Aluminum automobile shock tower auxiliary mold opening and closing casting mold and its casting method
The casting mold with aluminum automotive shock absorber tower assists in opening and closing, and by utilizing the alternating action of lifting and vibration components, the problems of slow raw material feeding and air bubble generation are solved, resulting in a more efficient casting process and higher casting quality.
Patent Information
- Application Number
- CN202310964374.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-02
- Publication Date
- 2025-11-28
- Estimated Expiration
- 2043-08-02
AI Technical Summary
In the casting process of automotive shock absorber towers, the raw material supply is slow and prone to generating air bubbles, which affects production speed and quality.
A casting mold for assisting the opening and closing of an aluminum automotive shock absorber tower includes a lifting assembly, a vibration assembly, a limit shaft, a power assembly, and a contact assembly. The power assembly drives the lifting assembly and the vibration assembly to alternately move, ensuring a precise connection and stable vibration between the upper and lower mold heads, and avoiding misalignment and air bubbles.
It improves the production efficiency and internal structural strength of castings, ensures a stable connection between the upper and lower mold heads, reduces bubble generation, and enhances the stability and production efficiency of the equipment.
Smart Images

Figure CN117020127B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of automobile part production, and particularly relates to an aluminum automobile shock tower auxiliary mold opening and closing casting mold and a casting method thereof. BACKGROUND
[0002] The automobile shock tower is used for improving the rigid structure of a vehicle body, improving the stability and balance of the vehicle during curve driving, connecting two shock absorbers, keeping the forces on both sides balanced, keeping the vehicle body stable during high-speed driving, avoiding side tilting and overturning, and greatly improving the driving safety.
[0003] In the production process of the automobile shock tower, a casting mold needs to be used, and the automobile shock tower produced through casting is more cost-saving and can be better matched with the vehicle body in structure.
[0004] When the automobile shock tower is cast, the raw material needs to be supplied between the upper mold head and the lower mold head, and then cooled and formed. In the process of supplying the raw material, in order to ensure the sealing between the upper mold head and the lower mold head, the raw material is generally automatically filled between the upper mold head and the lower mold head. Although this method is simple and easy to operate, the raw material is slow to be supplied, and bubbles are easily generated in the raw material after the raw material is filled between the upper mold head and the lower mold head, which affects the production speed and quality. SUMMARY
[0005] The application aims to provide an aluminum automobile shock tower auxiliary mold opening and closing casting mold and a casting method thereof, so as to solve the problems in the background.
[0006] To achieve the above-mentioned purpose, the application provides the following technical solutions:
[0007] An aluminum automobile shock tower auxiliary mold opening and closing casting mold comprises:
[0008] A base is provided with a vertical stand plate;
[0009] A lifting assembly is arranged on the stand plate and connected with an upper mold head, and the lifting assembly can drive the upper mold head to move along the length direction of the stand plate;
[0010] A vibration assembly is arranged on the base and connected with a lower mold head, and the vibration assembly can drive the lower mold head to vibrate after the upper mold head is lowered to abut against the lower mold head;
[0011] A limiting shaft is arranged on the upper mold head, and the limiting shaft can be inserted into a limiting groove formed on the lower mold head, so that the upper mold head vibrates with the lower mold head when the lower mold head vibrates;
[0012] A power assembly is connected with the vibration assembly and the lifting assembly, and the power assembly can drive the vibration assembly and the lifting assembly to act alternately.
[0013] An abutting assembly is arranged on the base, and the abutting assembly can separate the casting from the upper die head after the upper die head rises to a predetermined height.
[0014] As a further scheme of the present application, the power assembly comprises a driving device fixed on the vertical plate, and an output shaft of the driving device is connected with a Malta cross core structure arranged on the vertical plate.
[0015] The Malta cross core structure comprises a driving wheel rotatably arranged on the vertical plate, and a rotation shaft of the driving wheel is connected with the output shaft of the driving device, and the driving wheel is adapted with a first driven wheel and a second driven wheel rotatably arranged on the vertical plate, and the driving wheel can drive the first driven wheel and the second driven wheel to rotate alternately.
[0016] As a further scheme of the present application, the lifting assembly comprises two transmission wheels rotatably arranged on the vertical plate, a transmission belt is sleeved between the two transmission wheels, and a rotation shaft of one of the transmission wheels is connected with the first driven wheel through a second belt.
[0017] The lifting assembly further comprises a following structure connected with the transmission belt, and the following structure is connected with the upper die head.
[0018] As a further scheme of the present application, the following structure comprises a connecting frame arranged on the vertical plate, two guide members are symmetrically arranged on the connecting frame, and the guide members are slidably connected with a guide plate arranged on the vertical plate.
[0019] The following structure further comprises a first embedding groove arranged on the connecting frame, and a first embedding wheel rotatably arranged on the transmission belt can roll in the first embedding groove.
[0020] As a further scheme of the present application, two cross shafts are arranged on the connecting frame, and a connecting sleeve is sleeved on each cross shaft, and the connecting sleeve is fixedly connected with the upper die head.
[0021] Two groups of rolling connecting members are symmetrically arranged on the base, and a load bearing wheel rotatably arranged on the lower die head can roll in the rolling connecting members.
[0022] As a further scheme of the present application, the vibration assembly comprises a rotating disc rotatably arranged on the base and a following member fixedly connected with the lower die head, a second embedding groove is arranged on the following member, and a second embedding wheel rotatably arranged on the rotating disc can roll in the second embedding groove.
[0023] The rotating shaft of the rotating disc is connected with a bevel gear set arranged on the base, and the bevel gear set is connected with the second driven wheel through a belt.
[0024] As a further scheme of the present application: the abutting assembly comprises two side plates symmetrically arranged on the base, and an electric push rod is fixed on the side plate, and one end of the electric push rod is fixed with an abutting disc, and the two abutting discs are matched to separate the casting part from the upper die head.
[0025] A casting method for assisting the opening and closing of the aluminum automobile shock tower by using the casting mold, comprising the following steps:
[0026] Step one: pipeline connection of the feeding pipeline and the cooling liquid pipeline with the lower die head;
[0027] Step two: start the power assembly, and when the power assembly works, it will first drive the upper die head to move downward through the lifting assembly until the upper die head moves to sealingly abut against the lower die head, at this time the limiting shaft is inserted into the limiting groove;
[0028] Step three: after the abutment of the upper die head and the lower die head, the power assembly will control the upper die head to stop so that the upper die head and the lower die head maintain a sealed state, at this time the power assembly will drive the vibration assembly to act, and in this state the upper die head and the lower die head vibrate, and the feeding pipeline transports raw materials between the upper die head and the lower die head;
[0029] Step four: after the raw materials fill between the upper die head and the lower die head, control the cooling liquid to circulate in the lower die head to cool the raw materials;
[0030] Step five: the power assembly drives the upper die head to move upward through the lifting assembly, and after the upper die head rises to a certain height, the abutting assembly acts to assist the separation of the casting part from the upper die head, and the production of the shock tower is completed.
[0031] Compared with the prior art, the present application has the following advantages:
[0032] Through the power assembly, the lifting assembly and the vibration assembly act alternately, on the one hand, the abutment of the upper die head and the lower die head is more precise to avoid misalignment, and on the other hand, the position of the upper die head is more stable during vibration and feeding, thereby improving the stability of the device, and since the first driven wheel and the second driven wheel act alternately, the power of the driving device is fully utilized to avoid the no-load phenomenon, and the overloading of the driving device is prevented to avoid burning of the driving device;
[0033] The combination and separation of the upper die head and the lower die head are more convenient through the lifting assembly and the vibration assembly, the production efficiency of the casting part is improved to a certain extent, and in the process of feeding the raw material, since the upper die head and the lower die head are in a vibrating state, when the raw material is fed between the two, the raw material is more evenly distributed between the two, the generation of bubbles is reduced, and the structural strength of the casting part is improved.
[0034] Through the abutting assembly, the separation operation between the casting part and the upper die head is better, the separation effect is improved, and the influence of separation failure on the subsequent continuous processing process is avoided. BRIEF DESCRIPTION OF DRAWINGS
[0035] Figure 1 A structure diagram of an embodiment of the casting mold for assisting the opening and closing of the aluminum automobile shock tower.
[0036] Figure 2 For Figure 1 The structure of A in the middle is enlarged.
[0037] Figure 3 A structure diagram of another angle in an embodiment of the casting mold for assisting the opening and closing of the aluminum automobile shock tower.
[0038] Figure 4 A structure diagram of the upper die head and the lower die head in an embodiment of the casting mold for assisting the opening and closing of the aluminum automobile shock tower.
[0039] Figure 5 A structure diagram of the lifting assembly in an embodiment of the casting mold for assisting the opening and closing of the aluminum automobile shock tower.
[0040] Figure 6 A structure diagram of the power assembly in an embodiment of the casting mold for assisting the opening and closing of the aluminum automobile shock tower.
[0041] Figure 7 A partial structure diagram of the vibration assembly in an embodiment of the casting mold for assisting the opening and closing of the aluminum automobile shock tower.
[0042] In the figure: 1, base; 2, vertical plate; 3, driving device; 4, driving wheel; 5, No. 1 driven wheel; 6, transmission wheel; 7, transmission belt; 8, No. 1 fitting wheel; 9, connecting frame; 10, No. 1 fitting groove; 11, guide piece; 12, guide plate; 13, horizontal shaft; 14, connecting sleeve; 15, upper die head; 16, limiting shaft; 17, lower die head; 18, limiting groove; 19, bearing wheel; 20, rolling connecting piece; 21, No. 2 driven wheel; 22, No. 1 belt; 23, bevel gear set; 24, turntable; 25, No. 2 fitting wheel; 26, follower; 27, No. 2 fitting groove; 28, No. 2 belt; 29, electric push rod; 30, abutting disc. DETAILED DESCRIPTION
[0043] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all the other embodiments obtained by a person of ordinary skill in the art without creative work are within the protection scope of the present application.
[0044] In addition, the elements in the present application are referred to as "fixed to" or "disposed on" another element, which can be directly on another element or can have a middle element. When an element is considered to be "connected" to another element, it can be directly connected to another element or can have a middle element. The terms "vertical", "horizontal", "left", "right" and similar expressions used herein are for illustrative purposes only and do not represent the only implementation.
[0045] Please refer to Figures 1-7 In the embodiments of the present application, an aluminum automobile shock tower auxiliary mold opening and closing mold includes a base 1, a lifting assembly, a vibration assembly, a limiting shaft 16, a power assembly and an abutting assembly.
[0046] The base 1 is provided with a vertical stand plate 2 perpendicular thereto;
[0047] The power assembly is connected with the vibration assembly and the lifting assembly, and the power assembly can drive the vibration assembly and the lifting assembly to act alternately;
[0048] The power assembly includes a driving device 3 fixed on the stand plate 2, an output shaft of the driving device 3 is connected with a Malta cross movement structure provided on the stand plate 2, the Malta cross movement structure includes a driving wheel 4 rotatably installed on the stand plate 2, a rotating shaft of the driving wheel 4 is connected with the output shaft of the driving device 3, and the driving wheel 4 is adapted with a first driven wheel 5 and a second driven wheel 21 rotatably installed on the stand plate 2, and the driving wheel 4 can drive the first driven wheel 5 and the second driven wheel 21 to rotate alternately.
[0049] In use, the driving device 3 works, at this time the output shaft of the driving device 3 will drive the driving wheel 4 connected thereto to rotate, and the driving wheel 4 is matched with the first driven wheel 5 and the second driven wheel 21, specifically, when the driving wheel 4 is matched with the first driven wheel 5 to make the first driven wheel 5 rotate, the second driven wheel 21 is in a locked state, when the driving wheel 4 is matched with the second driven wheel 21 to make the second driven wheel 21 rotate, the first driven wheel 5 is in a locked state, that is, when the lifting assembly is in action, the vibration assembly remains stationary, and the upper die head 15 and the lower die head 17 are in abutment to combine, which is more precise and avoids misalignment of the two, and when the vibration assembly is in action, the lifting assembly remains stationary, and the position of the upper die head 15 is more stable when vibrating and feeding, thereby improving the stability of the device.
[0050] Secondly, due to the alternate action of the first driven wheel 5 and the second driven wheel 21, the lifting of the upper die head 15 and the vibration of the upper die head 15 and the lower die head 17 are carried out step by step, which not only fully utilizes the power of the driving device 3 and avoids the phenomenon of no load, but also prevents the driving device 3 from being burned out due to excessive load.
[0051] Through the above setting, the lifting assembly and the vibration assembly act alternately, on the one hand, when the upper die head 15 and the lower die head 17 are in abutment to combine, the precision is higher and misalignment of the two is avoided, on the other hand, when vibrating and feeding, the position of the upper die head 15 is more stable, thereby improving the stability of the device, and due to the alternate action of the first driven wheel 5 and the second driven wheel 21, the power of the driving device 3 is fully utilized and the phenomenon of no load is avoided, and the driving device 3 is prevented from being burned out due to excessive load.
[0052] Please refer to Figures 1-5 , Figure 7 , the lifting assembly is arranged on the vertical plate 2 and connected with the upper die head 15, the lifting assembly can drive the upper die head 15 to move along the length direction of the vertical plate 2, the lifting assembly comprises two transmission wheels 6 rotatably installed on the vertical plate 2, a transmission belt 7 is sleeved between the two transmission wheels 6, and the rotating shaft of one of the transmission wheels 6 is connected with the first driven wheel 5 through the second belt 28;
[0053] The lifting assembly further comprises a follow-up structure connected with the transmission belt 7, the follow-up structure is connected with the upper die head 15, and the follow-up structure comprises a connecting frame 9 arranged on the vertical plate 2, two guide pieces 11 are symmetrically arranged on the connecting frame 9, and the guide pieces 11 are slidingly connected with a guide plate 12 arranged on the vertical plate 2;
[0054] The follow-up structure further comprises a first embedding groove 10 arranged on the connecting frame 9, and a first embedding wheel 8 rotatably arranged on the transmission belt 7 and capable of rolling in the first embedding groove 10.
[0055] The limiting shaft 16 is arranged on the upper die head 15 and can be inserted into a limiting groove 18 formed on the lower die head 17, so that the upper die head 15 vibrates with the lower die head 17 when the lower die head 17 vibrates.
[0056] The connecting frame 9 is provided with two horizontal shafts 13, and each horizontal shaft 13 is sleeved with a connecting sleeve 14, and the connecting sleeve 14 is fixedly connected with the upper die head 15, and the base 1 is symmetrically provided with two groups of rolling connecting pieces 20, and a load bearing wheel 19 rotatably arranged on the lower die head 17 is capable of rolling in the rolling connecting piece 20.
[0057] The vibration assembly is arranged on the base 1 and connected with the lower die head 17, and the vibration assembly can drive the lower die head 17 to vibrate after the upper die head 15 is lowered to abut against the lower die head 17, and the vibration assembly comprises a rotating disc 24 rotatably arranged on the base 1 and a follow-up piece 26 fixedly connected with the lower die head 17, and the follow-up piece 26 is provided with a second embedding groove 27, and a second embedding wheel 25 rotatably arranged on the rotating disc 24 is capable of rolling in the second embedding groove 27.
[0058] The rotating shaft of the rotating disc 24 is connected with a bevel gear set 23 arranged on the base 1, the bevel gear set 23 is connected with a second driven wheel 21 through a first belt 22, and the bevel gear set 23 comprises a first bevel gear and a second bevel gear rotatably arranged on the base 1 and meshing with each other, the first bevel gear is coaxially fixedly connected with the rotating disc 24, and the second bevel gear is connected with the first belt 22.
[0059] When the first driven wheel 5 rotates, the transmission wheel 6 is driven to rotate several rounds through the second belt 28, at this time, the transmission wheel 6 drives the transmission belt 7 to move, and the first embedding wheel 8 moves with the transmission belt 7, and because the first embedding wheel 8 rolls in the first embedding groove 10, the connecting frame 9 can move from the lowest point of stroke to the highest point of stroke and then return to the lowest point of stroke in one cycle of the transmission belt 7.
[0060] When the connecting frame 9 moves from the highest point of stroke to the lowest point of stroke, the upper die head 15 moves towards the lower die head 17, and when the upper die head 15 and the lower die head 17 are about to abut against each other, the limiting shaft 16 is inserted into the limiting groove 18, so that the upper die head 15 and the lower die head 17 are fixed in the horizontal position, and when the upper die head 15 and the lower die head 17 abut against each other, the upper die head 15 and the lower die head 17 are fixed in the horizontal and vertical positions.
[0061] Further, the upper die head 15 is provided with an annular sealing ring to improve the sealing between the upper die head 15 and the lower die head 17 after abutting, and the friction degree of the inner wall of the upper die head 15 should be greater than that of the lower die head 17, so that the casting part can be lifted when the upper die head 15 rises after casting is completed.
[0062] When the second driven wheel 21 rotates, the rotating disc 24 is driven to rotate through the first belt 22 and the bevel gear set 23, so that the second engaging wheel 25 arranged at the eccentric position of the rotating disc 24 performs circular motion, and since the second engaging wheel 25 rolls in the second engaging groove 27, the lower die head 17 can be driven to reciprocate through the follower 26 when the second engaging wheel 25 performs circular motion. At this time, under the action of the limiting shaft 16 and the limiting groove 18, the upper die head 15 will vibrate with the lower die head 17, so that the raw material is more evenly distributed between the upper die head 15 and the lower die head 17 when the raw material is supplied therebetween, and the generation of bubbles is reduced.
[0063] Through the above arrangement, the combination and separation of the upper die head 15 and the lower die head 17 are more convenient, which improves the production efficiency of the casting part to a certain extent. In the process of supplying the raw material, since the upper die head 15 and the lower die head 17 are in a vibrating state, the raw material is more evenly distributed between the upper die head 15 and the lower die head 17 when the raw material is supplied therebetween, the generation of bubbles is reduced, and the structural strength of the casting part is improved.
[0064] Please refer to Figure 1 , Figure 3 , the abutting assembly is arranged on the base 1, and the abutting assembly can separate the casting part from the upper die head 15 after the upper die head 15 rises to a predetermined height. The abutting assembly comprises two side plates symmetrically arranged on the base 1, and an electric push rod 29 is fixed on the side plate. One end of the electric push rod 29 is fixed with an abutting disc 30, and the two abutting discs 30 cooperate to separate the casting part from the upper die head 15.
[0065] When the raw material between the upper die head 15 and the lower die head 17 cools down, the frame 9 drives the upper die head 15 to move upward, and at this time the upper die head 15 drives the casting part to move upward. When the upper die head 15 rises to a certain height, the electric push rod 29 acts to drive the abutting disc 30 to move towards the upper die head 15, and the abutting disc 30 abuts against the upper die head 15 to separate the casting part on the upper die head 15.
[0066] The abutting disc 30 is provided with a granular protrusion on the side away from the electric push rod 29, so as to improve the friction between the casting part and the abutting disc 30.
[0067] Through the above arrangement, the casting part and the upper die head 15 can be better separated, the separation effect is improved, and the failure of separation does not affect the subsequent continuous processing process.
[0068] As one of the embodiments of the present application, a casting method for assisting the opening and closing of the mold for casting an aluminum automobile shock tower is also proposed, comprising the following steps:
[0069] Step one: pipeline connection of the feeding pipeline and the cooling liquid pipeline with the lower mold head 17;
[0070] Step two: start the power assembly, which will first drive the upper mold head 15 to move downward through the lifting assembly until the upper mold head 15 moves to sealingly abut against the lower mold head 17, at which time the limiting shaft 16 is inserted into the limiting groove 18;
[0071] Step three: after the abutment of the upper mold head 15 and the lower mold head 17, the power assembly will control the upper mold head 15 to stop so that the upper mold head 15 and the lower mold head 17 remain in a sealed state, at which time the power assembly will drive the vibration assembly to act, and in this state the upper mold head 15 and the lower mold head 17 vibrate, and the feeding pipeline transports raw materials between the upper mold head 15 and the lower mold head 17;
[0072] Step four: after the raw materials fill between the upper mold head 15 and the lower mold head 17, control the cooling liquid to circulate in the lower mold head 17 to cool the raw materials;
[0073] Step five: the power assembly drives the upper mold head 15 to move upward through the lifting assembly, and after the upper mold head 15 rises to a certain height, the abutment assembly acts to separate the auxiliary casting from the upper mold head 15, and the production of the shock tower is completed.
[0074] It is apparent for those skilled in the art that the present application is not limited to the details of the above-described exemplary embodiments, but can be implemented in other concrete forms without departing from the spirit or essential characteristics of the present application. Therefore, the embodiments should be considered in all respects as illustrative and not restrictive, the scope of the present application being defined by the appended claims rather than the above description, and it is intended to embrace all changes and modifications that fall within the meaning and scope of the equivalent elements of the claims. Any reference signs in the claims should not be considered as limiting the claims involved.
[0075] In addition, it should be understood that although the present specification is described in terms of embodiments, not every embodiment contains only one independent technical solution, and the description of the specification is only for the sake of clarity, and those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be properly combined to form other embodiments that those skilled in the art can understand.
Claims
1. An aluminum automobile shock tower casting mold for assisting mold opening and closing, characterized by, The utility model relates to a casting device, including: Base (1), be provided with vertical stand (2) with it on base (1), Lifting assembly, be provided with upper die head (15) on vertical stand (2) and are connected, lifting assembly can drive upper die head (15) movement along the length direction of vertical stand (2), Vibration assembly, be provided with lower die head (17) on base (1) and are connected, vibration assembly can drive lower die head (17) vibration after upper die head (15) lower to with lower die head (17) abut, Limiting shaft (16), be provided with on upper die head (15), limiting shaft (16) can be inserted in the limiting slot (18) formed on lower die head (17) inside, to in lower die head (17) vibration, make upper die head (15) follow lower die head (17) vibration, Power assembly, connect vibration assembly with lifting assembly, power assembly can drive vibration assembly and lifting assembly alternate action, Abutment assembly, be provided with on base (1), abutment assembly can make castings with upper die head (15) separate after upper die head (15) rise to predetermined height, The power assembly includes a drive device (3) fixed on the stand (2), and the output shaft of the drive device (3) is connected to a Malta cross core structure provided on the stand (2). The Malta cross core structure includes a driving wheel (4) rotatably installed on the stand (2), the rotation shaft of the driving wheel (4) is connected with the output shaft of the drive device (3), and the driving wheel (4) is matched with a first driven wheel (5) and a second driven wheel (21) rotatably installed on the stand (2), and the driving wheel (4) can drive the first driven wheel (5) and the second driven wheel (21) to rotate alternately.
2. The casting mold for an aluminum automobile shock tower assisting mold opening and closing according to claim 1, characterized in that, The lifting assembly includes two transmission wheels (6) rotatably installed on the stand (2), a transmission belt (7) is sleeved between the two transmission wheels (6), and the rotation shaft of one of the transmission wheels (6) is connected with the first driven wheel (5) through a second belt (28). The lifting assembly further includes a follow-up structure connected with the transmission belt (7), and the follow-up structure is connected with the upper die head (15).
3. The casting mold for an aluminum automobile shock tower assisting mold opening and closing according to claim 2, characterized in that, The follow-up structure includes a connecting frame (9) provided on the stand (2), two guide members (11) are symmetrically provided on the connecting frame (9), and the guide members (11) are slidingly connected with a guide plate (12) provided on the stand (2). The follow-up structure further includes a first embedding groove (10) provided on the connecting frame (9), and a first embedding wheel (8) rotatably installed on the transmission belt (7) can roll in the first embedding groove (10).
4. The casting mold for an aluminum automobile shock tower assisting mold opening and closing according to claim 3, characterized in that, Two horizontal shafts (13) are provided on the connecting frame (9), and a connecting sleeve (14) is sleeved on each horizontal shaft (13), and the connecting sleeve (14) is fixedly connected with the upper die head (15). Two groups of rolling connecting pieces (20) are symmetrically arranged on the base (1), and a load wheel (19) rotatably arranged on the lower die head (17) can roll in the rolling connecting pieces (20).
5. The casting mold for an aluminum automobile shock tower assisting mold opening and closing according to claim 1, characterized in that, The vibration assembly comprises a rotating disc (24) rotatably arranged on the base (1) and a follower (26) fixedly connected with the lower die head (17), the follower (26) is provided with a second embedded groove (27), and a second embedded wheel (25) rotatably arranged on the rotating disc (24) can roll in the second embedded groove (27). The rotating shaft of the rotating disc (24) is connected with a bevel gear set (23) arranged on the base (1), and the bevel gear set (23) is connected with the second driven wheel (21) through a first belt (22).
6. The casting mold for an aluminum automobile shock tower assisting mold opening and closing according to claim 1, characterized in that, The abutting assembly comprises two side plates symmetrically arranged on the base (1), the side plates are fixedly provided with electric push rods (29), one end of the electric push rod (29) is fixedly provided with an abutting disc (30), and the two abutting discs (30) are matched to separate the casting from the upper die head (15).
7. A casting method for assisting opening and closing of a mold for casting an aluminum automobile shock tower using the casting mold according to claim 1, characterized by, The method comprises the following steps: Step one: connecting the feeding pipeline and the cooling liquid pipeline with the lower die head (17); Step two: starting the power assembly, the power assembly drives the upper die head (15) to move downward through the lifting assembly when working, until the upper die head (15) moves to seal and abut against the lower die head (17), at this time, the limiting shaft (16) is inserted into the limiting groove (18); Step three: after the upper die head (15) abuts against the lower die head (17), the power assembly controls the upper die head (15) to stop so that the upper die head (15) and the lower die head (17) maintain a sealed state, at this time, the power assembly drives the vibration assembly to act, the upper die head (15) and the lower die head (17) vibrate in this state, and the feeding pipeline transports raw materials between the upper die head (15) and the lower die head (17); Step four: after the raw materials fill between the upper die head (15) and the lower die head (17), the cooling liquid is controlled to circulate in the lower die head (17) to cool the raw materials; Step five: the power assembly drives the upper die head (15) to move upward through the lifting assembly, after the upper die head (15) rises to a certain height, the abutting assembly acts to assist the casting to separate from the upper die head (15), and the production of the shock tower is completed.
Citation Information
Patent Citations
Hardware mold convenient to demold
CN209792577U
Die-casting die for metal piece machining
CN216065469U