METHOD FOR OPERATING MELTING/REFINING FURNACE AND MELTING-REFINING FURNACE
20200165692 ยท 2020-05-28
Inventors
Cpc classification
F27B3/205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/0025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D11/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21C5/5217
CHEMISTRY; METALLURGY
Y02P10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F27B14/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B3/225
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2003/164
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D99/0033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B3/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2003/168
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2003/162
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27B14/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D11/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The object of the present invention is to improve the efficiency when operating the melting/refining furnace of the cold iron source using a burners and a lance, or during refining, and the present invention provides a method for operating a melting/refining furnace comprising a through hole so as to penetrate a furnace wall, at least one burners provided in the through hole; and at least one lances installed in an oxidant gas supply hole provided above the through-hole for the burner, wherein an amount of oxygen introduced in the melting step is adjusted to a range calculated based on a the furnace volume.
Claims
1. A method for melting/refining a cold iron source using a melting/refining furnace, wherein the method comprises: a refining step comprising: a first step in which a cold iron source is supplied from an upper part of the melting/refining furnace; a second step in which the cold iron source is mainly melted by energizing an electrode provided in a center of the melting/refining furnace; a third step in which the cold iron source is auxiliary melted by a burner provided on a furnace wall of the melting/refining furnace; and a fourth step in which an oxidant gas is ejected from a lance installed in an oxidant gas ejection hole provided in the furnace wall above the burner downward from the horizontal direction, the oxidant gas is reacted with carbon monoxide, hydrogen, or a mixture of carbon monoxide and hydrogen which are generated during melting of the cold iron source; and a refining step in which impurities are removed by introducing oxygen into the molten iron generated by melting the cold iron source; the fourth step starts at the same time as or immediately after the start of the third step, and ends with the start of the refining step, when a volume of the furnace is V (m.sup.3) and an amount of oxygen introduced in the fourth step is Q (Nm.sup.3/h), V/Q is in a range from 0.1 to 0.8.
2. A melting/refining furnace for a cold iron source comprising: the melting/refining furnace is an electric furnace having an opening for introducing a cold iron source in the upper part, the electric furnace comprises: an electrode which is provided in the center of the electric furnace and configured to melt the cold iron source; a burner which is provided on the furnace wall and configured to auxiliary melt the cold iron source; a lance which is provided on the furnace wall above the burner and is configured to introduce oxygen; and an oxygen flow rate adjustment mechanism which is configured to supply a certain amount of oxygen to the lance, an install position of the burner and the lance on the furnace wall satisfies the following conditions: when a distance from a surface of a molten metal to a tip surface of the burner is L.sub.1, and a distance from the surface of the molten metal to the tip surface of the lance is L.sub.2; L.sub.1<L.sub.2; when an angle between a center axis of the burner and a horizontal plane is , and an angle between a center axis of the lance and the horizontal plane is , ; 90>>0; and 0
3. The melting/refining furnace for a cold iron source according to claim 2, wherein an oxygen flow rate adjusting mechanism comprises a flow rate control valve, a flow rate indicator, a pressure gauge, and a pressure control valve.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF THE INVENTION
[0029] An embodiment of the present invention will be described. A melting/refining furnace of the cold iron source used in the present invention is shown in
[0030] When the cold iron source is put into the electric furnace 1, for example, as shown in
[0031] The electric furnace 1 is provided with a through hole 5A so as to penetrate a furnace wall 2A forming the furnace body 2, and a burner 5 is installed in the through hole 5A. In the furnace wall 2A, an oxidant gas through hole 6A is further provided above the through hole 5A so as to penetrate the furnace wall 2A. The oxidant gas through hole 6A is provided with a lance 6 for introducing an oxidant gas (oxygen or an oxidant gas containing at least oxygen) into the furnace 1. The burner 5 is inserted from the through hole 5A and the lance 6 is inserted from the combustion-supporting fluid through hole 6A toward the furnace bottom 2B and fixed.
[0032]
[0033] When the angle formed by a center axis of the burner 5 and the horizontal direction is , the burner 5 is fixed so that 90>>0 (right diagram in
[0034]
[0035]
[0036] Note that the oxidant gas supply pipe 20 may not be provided, and the reflux water cooling jacket 21 may be provided on the outer periphery of the fuel fluid supply pipe 19. When the oxidant gas supply pipe 20 is provided, the flame length can be adjusted by adjusting the oxygen flow rate ratio between the oxidant gas supply pipes 18 and the oxidant gas supply pipes 20.
[0037] The oxidant gas supply pipe 18 includes a large diameter portion 18a having a constant inner diameter, a throat portion 18b having an inner diameter smaller than that of the large diameter portion 18a, a widened portion 18c having an inner diameter that gradually increases from the throat portion 18b toward the distal end side 18B, and a linear motion portion 18d having a substantially constant inner diameter from the proximal side 18A to the distal side 18B.
[0038] As described above, the oxidant gas supply hole 6A for installing the lance 6 which introduces the oxidant gas containing oxygen for secondary combustion into the furnace is provided above the furnace wall 2A at which the burner lance (burner 5) is installed.
[0039] It is desirable to provide a reflux type water cooling jacket in the oxidant gas supply hole 6A which supplies the oxidant gas containing oxygen. When the water cooling jacket is provided around the lance 6, the lance 6 can be installed regardless of whether the furnace wall is a refractory wall or a water-cooled wall.
[0040]
[0041] A method for melting/refining the cold iron source using the melting/refining furnace 1 will be described.
[0042] First, as shown in
[0043] Next, the electrode 4 is lowered to a predetermined position in the center of the melting/refining furnace 1, and the upper portion of the furnace body 2 is covered with the furnace lid 3. Then, the electrode 4 is energized to melt the cold iron source (second step).
[0044] When melting of the cold iron source begins and the molten metal begins to accumulate in the furnace bottom 2B, the cold iron source is auxiliary melted by a plurality of burners 5 provided on the furnace wall 2A of the melting/refining furnace 1 (third step).
[0045] Then, at the same time as the start of the third step or immediately after the third step, oxygen is ejected from the lance 6 installed in the oxidant gas supply hole 6A provided in the furnace wall 2A, and the oxygen is reacted with carbon monoxide, hydrogen, or a mixture of carbon monoxide and hydrogen generated during melting of the cold iron source (fourth step).
[0046] From the first step to the fourth step is the melting step.
[0047] The amount of oxygen supplied from the lance 6 in the fourth step can be determined from the volume of the melting/refining furnace 1. That is, when the volume of the melting/refining furnace 1 is V (m.sup.3), and the amount of oxygen introduced in the fourth step is Q (Nm.sup.3/h), V/Q is adjusted in a range from 0.1 to 0.8. Here, the volume V of the furnace is the internal volume of the furnace body 2 before the cold iron source is charged.
[0048] When the cold iron source is almost melted in the melting step and the molten steel melted at the bottom of the furnace accumulates as molten metal, the fuel supply to the burner lance (burner 5) is stopped and switched to lance mode to introduce oxygen into the molten metal, and thereby impurities are removed. This is the refining step.
EXAMPLES
[0049] Using the melting/refining furnace having the internal volume of the furnace body is V1 (m.sup.3), the melting step (first step to fourth step) was performed. An exhaust gas analyzer and an exhaust gas flow rate measuring device (not shown in figures) were installed at the exhaust gas outlet of the melting/refining furnace so that the amount of carbon monoxide (CO) and hydrogen (H.sub.2) in the exhaust gas can be measured when oxygen gas is introduced into the furnace from the lance in the third step.
[0050] In the third step, the amount Q (Nm.sup.3/h) of oxygen introduced into the furnace from the lance 6 was changed using the oxygen flow rate adjusting mechanism, and the amount of carbon monoxide and hydrogen in the exhaust gas from the melting/refining furnace was measured. The results are shown in
[0051] The horizontal axis of
[0052] It was confirmed that when V.sub.1/Q was in a range from 0.1 to 0.8, the amount of CO and H.sub.2 generated decreased as the amount of the oxygen introduced increased. However, when V.sub.1/Q was more than 0.8, the concentrations of CO and H.sub.2 hardly changed. That is, it was understood that the amount of the oxygen introduced was insufficient, and that secondary combustion was not sufficiently performed. It was also confirmed that when V.sub.1/Q was less than 0.1 or more, even when the amount of the oxygen introduced was increased below 0.1, there was no significant change in the amount of CO and H.sub.2 generated.
[0053] A similar test was performed using the other melting/refining furnace (inner volume of the furnace body is V.sub.2). The results are shown in
INDUSTRIAL APPLICABILITY
[0054] The method of operating a melting/refining furnace and the melting/refining furnace of the present invention can be used for melting a cold iron source in an electric furnace.
EXPLANATION OF REFERENCE NUMERAL
[0055] melting/refining furnace (electric furnace) [0056] furnace body [0057] 2A furnace wall [0058] 2B furnace bottom [0059] 3 furnace lid [0060] 4 electrode [0061] 5 burner (burner lance) [0062] 5A through hole [0063] 6 lance [0064] 6A oxidant gas supply hole [0065] 10 pressure control valve [0066] 11 pressure gauge [0067] 12 flow rate controller [0068] 13 flow rate control valve [0069] 18 oxidant gas supply pipe [0070] 19 fuel fluid supply pipe [0071] 20 oxidant gas supply pipe [0072] 21 reflux water cooling jacket