IP Library Granted Patent US 7,870,885
Granted Patent B2
US 7,870,885 · App. 11/792,580 · Granted Jan 18, 2011

Method of and a device for producing a liquid-solid metal composition

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Quick Facts
Patent No.
US 7,870,885
App. No.
11/792,580
Granted
Jan 18, 2011
Kind
B2
Abstract

A method of producing a liquid-solid metal composition ( 8 ), including the steps of charging a vessel ( 2 ) with a molten metal or alloy ( 3 ), charging the vessel ( 2 ) with a solid metal or alloy ( 6 ), stirring the molten metal or alloy ( 3 ) upon cooling thereof. The amount of solid metal or alloy ( 6 ) is chosen such that a substantial amount of solid particles ( 7 ) will be formed in the melt ( 3 ) due to the enthalpy exchange between the solid metal or alloy ( 6 ) and the molten metal or alloy ( 3 ), and at least a part of the added solid metal or alloy ( 6 ) is melted by the heat transferred to it by the molten metal or alloy ( 3 ).

Claims (23)

1. A method of producing a liquid-solid metal composition ( 8 ), comprising:

charging a vessel ( 2 ) with a molten metal or alloy ( 3 ),

charging the vessel ( 2 ) with a solid metal or alloy ( 6 ),

stirring the molten metal or alloy ( 3 ) upon cooling thereof,

wherein an amount of solid metal or alloy ( 6 ) is chosen such that at least 1 wt % of solid particles ( 7 ) will be formed in the melt ( 3 ) due to an enthalpy exchange between the solid metal or alloy ( 6 ) and the molten metal or alloy ( 3 ), at least a part of the added solid metal or alloy ( 6 ) being melted by the heat transferred to the solid metal or alloy by the molten metal or alloy ( 3 ), such that the liquid-solid metal composition is formed,

the solid metal or alloy ( 6 ) is dissolvable in the molten metal or alloy ( 3 ),

the stirring is performed by a mechanical stirrer ( 5 ) and the solid metal or alloy ( 6 ) is charged to the vessel ( 2 ) via the stirrer ( 5 ),

the solid metal or alloy ( 6 ) is attached directly to the stirrer ( 5 ), and

the thus formed liquid-solid metal composition, including formed solid particles, is provided to a casting operation.

2. The method according to claim 1 , wherein essentially all the added solid metal or alloy ( 6 ) is melted by the heat transferred to the solid metal or alloy by the molten metal or alloy ( 3 ).

3. The method according to claim 1 , wherein the amount of solid metal or alloy ( 6 ) is chosen such that the amount of solid particles ( 7 ) formed due to said enthalpy exchange is at least 5 wt %.

4. The method according to claim 1 , wherein the amount of solid metal or alloy ( 6 ) is chosen such that the amount of solid particles ( 7 ) formed due to said enthalpy exchange is at least 10 wt %.

5. The method according to claim 1 , wherein the amount of solid metal or alloy ( 6 ) is chosen such that the amount of solid particles ( 7 ) formed due to said enthalpy exchange is not more than 65 wt %.

6. The method according to claim 1 , wherein the amount of solid metal or alloy ( 6 ) is chosen such that the amount of solid particles ( 7 ) formed due to said enthalpy exchange is not more than 50 wt %.

7. The method according to claim 1 , wherein the solid metal or alloy ( 6 ) charged to vessel ( 2 ) is charged as at least one individual piece into the vessel ( 2 ).

8. The method according to claim 1 , wherein a mixture of molten metal or alloy and the solid metal or alloy ( 6 ) is subjected to a supplementary external cooling beside the cooling effect of the solid metal or alloy ( 6 ).

9. The method according to claim 1 , wherein the charged solid metal or alloy ( 6 ) has the same composition as the charged molten metal or alloy ( 3 ).

10. The method according to claim 1 , wherein the charged solid metal or alloy ( 6 ) has a different composition than the charged molten metal or alloy ( 3 ).

11. The method according to claim 1 , wherein the amount of solid particles ( 7 ) formed in the melt ( 3 ) upon cooling thereof due to the cooling effect of the added solid metal or alloy ( 6 ) is high enough to substantially prevent the growth of a dendritic structure in the liquid-solid metal composition ( 8 ) upon further cooling thereof without aid of any further added solid metal or alloy ( 6 ).

12. The method according to claim 1 , wherein the produced liquid-solid metal composition is a hypoeutectic liquid-solid metal composition ( 8 ), that the molten metal or alloy is a molten hypoeutectic metal or alloy ( 3 ), and that the solid metal or alloy ( 6 ) is a eutectic or hypereutectic solid metal or alloy ( 6 ) from the same alloy system as said molten metal or alloy ( 3 ).

13. The method according to claim 1 , wherein the produced liquid-solid metal composition is a hypereutectic liquid-solid metal composition ( 8 ), that the molten metal or alloy is a molten hypereutectic metal or alloy ( 3 ), and that the solid metal or alloy ( 6 ) is a eutectic or hypereutectic solid metal or alloy ( 6 ) from the same alloy system as said molten metal or alloy ( 3 ).

14. The method according to claim 1 , wherein the solid metal or alloy ( 6 ) is of a different alloy system than that of said molten metal or alloy ( 3 ).

15. The method according to claim 1 , wherein the liquid-solid metal composition ( 8 ) has a spherical or non-dendritic structure.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 7, 2022
From: WESSEN, MAGNUS; CAO, HAIPING
To: RHEOMETAL HOLDING AB
Reel/Frame 061009/0805 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 7, 2022
From: RHEOMETAL HOLDING AB
To: COMPTECH RHEOCASTING I SKILLINGARYD AB
Reel/Frame 061009/0815 →
SECURITY INTEREST Recorded Sep 7, 2022
From: COMPTECH RHEOCASTING I SKILLINGARYD AB
To: BUHLER AG
Reel/Frame 061009/0839 →
Priority Claims (1)
SE 0403001 · Dec 10, 2004 · national
Continuity (1)
Related Publication 20080118394A1 · May 22, 2008