RISER SLEEVE, METHOD FOR PRODUCING A RISER BODY FOR THE RISER SLEEVE AS WELL AS AN EXPANDER ELEMENT AND CORE BOX FOR PRODUCING A RISER BODY
20200254510 · 2020-08-13
Inventors
Cpc classification
International classification
Abstract
The present invention relates to a riser sleeve (1) for using when pouring metals into a casting mould, comprising a riser body (2), comprising a riser cavity (3) for holding liquid metal and a riser opening (4) for joining the riser cavity (3) to a mould cavity of the casting mould during the casting process,
wherein the riser cavity (3) has a greater diameter than the diameter of the riser opening (4) in at least one portion, the riser body (2) is made of an insulating and/or exothermic riser material, the riser body (2) is formed as a single piece, the riser opening (4) defines an axis (5), and the riser cavity (3) is asymmetric to the axis (5).
Claims
1. Riser sleeve (1) for use in the casting of metals into a casting mould, comprising a riser body (2), comprising a riser cavity (3) for holding liquid metal and a riser opening (4) for joining the riser cavity (3) to a mould cavity of the casting mould during the casting process, wherein the riser cavity (3) has a greater diameter than the diameter of the riser opening (4) in at least one portion, the riser body (2) is made of an insulated and/or exothermic riser material, the riser body (2) is formed as a single piece, the riser opening (4) defines an axis (5), and the riser cavity (3) is asymmetric to the axis (5).
2. Riser sleeve (1) according to claim 1, wherein the riser cavity (3) has a minimal point (6) on its peripheral surface, which has a smaller distance to the axis (5) than axially adjacent points in both directions on the peripheral surface.
3. Riser sleeve (1) according to claim 2, wherein the minimal point (6) is punctiform or linear.
4. Riser sleeve (1) according to claim 1, wherein the riser opening (4) has a rectangular-shaped cross-section with parallel riser opening walls.
5. Riser sleeve (1) according to claim 1, wherein asymmetry of the riser cavity (3) extends orthogonally to the axis (5) across a maximum of 150 on a sectional plane.
6. Method for producing a single-piece riser body (2) of a riser sleeve (1), comprising the following steps: forming at least one first partial cavity in a first box and a second partial cavity in a second box, bringing together at least the first box and the second box so that the first partial cavity and the second partial cavity form a cavity with an inner wall (18), wherein the inner wall (18) at least partially forms the outer contour of the riser body (2) to be produced, setting a reversibly expandable expander element (7) into the cavity, expanding the expander element (7) so that the expanded expander element (7) has an asymmetrical outer shape, introducing an exothermic and/or insulating riser material between the expanded expander element (7) and the inner wall (18) of the cavity for the formation of the riser body (2), wherein the expanded expander element (7) specifies a shape of a riser cavity (3), constricting of the expander element (7), removal of the expander element (7) out of the riser body (2) by means of a relative movement between the expander element (7) and the riser body (2), wherein the constricted expander element (7) is moved out through the riser opening (4) formed during the introducing step.
7. Method according to claim 6, wherein the expanding of the expander element (7) takes place in one direction and no expanding takes place in the opposing direction.
8. Expander element (7) that is configured to be used in connection with production of a riser body (2), wherein an outer contour of expander element (7) is reversibly expandable and extends along a central longitudinal axis (8) in an unexpanded state, characterized in that the expander element (7) in an expanded state has an asymmetrical outer shape with reference to the longitudinal axis (8).
9. Expander element (7) according to claim 8, wherein the asymmetrical expanded expander element (7) has a minimal point (17) on an expanded surface, which comprises a smaller distance to the longitudinal axis (8) than points that are axially adjacent in both directions on the expanded surface.
10. Expander element (7) according to claim 8, wherein the expander element (7) has a rectangular-shaped cross-section with parallel side walls (13) in an unexpanded state.
11. Expander element (7) according to claim 8, wherein the expander element (7) comprises a fixed mandrel (9) and a flexible membrane (10) that is attached to the mandrel (9), which can be expanded by introducing a fluid into an intermediate space (11) between the membrane (10) and the mandrel (9).
12. Expander element (7) according to claim 11, wherein the membrane (10) is attached with its peripheral edges (12) to the mandrel (9) both in the axial direction as well as in the circumferential direction.
13. Expander element (7) according to claim 11, wherein the membrane (10) on its inner side in an expanded region is connected to the mandrel (9) in such a way that the expansion of the membrane (10) is limited locally.
14. Expander element (7) according to claim 11, wherein the membrane (10) is arranged only on a side wall (13) of the expander element (7).
15. (canceled)
Description
[0031] The invention as well as the technical field are explained based on the figures as an example. Schematically, the figures show
[0032]
[0033]
[0034]
[0035]
[0036]
[0037] The cross-sectional shape of the unexpanded expander element 7 is rectangular, wherein the membrane 10 only extends across a side wall 13 of the mandrel 9. The membrane 10 is completely attached to the mandrel with its peripheral edge 12. Due to lines in the inside of the mandrel 9 (not shown), it is possible to convey a fluid into an intermediate space 11 between the mandrel 9 and the membrane 10 so that the membrane 10 and, thereby, the outer contour of the expander element 7 are expanded.
[0038] The accordingly expanded expander element is shown in
[0039] Such an expander element 7 is used in a core shooter for producing a riser body 2.
[0040] In
[0041] Since the volume of the riser cavity 3 is greater above the axis 5 than below the axis 5, during the casting process, a sufficiently high hydrostatic pressure is available due to the liquid metal in order to ensure feeding. The Williams element 6 formed on the peripheral surface of the riser cavity 3 serves as a hotspot for the liquid metal.
[0042] With the present invention, an asymmetrical riser body comprising a riser cavity can be produced as a single piece in just one production process so that the effort for producing such a riser body is considerably simplified.
REFERENCE LIST
[0043] 1 riser sleeve [0044] 2 riser body [0045] 3 riser cavity [0046] 4 riser opening [0047] 5 axis [0048] 6 Williams element [0049] 7 expander element [0050] 8 longitudinal axis [0051] 9 mandrel [0052] 10 membrane [0053] 11 intermediate space [0054] 12 peripheral edge [0055] 13 side wall [0056] 14 base [0057] 15 free end [0058] 16 sheet [0059] 17 minimal place [0060] 18 inner wall