IP Library › Granted Patent US 9,561,540
Granted Patent B2
US 9,561,540 · App. 14/357,774 · Granted Feb 7, 2017

Die casting nozzle and method for operating a die casting nozzle

Inventor: Igor Kusic (Allendorf, DE)
Assignee: Ferrofacta GmbH
B22D17/2023B22D17/2038B22D17/2281
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Quick Facts
Patent No.
US 9,561,540
App. No.
14/357,774
Granted
Feb 7, 2017
Kind
B2
Abstract

Die cast nozzle for use in a die casting hot chamber system for molten metal with at least melting channel ( 4 ) in a channel carrier ( 3 ) that can be connected to a melt distributor ( 21 ), wherein the melting channel ( 4 ) passes over into a heating zone ( 6 ) and a nozzle tip ( 8 ), to which a sprue area ( 10 ) is attached, in which a plug of solidified melting can be formed that interrupts the melting flow, wherein the heating zone ( 6 ) comprises a heating cartridge ( 2 ) and/or a heatable nozzle shaft ( 33 ′) and/or the nozzle tip ( 8 ) is comprised as heatable nozzle tip ( 8 ′) and comprises at least one heating cartridge ( 2 ), the heatable nozzle shaft ( 33 ), or the heatable nozzle tip ( 8 ′) as heating element with electric heating, which comprises high power density in at least one section and low thermal inertia, comprised in a way that a temperature change gradient of 20 to 250 K/s, preferably 150 K/s, can be achieved on the surface of the heating element. A method for operating the die cast nozzle is also the subject matter of the invention.

Claims (23)

1. A die cast nozzle for use in a die casting hot chamber system for molten metal with at least one melting channel ( 4 ) in a channel carrier ( 3 ) that can be connected to a melt distributor ( 21 ), wherein the melting channel ( 4 ) passes over into a heating zone ( 6 ) and a nozzle tip ( 8 ), to which a sprue area ( 10 ) is attached, in which a plug of solidified melting can be formed that interrupts the melting flow, characterised in that the heating zone ( 6 ) comprises a heating element with electric heating, that comprises in at least one section materials with low density and high thermal conductivity, providing a high power density and low thermal inertia, such that a temperature change gradient of 20 to 250 K/s can be achieved on the surface of the heating element, wherein the die cast nozzle comprises a nozzle body ( 5 ) that encases the channel carrier ( 3 ) and the nozzle body ( 5 ) or the channel carrier ( 3 ) are comprised of titanium.

2. The die cast nozzle according to claim 1 , characterised in that the nozzle tip ( 8 ) is comprised of ceramic.

3. The die cast nozzle according to claim 1 , characterised in that the melting channel ( 4 ) comprises a channel coating ( 20 ).

4. The die cast nozzle according to claim 1 , characterised in that at least one thermal sensor ( 41 ) is included for determining the melting temperature in the heating zone ( 6 ) and/or the sprue area ( 10 ).

5. The die cast nozzle according to claim 1 , characterised in that at least one cross-section change ( 14 ) is included that limits the heat flow up to the sprue area ( 10 ).

6. The heating element for a die cast nozzle according to claim 1 , characterised in that at least partially a layer structure comprised of an insulator ceramic ( 15 ) and at least one heating conductor are included, wherein the insulator ceramic ( 15 ) forms at least on one exterior of the heating element and around at least one heating conductor an electrically insulating barrier and that the heating conductor can be contacted electrically via contacts ( 11 , 11 ′).

7. The heating element according to claim 6 , characterised in that the heating conductor is comprised of a conductor ceramic ( 16 ) or a metal conductor.

8. The heating element according to claim 6 , characterised in that the heating element comprises at least one surface coating ( 13 ) or an internal insert ( 31 ).

9. The heating element according to claim 6 , characterised in that at least one of the heating elements comprises an individually controllable heating conductor.

10. A heating cartridge with electric heating for a die cast nozzle according to claim 1 , characterised in that the heating cartridge ( 2 ) comprises a shaft ( 19 ) that is extended to a head ( 44 ) that leads through the melt distributor, so that the contacts ( 11 , 11 ′) are outside of the melt distributors.

11. The heating cartridge according to claim 10 , characterised in that a compensating device for balancing different thermal expansions of the channel carrier ( 3 ) and the heating cartridge ( 2 ) inserted into the channel carrier ( 3 ) is included, wherein the channel carrier ( 3 ) comprises a seat ( 12 ′) for the heating cartridge ( 2 ), against which the heating cartridge ( 2 ) is pressed, wherein an expansion bolt ( 39 ), comprising a pressure screw ( 40 ) that is in connection with the channel carrier ( 3 ) in a force application zone is included, which is in connection to the heating cartridge ( 2 ) in a contact zone, so that the heating cartridge ( 2 ) is pressed against the seat ( 12 ′) by the expansion bolt ( 39 ) when the channel carrier ( 3 ), heating cartridge ( 2 ) and expansion bolt ( 39 ) are heated.

12. Method for operating a die cast nozzle according to claim 1 , characterised in that the steps

operation of one or several heating elements with electric heating with low thermal inertia and a power density in at least one section that is sufficiently high, so that a temperature change gradient of 20 to 250 K/s can be achieved on the surface of the heating elements, wherein operation ensues with increased power,

injection of the melting into a mold immediately afterwards or at the same time,

reduction of power of the heating element or the heating elements or their complete deactivation,

stopping the melting flow,

operation of the heating element or the heating elements with such power that the melting in the heating zone ( 6 ) remains liquid, but the heat is not sufficient to maintain the melting on melting temperature in the sprue area ( 10 ) as well, wherein the melting solidifies to a plug, seals the injection point ( 23 ) and subsequent flow or reflowing of the melting is prevented.

13. Method according to claim 12 , characterised in that the portion of heat flowing from the heating area ( 17 ) of the heating cartridge ( 2 ) into the sprue area ( 10 ) is at least determined by one cross-section change ( 14 ) and/or the melting is tempered in the sprue area ( 10 ) via the heatable nozzle tip ( 8 ′) and/or the separately heatable tip area ( 18 ) of the heating cartridge ( 2 ), wherein at least one cross-section change ( 14 ) minimises the interaction between tip area ( 18 ) and heating area ( 17 ).

14. Method according to claim 13 , characterised in that a thermal sensor ( 41 ) provides a temperature value of a melting temperature to a temperature control system that regulates the melting temperature in the heating zone ( 6 ) and/or in the sprue zone ( 10 ), so that the melting temperature is only insofar above the melting temperature of the melting that a safe melting flow is ensured.

15. The die cast nozzle according to claim 1 , characterised in that the temperature change gradient 150 K/s can be achieved on the surface of the heating element.

16. The die cast nozzle according to claim 1 , characterised in that the heating zone ( 6 ) comprises a heating cartridge ( 2 ).

17. The die cast nozzle according to claim 1 , characterised in that the heating zone ( 6 ) comprises a heatable nozzle shaft ( 33 ′).

18. The die cast nozzle according to claim 1 , characterised in that the nozzle tip ( 8 ) is a heatable nozzle tip ( 8 ′).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2014
From: KUSIC, IGOR
To: FERROFACTA GMBH
Reel/Frame 032883/0619 →
Priority Claims (2)
DE 10 2011 055 398 · Nov 15, 2011 · national
DE 10 2012 102 549 · Mar 26, 2012 · national
Continuity (1)
Related Publication 20140319188A1 · Oct 30, 2014