SIDE MOLD AND LOW-PRESSURE HUB CASTING MOLD
20220040756 · 2022-02-10
Inventors
- Zhen Li (Qinhuangdao, CN)
- Zuo Xu (Qinhuangdao, CN)
- Hanqi Wu (Qinhuangdao, CN)
- Zhihua Zhu (Qinhuangdao, CN)
- Guoyuan Xiong (Qinhuangdao, CN)
Cpc classification
B22D27/045
PERFORMING OPERATIONS; TRANSPORTING
B22D17/2218
PERFORMING OPERATIONS; TRANSPORTING
B22D18/04
PERFORMING OPERATIONS; TRANSPORTING
B22D27/04
PERFORMING OPERATIONS; TRANSPORTING
B22D15/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22D17/22
PERFORMING OPERATIONS; TRANSPORTING
B22C9/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The application belongs to the technical field of a casting mold and provides a side mold and a low-pressure hub casting mold. Channels of a cooling loop are processed in a back cavity of a side mold frame, a distance between the channels along a solidification direction of a casting gradually increases, and a cooling medium flows along the cooling loop, the ability of taking away heat changes from strong to weak, and a larger temperature gradient of the side mold may be formed by superposition with a temperature gradient formed by the thickness of the side mold.
Claims
1. A side mold, comprising a side mold frame, a cooling cover plate, heat-insulating gaskets, an inlet pipe and an outlet pipe, wherein a cooling loop is processed in a back cavity of the side mold frame, the cooling loop comprises a plurality of substantially parallel channels, and a distance between the adjacent channels along a solidification direction of a casting gradually increases; sealing grooves are formed at the periphery of the cooling loop and between the two adjacent channels, and the heat-insulating gaskets are mounted in the sealing grooves; the cooling cover plate is fixed in the back cavity and covers the cooling loop and the heat-insulating gaskets; and the inlet pipe and the outlet pipe communicate with the channels of the cooling loop.
2. The side mold according to claim 1, wherein the heat-insulating gaskets are one of graphite gaskets, ceramic gaskets, rock wool gaskets and aluminum silicate heat-insulating cotton gaskets.
3. The side mold according to claim 1, wherein cooling air or cooling water are introduced into the channels of the cooling loop.
4. The side mold according to claim 1, wherein the inlet pipe and the outlet pipe are arranged along the solidification direction of the casting.
5. The side mold according to claim 1, wherein a bottom of the inlet pipe is blocked, and a flow dividing through hole is processed along a flowing direction of the cooling medium.
6. The side mold according to claim 5, wherein the cooling loop is divided into left and right parts, the cooling medium is divided into left and right streams by the inlet pipe, and the left and right streams of cooling mediums flow along the channels and are converged at the outlet pipe.
7. The side mold according to claim 1, wherein a cooling insert is fixed below the cooling cover plate in the back cavity of the side mold frame.
8. A low-pressure hub casting mold, comprising a top mold and a bottom mold and further comprising at least one side mold of claim 1, wherein a mold cavity subjected to low-pressure casting is formed by surrounding of the top mold, the bottom mold and the at least one side mold.
9. A low-pressure hub casting mold, comprising a top mold and a bottom mold and further comprising at least one side mold of claim 2, wherein a mold cavity subjected to low-pressure casting is formed by surrounding of the top mold, the bottom mold and the at least one side mold.
10. A low-pressure hub casting mold, comprising a top mold and a bottom mold and further comprising at least one side mold of any claim 3, wherein a mold cavity subjected to low-pressure casting is formed by surrounding of the top mold, the bottom mold and the at least one side mold.
11. A low-pressure hub casting mold, comprising a top mold and a bottom mold and further comprising at least one side mold of claim 4, wherein a mold cavity subjected to low-pressure casting is formed by surrounding of the top mold, the bottom mold and the at least one side mold.
12. A low-pressure hub casting mold, comprising a top mold and a bottom mold and further comprising at least one side mold of claim 5, wherein a mold cavity subjected to low-pressure casting is formed by surrounding of the top mold, the bottom mold and the at least one side mold.
13. A low-pressure hub casting mold, comprising a top mold and a bottom mold and further comprising at least one side mold of claim 6, wherein a mold cavity subjected to low-pressure casting is formed by surrounding of the top mold, the bottom mold and the at least one side mold.
14. A low-pressure hub casting mold, comprising a top mold and a bottom mold and further comprising at least one side mold of claim 7, wherein a mold cavity subjected to low-pressure casting is formed by surrounding of the top mold, the bottom mold and the at least one side mold.
Description
BRIEF DESCRIPTION OF FIGURES
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021] In the drawings: 1—side mold frame, 2—cooling cover plate, 3—inlet pipe, 4—heat-insulating gasket, 5—channel, 6—outlet pipe, 7—bolt, 8—cooling insert, 9—inlet pipe positioning hole, 10—cooling cover plate inlet, 11—cooling cover plate gasket pressure groove, 12—cooling cover plate outlet, 13—cooling cover plate bolt through hole, 14—flow dividing through hole, 15—side mold.
DETAILED DESCRIPTION
[0022] While various aspects and embodiments have been disclosed herein, other aspects and embodiments will be apparent to those skilled in the art. The various aspects and embodiments disclosed herein are for purposes of illustration and are not intended to be limiting, with the true scope and spirit being indicated by the following claims.
[0023] In combination with
[0024] As shown in
[0025] As shown in
[0026] As shown in
[0027] A cooling insert 8 is fixed below the cooling cover plate 2 in the back cavity of the side mold frame 1, a cooling channel may be formed in the cooling insert 8, the cooling medium flows in the cooling channel, and the cooling insert 8 locally cools a thicker part of the casting, so that the problem that heat conduction and heat dissipation are not obvious when the joint of the rim and a spoke is locally cooled is solved.
[0028] In actual production and use, the back cavity of the side mold frame 1 is processed first, the channels 5 of the cooling loop are processed in the back cavity of the side mold frame 1, a plane matched with the cooling cover plate 2 is processed, and then the channels of the cooling loop, accommodating grooves of the heat-insulating gaskets, an engaging bolt threaded hole and an inlet pipe positioning hole 9 are processed. Then, the customized heat-insulating gaskets 4 such as graphite gaskets are put into the accommodating grooves of the heat-insulating gaskets of the side mold frame 1. Subsequently, the cooling cover plate 2, and corresponding cooling cover inlet 10, cooling cover plate outlet 12, cooling cover plate gasket pressure grooves 11 and cooling cover plate bolt through holes 13 are processed, and the inlet pipe 3 and the outlet pipe 6 are positioned on the cooling cover plate 2 and are sealed and fixed through welding. When the inlet pipe is welded, the inlet pipe flow dividing through hole needs to rightly face the direction of the loop, so that the cooling medium flows and disperses uniformly towards the designed direction, thereby achieving the flow stabilizing effect. Finally, the processed side mold frame 1 and the cooling cover plate 2 are assembled, and are fixed through six bolts 7 as shown in
[0029] During on-site casting production, the cooling medium enters through the inlet (as shown in
[0030] In the embodiment 1, the channels of the cooling loop and the heat-insulating gaskets are arranged in the side mold, the cooling medium flows through the cooling loop to perform cooling, the cooling medium enters from the inlet pipe, flows along the cooling loop and finally flows out from the outlet pipe, the heat of the mold is taken away in the flowing process, cooling is performed again on the basis of the original temperature gradient formed due to the thickness of the side mold, the spacing distance between the arc-shaped grooves or channels in the cooling loop gradually increases along the solidification direction, the ability of taking way heat changes from strong to weak, and a larger temperature gradient may be formed by superposition with the temperature gradient formed by the thickness of the side mold; furthermore, the heat-insulating gaskets play a role in heat insulation and reduce the influence of the adjacent channels to make the temperature gradient more obviously, so that a good feeding range is formed, the compactness of the casting is improved and excellent mechanical property of the rim part is achieved; and meanwhile, local cooling is accelerated, so that the production rhythm is accelerated and the production efficiency of the casting process is improved.
[0031] After the actual on-site production test, compared with the traditional side mold of the same product, the novel side mold structure has very obvious advantages in terms of the temperature, the temperature gradient, the production efficiency, the tensile strength of the casting rim and the coefficient of elongation of the casting rim. The comparison is shown in Table 1 below.
[0032] Table 1 The actual production comparison result of the traditional side mold and the novel side mold of the present application.
TABLE-US-00001 Coefficient of Highest Temperature Stable Tensile elongation Type of side temperature gradient of production strength of of casting mold of side mold side mold efficiency casting rim rim Traditional 512° C. 21° C. 11 224 Mpa 2.7% side mold pieces/ hour Novel side 478° C. 45° C. 16 251 Mpa 4.1% mold pieces/ hour
Embodiment 2
[0033] The embodiment 2 of the present application provides a low-pressure hub casting mold, including a top mold, a bottom mold and four side molds 15 as defined in any one of the above embodiments, wherein a mold cavity subjected to low-pressure casting is formed by surrounding of the top mold, the bottom mold and the four side molds 15. The combined structure of the side molds 15 is shown in
[0034] In the embodiment 2, by adoption of the side mold in the above embodiments, cooling is performed again on the basis of the original temperature gradient formed due to the thickness of the side mold, the spacing distance between the arc-shaped grooves or channels in the cooling loop gradually increases along the solidification direction, the ability of taking away heat changes from strong to weak, and a larger temperature gradient may be formed by superposition with the temperature gradient formed by the thickness of the side mold; furthermore, the heat-insulating gaskets play a role in heat insulation and reduce the influence of the adjacent channels to make the temperature gradient more obviously, so that a good feeding range is formed, the compactness of the casting is improved, and excellent mechanical property of the rim part is achieved; and meanwhile, local cooling is accelerated, so that the production rhythm is accelerated, and the production efficiency of the casting process is improved.