outer wall of the output shaft of the driving motor (208) is fixedly equipped with a driving wheel (209), and the driving wheel (209) and the driven wheel (207) are meshed.
3. A metal casting pouring equipment according to claim 1, characterized in that: The transmission component (3) comprises a supporting body (301), and a plurality of rollers (302) are rotatably connected to the inner wall of the top of the supporting body (301).
4. A metal casting pouring equipment according to claim 3, characterized in that: The inner wall of the supporting body (301) is also inlaid with a driving motor which is drivingly connected to the rotating roller (302).
5. The metal casting pouring equipment according to claim 1, characterized in that: The auxiliary pouring equipment (6) comprises a stand (601), the inner wall of the stand (601) is fixedly equipped with a second drive motor (602), the outer wall of the output shaft of the second drive motor (602) is fixedly equipped with a second drive wheel (603), the top inner wall of the stand (601) is rotatably connected with a support shaft (605), one end of the support shaft (605) is fixedly equipped with a second driven wheel (604), the other end of the support shaft (605) is fixedly equipped with a guide trough body (608), a fixed rod (606) is fixedly equipped on the side of the stand (601) close to the guide trough body (608), a meshing ring (607) is fixedly equipped on the end of the fixed rod (606) away from the stand (601), and guide cones (609) are fixedly equipped on the bottom of both sides of the guide trough body (608).
6. A metal casting pouring equipment according to claim 5, characterized in that: The outer wall of the guide groove body (608) away from the driven wheel 2 (604) is fixedly equipped with a mounting plate (610), and the top of the mounting plate (610) is fixedly equipped with a guide plate (611). The outer wall of the meshing ring (607) is slidably sleeved with a limit sleeve (612), and the inner wall of the limit sleeve (612) is threadedly connected with a limit bolt (613). The tops of both sides of the guide groove body (608) are provided with a slot (614), and the inner wall of the slot (614) is rotatably connected with a shaft (615). The end of the shaft (615) close to the meshing ring (607) is fixedly equipped with a driven wheel 3 (616). The top of the guide groove body (608) is rotatably connected with a pressure plate (617), and the bottom outer wall of the shaft (615) is fixedly equipped with an isolation plate (618).
7. A metal casting pouring equipment according to claim 6, characterized in that: The driving wheel 2 (603) is meshed with the driven wheel 2 (604), and the two sides of the meshing ring (607) are respectively meshed with the two groups of driven wheels 3 (616). The isolation plate (618) is located on the inner wall of the guide groove body (608), and the two groups of guide cones (609) are connected through the inner cavity of the guide groove body (608). The limiting sleeve (612) is fixed by abutting against the outer wall of the meshing ring (607) through the limiting bolt (613), and the pressure plate (617) is located at the top of the slot (614).
8. A metal casting pouring equipment according to claim 7, characterized in that: The driving motor 2 (602) drives the support shaft (605) to rotate at an angle of ±15 degrees by meshing with the driven wheel 2 (603) and the driven wheel 2 (604). The straight-line distance between the liquid discharge point where the guide cone (609) rotates +15 degrees with the support shaft (605) as the axis and the liquid discharge point where the guide cone (609) rotates -15 degrees with the support shaft (605) as the axis is X, and X is smaller than the inner wall diameter of the pouring port (5); The auxiliary pouring equipment (6) is fixedly assembled via a stand (601) and an outer wall between two sets of transmission components (3).
Citation Information
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