IP Library Granted Patent US 10,550,449
Granted Patent B2
US 10,550,449 · App. 15/550,195 · Granted Feb 4, 2020

Apparatus and process for separating and recovering the components of an alloy, particularly a noble alloy

Inventors: Giovanni Faoro (Dassano del Grappa, IT); Aleksandr Khlebnikov (Ekaterinburg, RU); Denis Borovkov (Nizhniy Tagil, RU); Sergey Medvedev (Moscow, RU); Sergey Grokhovsky (Ekaterinbug, RU)
Assignee: IKOI S.P.A.
C22B9/02C22B9/04F27B5/04F27B5/06F27B2005/062
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Quick Facts
Patent No.
US 10,550,449
App. No.
15/550,195
Granted
Feb 4, 2020
Kind
B2
Abstract

An apparatus for separating and recovering the components of an alloy, particularly a noble alloy, including a high vacuum chamber housing at least one crucible for the alloy to be separated; at least one heating element arranged, during use, around the crucible; at least one condensation device, which faces, during use, an upper mouth of the crucible. The particularity of the present invention resides in that the condensation device includes at least one cold element and at least one deflector that is adapted to divert the flow of the aeriform substances derived from the melting and evaporation of the alloy toward the cold element. The invention also relates to a process for separating and recovering the components of an alloy, particularly a noble alloy.

Claims (54)

1. A process for separating and recovering components of an alloy, wherein the alloy comprises at least two components having different degrees of volatility, the process comprising:

providing an apparatus to melt the alloy, the apparatus comprising a heating element, a crucible that is accommodated inside a vacuum chamber provided with one or more condensation devices, wherein each one of said condensation devices comprises at least one cold element and at least one deflector that laterally diverts aeriform substances derived from the melting of said alloy; wherein said deflector is movable along an axis of symmetry of said cold element and able to vary its distance from an upper mouth of said crucible;

separating and recovering the components of the alloy by an iterative procedure which comprises at least the following steps:

arranging said crucible below an n-th condensation device;

bringing said alloy to an n-th temperature value and creating inside said vacuum chamber an n-th degree of vacuum, so as to cause evaporation of components of said alloy with n-th degree of volatility;

after an n-th time interval, which provides a substantially complete evaporation of said components with n-th degree of volatility, lowering the temperature of said alloy and lowering the degree of vacuum inside said vacuum chamber, so as to inhibit evaporation of additional components of said alloy;

repeating said procedure, starting from the arranging step, for each condensation device;

lowering further the temperature of said alloy and eliminating the vacuum inside said vacuum chamber;

recovering from walls of each condensation device components of said alloy; and

recovering from said crucible the non-evaporated components of said alloy.

2. The process according to claim 1 , wherein index n varies increasingly from 1 to the total number of condensation devices that are present; each n-th temperature value being greater than the (n−1)-th temperature value; each n-th degree of vacuum being greater than the (n−1)-th degree of vacuum.

3. The process according to claim 2 , wherein said n-th time interval, allowing the substantially complete evaporation of said components with n-th degree of volatility, is automatically calculated by a control means that interacts with a continuous weighing system; said control means being adapted to compare a weight loss detected by said continuous weighing system regarding said components with n-th degree of volatility with the known weight of said components with n-th degree of volatility.

4. The process according to claim 1 , wherein said deflector is adapted to project at least partially inside said upper mouth of said crucible.

5. The process according to claim 1 , wherein the apparatus to melt the alloy further comprises a handling means adapted to move said crucible along a substantially horizontal direction and along a substantially vertical direction.

6. A process for separating and recovering components of an alloy, wherein the alloy comprises at least two components having different degrees of volatility, the process comprising:

providing an apparatus to melt the alloy, the apparatus comprising: a vacuum chamber housing at least one crucible for the alloy to be separated; at least one heating element arranged around said crucible; at least one condensation device, which faces an upper mouth of said crucible; said at least one condensation device comprising at least one cold element and at least one deflector that laterally diverts aeriform substances derived from said alloy toward said cold element; wherein said deflector comprises a substantially conical body, which is arranged substantially at an axis of symmetry of said cold element and having a vertex directed toward said crucible;

arranging said crucible below an n-th condensation device;

bringing said alloy to an n-th temperature value and creating inside said vacuum chamber an n-th degree of vacuum, so as to cause evaporation of the components of said alloy with n-th degree of volatility;

after an n-th time interval, which provides a substantially complete evaporation of said components with n-th degree of volatility, lowering the temperature of said alloy and lowering the degree of vacuum inside said vacuum chamber, so as to inhibit evaporation of additional components of said alloy;

repeating, for each condensation device, said process starting from the arranging said crucible below an n-th condensation device;

lowering further the temperature of said alloy and eliminating the vacuum inside said vacuum chamber;

recovering from walls of each condensation device the components of said alloy; and

recovering from said crucible the non-evaporated components of said alloy.

7. The process according to claim 6 , wherein index n varies increasingly from 1 to the total number of condensation devices that are present; each n-th temperature value being greater than the (n−1)-th temperature value; each n-th degree of vacuum being greater than the (n−1)-th degree of vacuum.

8. The process according to claim 7 , wherein said n-th time interval, allowing the substantially complete evaporation of said components with n-th degree of volatility, is automatically calculated by a control means that interacts with a continuous weighing system; said control means being adapted to compare a weight loss detected by said continuous weighing system regarding said components with n-th degree of volatility with the known weight of said components with n-th degree of volatility.

9. The process according to claim 6 , wherein the apparatus to melt the alloy further comprises a handling means adapted to move said crucible along a substantially horizontal direction and along a substantially vertical direction.

10. The process according to claim 6 , wherein said deflector is movable along the axis of symmetry of said cold element and able to vary its distance from an upper mouth of said crucible.

11. A process for separating and recovering components of an alloy, wherein the alloy comprises at least two components having different degrees of volatility, the process comprising:

providing an apparatus to melt the alloy, the apparatus comprising: a vacuum chamber housing at least one crucible for the alloy to be separated; at least one heating element arranged around said crucible; at least one condensation device, which faces an upper mouth of said crucible; said at least one condensation device comprising at least one cold element and at least one deflector that laterally diverts aeriform substances derived from said alloy toward said cold element; a handling means adapted to move said crucible along a substantially horizontal direction and along a substantially vertical direction;

arranging said crucible below an n-th condensation device;

bringing said alloy to an n-th temperature value and creating inside said vacuum chamber an n-th degree of vacuum, so as to cause evaporation of the components of said alloy with n-th degree of volatility;

after an n-th time interval, which provides a substantially complete evaporation of said components with n-th degree of volatility, lowering the temperature of said alloy and lowering the degree of vacuum inside said vacuum chamber, so as to inhibit evaporation of additional components of said alloy;

repeating, for each condensation device, said process starting from the arranging said crucible below an n-th condensation device;

lowering further the temperature of said alloy and eliminating the vacuum inside said vacuum chamber;

recovering from walls of each condensation device the components of said alloy; and

recovering from said crucible the non-evaporated components of said alloy.

12. The process according to claim 11 , wherein index n varies increasingly from 1 to the total number of condensation devices that are present; each n-th temperature value being greater than the (n−1)-th temperature value; each n-th degree of vacuum being greater than the (n−1)-th degree of vacuum.

13. The process according to claim 12 , wherein said n-th time interval, allowing the substantially complete evaporation of said components with n-th degree of volatility, is automatically calculated by a control means that interacts with a continuous weighing system; said control means being adapted to compare a weight loss detected by said continuous weighing system regarding said components with n-th degree of volatility with the known weight of said components with n-th degree of volatility.

14. The process according to claim 13 , wherein said at least one condensation device comprising the at least one cold element and the at least one deflector adapted to laterally divert the flow of the aeriform substances derived from said alloy are diverted toward one or more walls of said cold element.

15. The process according to claim 14 , wherein said deflector is moveable along an axis of symmetry of said cold element and able to vary its distance from an upper mouth of said crucible.

16. The process according to claim 14 , wherein said deflector is adapted to project at least partially inside said upper mouth of said crucible.

17. The process according to claim 11 , wherein said deflector is adapted to project at least partially inside said upper mouth of said crucible.

18. A process for separating and recovering components of an alloy, wherein the alloy comprises at least two components having different degrees of volatility, the process comprising:

providing an apparatus to melt the alloy, the apparatus comprising: a vacuum chamber housing at least one crucible for the alloy to be separated; at least one heating element arranged around said crucible; at least one condensation device, which faces an upper mouth of said crucible;

arranging said crucible below an n-th condensation device;

bringing said alloy to an n-th temperature value and creating inside said vacuum chamber an n-th degree of vacuum, so as to cause the evaporation of the components of said alloy with n-th degree of volatility;

after an n-th time interval, which provides a substantially complete evaporation of said components with n-th degree of volatility, lowering the temperature of said alloy and lowering the degree of vacuum inside said vacuum chamber to inhibit evaporation of additional components of said alloy;

wherein said n-th time interval is automatically calculated by a control means that interacts with a system configured to continuously weigh the crucible; said control means being adapted to compare a weight loss detected by said system for continuously weighing the crucible regarding said components with n-th degree of volatility with the known weight of said components with n-th degree of volatility;

repeating, for each condensation device, said process starting from the arranging said crucible below an n-th condensation device;

lowering further the temperature of said alloy and eliminating the vacuum inside said vacuum chamber;

recovering from walls of each condensation device the components of said alloy; and

recovering from said crucible the non-evaporated components of said alloy.

19. The process according to claim 18 , wherein index n varies increasingly from 1 to the total number of condensation devices that are present; each n-th temperature value being greater than the (n−1)-th temperature value; each n-th degree of vacuum being greater than the (n−1)-th degree of vacuum.

20. The process according to claim 18 , wherein the apparatus to melt the alloy further comprises a handling means adapted to move said crucible along a substantially horizontal direction and along a substantially vertical direction.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 11, 2019
From: VDS + TECHNOLOGY LTD.
To: IKOI S.P.A.
Reel/Frame 050978/0536 →
NUNC PRO TUNC ASSIGNMENT Recorded Aug 29, 2019
From: FAORO, GIOVANNI; KHLEBNIKOV, ALEKSANDR; BOROVKOV, DENIS; MEDVEDEV, SERGEY; GROKHOVSKY, SERGEY
To: LLC "ENFMPP - ENGINEERING"; IKOI S.R.L.
Reel/Frame 050214/0091 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2019
From: LLC "ENFMPP - ENGINEERING"
To: VDS + TECHNOLOGY LTD
Reel/Frame 050214/0363 →
CHANGE OF NAME Recorded Aug 29, 2019
From: IKOI S.R.L.
To: IKOI S.P.A.
Reel/Frame 050234/0386 →
Priority Claims (1)
IT VI2015A0038 · Feb 12, 2015 · national
Continuity (1)
Related Publication 20180030570A1 · Feb 1, 2018