Claims
- 1. Method of measuring and controlling the nitrogen content in a liquid metal bath, in which an inert carrier gas is bubbled through said liquid metal bath to promote a nitrogen transfer from said bath to said carrier gas, thus forming a first gaseous mixture comprising said carrier gas and nitrogen, said mixture being collected and withdrawn from said metal bath, characterized in that (i) a known quantity of oxygen is added with a known flow rate to said first gaseous mixture to form a second gaseous mixture comprising carrier gas, nitrogen and oxygen; (ii) the nitrogen contained in said second gaseous mixture is oxidized to nitrogen oxides, comprising NO2; (iii) the NO2 amount thus formed is measured and correlated to the nitrogen content in said liquid metal bath; (iv) the thus obtained NO2 amount and correlated nitrogen content in said liquid metal bath are then loaded in a computer which compares them with a desired nitrogen content in the metal bath, and displays necessary measures to bring the measured nitrogen content in said metal bath to the said desired nitrogen content.
- 2. Method according to claim 1, in which the carrier gas is argon.
- 3. Method according to claim 2, in which the carrier gas comprises nitrogen.
- 4. Method according to claim 1, in which the carrier gas flow rate through the metal bath is comprised between 3 and 30 liters per hour.
- 5. Method according to claim 1, in which the flow rate of oxygen added to said first gaseous mixture is from 20 to 70% of the flow rate utilized for said carrier gas.
- 6. Method according to claim 1, in which said second gaseous mixture comprising nitrogen and oxygen, as well as carrier gas, is treated to catalyze the nitrogen combustion to nitrogen oxides, comprising NO2.
- 7. Method according to claim 6, in which said treatment of said second gaseous mixture to catalyze the nitrogen combustion to nitrogen oxides comprising NO2 and form a gaseous mixture comprising nitrogen oxides, consists in subjecting said second gaseous mixture to electric sparks generated by a electrical potential difference of between 3000 and 8000 volts.
- 8. Method according to claim 7, in which the gaseous mixture comprising nitrogen oxides is sent to an analyzer for the determination of the NO2 content which, in turn, is correlated to the nitrogen concentration in the liquid metal bath, and said concentration is utilized to adjust the nitrogen content in the metal.
- 9. Device for the embodiment of the method of claim 1, characterized in that it comprises (i) means (20, 21, 23) for bubbling an inert gas into a liquid metal bath, thus realizing a nitrogen transfer from said metal bath to said inert gas, to form a first gaseous mixture comprising inert gas and nitrogen; (ii) means (22) for collecting said first gaseous mixture; (iii) means (31, 32, 33) for adding with a known flow rate desired quantities of oxygen to said first gaseous mixture, to obtain a second gaseous mixture comprising carrier gas, nitrogen and oxygen, and means (30) for homogenizing said second gaseous mixture; (iv) means (40, 42, 43) to oxidize to nitrogen oxides, comprising NO2, the nitrogen contained in said second gaseous mixture; (v) means (53, 100) for measuring the NO2 content in said oxidized second gaseous mixture; (vi) means (54, 55) for processing said measured NO2 content and relating to the nitrogen content in the bath.
- 10. Device according to claim 9, in which said means for bubbling an inert gas substantially comprise an elongated element (20) provided with an internal space and having a first opening at one of its extremities, a first conduit (21) for admission into said internal space of the inert gas and of a second opening provided with said means (22) for extracting bubbled gas, consisting in a second conduit and means to control the gas flow.
- 11. Device according to claim 9, in which said means for adding to the extracted gas known quantities of oxygen and for homogenizing the thus obtained gaseous mixture consist in an oxygen tank (31) having means (33) for controlling and measuring the outcoming oxygen flow, and in a chamber (30), having openings for admitting and discharging gas, in which the extracted gas and oxygen are admitted, said chamber being provided with a plurality of projections to enhance the turbulence of the gas passing through said chamber, thus obtaining a homogeneous gas mixture.
- 12. Device according to claim 9, in which said means to oxidize the nitrogen in said homogenized gaseous mixture comprise means (42) to subject the gaseous mixture containing nitrogen and oxygen to a catalytic oxidation reaction of nitrogen to nitrogen oxides, comprising NO2.
- 13. Device according to claim 12, in which said means (42) to subject the gaseous mixture to a catalytic oxidation comprise at least two electrodes between which a sufficient electric voltage is provided to establish an electric arc.
- 14. Device according to claim 9, in which said means (53, 100) for measuring the NO2 content in the gas coming out of the reactor comprise (i) a first conduit (200) in which the gaseous mixture containing NO2 flows with laminar flow, and is provided with an inlet opening (210) and a discharge opening (220); (ii) a second conduit (300), adjacent to the first one, through which a carrier liquid, in which NO2 is soluble, flows with laminar flow in countercurrent with said gaseous mixture, said second conduit having an inlet opening (310) and a discharge opening (320); (iii) a membrane (400) in a hydrophobic polymer permeable only to said NO2, and constituting a separating wall between said first and second conduits, and (iv) a couple of reference (330) and measuring (340) electrodes, respectively placed in said conduit (300) at the extremities of said membrane (400).
- 15. Device according to claim 11, in which said second conduit (300) comprises stainless steel elements carrying a reference electrode (330), consisting in a first oxidized and stabilized surface part of a first of said stainless steel elements, and a measuring electrode (340), consisting in a second oxidized and stabilized surface part of a second of said stainless steel elements, said measuring electrodes (340) having a length comprised between 20 and 50% of the length of reference electrode (330).
Parent Case Info
The present application is the national stage filing of and claims priority to International Application No. PCT/EP96/05860, filed Dec. 30, 1996 and Italian Application Ser. No. RM95A000862.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
102e Date |
371c Date |
PCT/EP96/05860 |
|
WO |
00 |
6/26/1998 |
6/26/1998 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO97/24464 |
7/10/1997 |
WO |
A |
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
5522915 |
Ono et al. |
Jun 1996 |
|
Non-Patent Literature Citations (1)
Entry |
Patents Abstracts of Japan, Publication No. JP56136915, Oct. 1981. |