Process for Calcining Mineral Rock in a Regenerative Parallel-Flow Vertical Shaft Furnace, and Furnace Used
20180283788 ยท 2018-10-04
Assignee
Inventors
Cpc classification
F27B1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B1/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P40/40
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
F27B1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27B1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Process for calcining mineral rock in a regenerative parallel-flow vertical shaft furnace, containing at least two shafts (1, 2) interconnected by a gas transfer channel (3), each shaft operating alternately in firing mode and in preheating mode, the firing mode comprising a combustion of fuel in the presence of air so as to obtain a firing of the rock to give calcined rock, an emission of combustion gases, and a passage of these gases from one shaft to the other by means of said channel (3), the preheating mode comprising a heat exchange between said rock and said combustion gases from said channel (3), this process additionally comprising an injection of supplementary air into said channel (3) with oxidation of unburnt products contained in the combustion gases passing through this channel.
Claims
1: Method for calcining mineral rock in a regenerative parallel-flow vertical shaft furnace, wherein at least two shafts are interconnected by a gas transfer channel, the method comprising the steps of: a loading of mineral rock at the top of the shafts, and an unloading of calcined mineral rock at the bottom of the shafts, each shaft operating alternately in firing mode and in preheating mode, with one shaft being in firing mode for a predetermined period of time while another shaft is in preheating mode, and inversely, with the firing mode comprising, in the presence of said mineral rock, a combustion of fuel in the presence of gas containing oxygen so as to obtain a firing of this rock to give calcined rock, an emission of combustion gases, and a passage of these combustion gases from the shaft in firing mode to the other shaft in preheating mode by means of said gas transfer channel, the preheating mode comprising a heat exchange between said mineral rock and said combustion gases from said gas transfer channel, with this method being characterised in that it further comprises an additional injection of gases containing additional oxygen into said gas transfer channel with oxidation of unburnt products contained in the combustion gases passing through this gas transfer channel.
2: Method according to claim 1, wherein the gas containing oxygen supplied to a shaft in firing mode is in the form of a gas containing primary oxygen, conveyed simultaneously to the fuel, and a gas containing secondary oxygen introduced at the top of this shaft through the rock to be fired.
3: Method according to claim 1, wherein said oxidation of unburnt products is carried out at an oxidation temperature that is high enough to allow for an oxidation of carbon monoxide and low enough to prevent a thermal degradation of the molecules of dinitrogen into atomic nitrogen.
4: Method according to claim 3, wherein said oxidation temperature is between 800 C and 1,300 C.
5: Method according to claim 1, wherein the quantity of additional oxygen injected into said gas transfer channel using said gas containing the additional oxygen is between 0.1 and 50 times the stoichiometric quantity of oxygen calculated based on the quantity of CO measured at the outlet of the furnace in the absence of this gas containing additional oxygen.
6: Method according to claim 1, wherein the gas containing the additional oxygen has at the time of the injection a temperature between ambient temperature and 400 C.
7: Method according to claim 1, wherein the gas containing the additional oxygen is air, oxygen-enriched air or oxygen.
8: Method according to claim 1, wherein the gas containing the additional oxygen contains at least one combustion catalyst.
9: Method according to claim 1, wherein said gas transfer channel is a crossover channel that directly connects one shaft to the other.
10: Method according to claim 9, wherein the gas containing additional oxygen is injected into the crossover channel at an equal distance from the shafts that it interconnects.
11: Method according to claim 9 wherein the fuel is conveyed into the shaft in firing mode by lances that produce parallel beams of streams of fuel that undergo the combustion and form lines of combustion gases that pass through the crossover channel, with an injection of the aforementioned gas containing additional oxygen being carried out on each one of these lines of combustion gas.
12: Method according to claim 1 wherein said gas transfer channel is formed from a crossover channel that connects peripheral channels arranged around each shaft in such a way as to allow an access to the combustion gases from each shaft in the crossover channel.
13: Method according to claim 12, wherein said injection of gas containing additional oxygen takes place in the crossover channel, in the peripheral channels or in both the crossover channel and the peripheral channels.
14: Method according to claim 1, wherein the furnace comprises three shafts and three gas transfer channels which each interconnect two of said aforementioned shafts, and wherein one shaft is in firing mode for a predetermined period of time while the other two shafts are in preheating mode.
15: A regenerative parallel-flow vertical shaft furnace for the production of calcined mineral rock, the furnace comprising at least two shafts interconnected by a gas transfer channel, with each one of said shafts comprising at least one device for supplying with fuel, at least one supply of gas containing oxygen for the combustion of the fuel, an inlet for the loading of mineral rock, and an outlet for the unloading of said calcined mineral rock produced, and a removal of combustion gases, said furnace being characterised in that it further comprises a source of gas containing additional oxygen and an injection device connected to this source of gas containing additional oxygen and arranged to inject this gas containing additional oxygen into said gas transfer channel.
16: Furnace according to claim 15, wherein the gas transfer channel is a crossover channel that directly connects one shaft to the other.
17: Furnace according to claim 15, wherein said gas transfer channel is formed from a crossover channel that connects peripheral channels arranged around each shaft in such a way as to allow an access to the combustion gas from each shaft in the crossover channel.
18: Furnace according to claim 16, wherein the aforementioned injection device comprises at least one straight perforated injection unit introduced into the crossover channel and supplied by said source of gas containing additional oxygen.
19: Furnace according to claim 18, wherein the crossover channel has a longitudinal axis (L) and said at least one straight perforated injection unit is placed transversely with respect to the longitudinal axis of the crossover channel.
20: Furnace according to claim 18, wherein said injection unit comprises one or several orifices oriented to inject the gas containing additional oxygen towards a top portion of the crossover channel.
21: Furnace according to claim 18 wherein said unit is introduced into the crossover channel by an opening that is equally distant from said shafts.
22: Furnace according to claim 16, wherein the crossover channel has a ceiling and a longitudinal axis (L) and the gas injection device containing additional oxygen comprises one or several openings provided in this ceiling of the crossover channel through which the gas containing additional oxygen can be supplied from said source of such a gas, said openings being located at an equal distance from the shafts and perpendicularly to this longitudinal axis.
23: Furnace according to claim 19, wherein the device for supplying with fuel comprises one or several series of one or several single-stream or multi-stream lances arranged in such a way as to produce parallel beams of streams of fuel in the corresponding shaft, with these beams being parallel to one another, with the streams of fuel of the various aforementioned beams being located in several planes parallel to the longitudinal axis (L) of the crossover channel.
24: Furnace according to claim 23, wherein said orifices of the injection unit or the openings in the ceiling of the crossover channel for the injection of the gas containing the additional oxygen are provided in said planes formed by the aforementioned beams.
25: Furnace according to claim 17, characterised in that the aforementioned injection device is arranged to inject gas containing additional air into the crossover channel, in the peripheral channels or both in the crossover channel and the peripheral channels.
26: Furnace according to claim 15, characterised in that it comprises three shafts and three gas transfer channels which each interconnect two of said aforementioned shafts, as well as an injection device for injecting gas containing additional oxygen into each one of said gas transfer channels.
Description
[0059] Other details and particularities of the invention shall appear in the description given hereinafter, in a non-limiting way, in reference to the annexed drawings.
[0060]
[0061]
[0062]
[0063]
[0064]
[0065]
[0066]
[0067] In
[0068] The shafts 1 and 2 of a regenerative parallel-flow vertical shaft furnace operate in alternation in a cycle with two steps: in a first step, the first shaft is used for firing when the second shaft is used for preheating and, inversely, in a second step, the second shaft is used for firing when the first shaft is used for preheating. The loading of the mineral rock is generally done in the middle of the cycle, at the same time as the switching of the fluid circuits from one shaft to the other allowing for the inverting of the flows of gas in the furnace. In
[0069] Such a furnace can, according to this invention, comprise, as shown in
[0070] Alternatively, if the reducing of the quantity of primary air is not possible, due to the fact in particular that the latter is required for the transport of the solid fuel, it is also possible to reduce the concentration in oxygen of this primary air by enriching it with a neutral gas (N.sub.2, CO.sub.2, etc.) or by substituting it with oxygen-depleted recycled flue gases.
[0071] Unlike the furnace according to
[0072]
[0073]
[0074] In
[0075] As shown in
[0076]
Comparative Example 1
[0077] A regenerative parallel-flow industrial furnace that has two rectangular shafts interconnected by a crossover channel allowing for the direct passage of the gases from one shaft to the other was used in standard conditions to produce quicklime. A fuel containing about 2% by weight of organic nitrogen, in relation to the total weight of the fuel, such as a mixture of wood sawdust and of wood waste (50/50) was used in this installation. In these standard conditions, in the shaft in firing mode, the flow rate of primary air (serving here for the transport of fuel) is 2,700 Nm.sup.3/h, the flow rate of secondary air is 5,526 Nm.sup.3/h and the flow rate of fuel is 1,790 kg/h. The limestone rock once fired is cooled thanks to a flow rate of cooling air of 4,990 Nm3 h. This installation allows for the firing of 311 tonnes of rock per day, which corresponds to 175 tonnes of fired product (quicklime) per day.
Comparative Example 2
[0078] In the regenerative parallel-flow furnace shown in comparative example 1, an incomplete combustion was produced in the shaft in firing mode thanks to a reduction in the supply of air into the latter, with respect to its standard operation. This reduction was obtained by reducing by about 12% by volume the secondary air flow injected, which means that the secondary air flow changed from 5,526 Nm.sup.3/h to 4,842 Nm.sup.3/h. A reduction in the concentration of the NOx in the flue gases of about 12% by volume was as such reached. It was however ensured that a temperature sufficient for carrying out the calcining of the rocks was maintained, i.e. a temperature greater than 900 C.
[0079] However, this reduction in the supply of air in the shaft in firing mode also resulted in a notable increase in the formation of unburnt products, such as carbon monoxide CO, able to deteriorate the energy output of the furnace and give rise to environmental problems following the emission thereof.
Example According to the Invention
[0080] A device for injecting additional air according to the invention was installed in the furnace shown in comparative example 2 in order to oxidise the unburnt products obtained following the incomplete combustion. The device for injecting additional air is such as shown in
[0081] The device for injecting additional air was dimensioned based on very critical conditions in terms of the content of CO. Indeed, it was considered that the maximum content of CO able to be reached at the outlet of the stack is 1% by volume with respect to a flue gas containing 11% by volume of oxygen (i.e. 12,500 mg of CO/Nm.sup.3 of flue gas), which is known to correspond to about 2% by gross volume of CO on the crossover channel. In practice, however, the content of CO is generally lower. Consequently, the stoichiometric quantity of additional oxygen actually required will be less, suggesting that the flow rate of additional air can be reduced. However, the existing device for injecting additional air imposes a minimum flow rate in order to provide a sufficient speed so as to obtain a good additional oxygen mixture in the flue gases.
[0082] In this example, the flow rate of additional air injected corresponds to a quantity of additional oxygen equivalent to 12 times the stoichiometric quantity.
[0083] In addition to the oxidation of the unburnt products before the exiting of the combustion gases from the furnace, oxidation that was carried out between 800 and 1,300 C., it was able to be observed that the reduction in NOx was maintained. A surprising effect of this invention furthermore consisted in the unexpected increase by 3% in the instantaneous productivity of the furnace. Indeed, despite the injection of additional air into the crossover channel, the decrease in the supply of air in the shaft in firing mode leads to a decrease in the load loss and therefore in the static pressure in this shaft, which then makes it possible to introduce a more substantial quantity of limestone rock in the preheating zone of this shaft and therefore to increase the production of the furnace.
[0084] The contents of nitrogen oxide NOx and of carbon monoxide CO were measured at the outlet of the stack (and expressed at 11% oxygen) for the three examples included hereinabove.
[0085] 1) Standard conditions (Comparative example 1).
[0086] 2) Reduction in the quantity of air in the shaft in firing mode, but without air intake in the flue (Comparative example 2).
[0087] 3) Reduction of the quantity of air in the shaft in firing mode and adding of additional air (flow rate=500Nm.sup.3/h) in the flue
Example According to the Invention
[0088]
TABLE-US-00001 TABLE 1 1 2 3 Content in NOx (mg/Nm.sup.3) 400 350 350 Content in CO (mg/Nm.sup.3) 100-200 500-800 100-200
[0089] This comparative table makes it possible to reveal the fact that a decrease in the supply of air in the firing shaft reduces the content of NOx in the gases emitted at the outlet of the furnace but unfortunately results in a substantial increase in the content of CO (Comparative example 2).
[0090] Moreover, when the additional air is injected into the crossover channel, the content of NOx remains decreased while the contents of CO identical to those obtained in the absence of incomplete combustion are again observed (Example according to the invention).
[0091] This invention therefore makes it possible to reduce the emission of NOx by 12.5% in relation to the standard conditions while still retaining identical contents of CO.
[0092] It is of course understood that this invention is not in any way limited to the embodiments described hereinabove and that many modifications can be made thereto without leaving the scope of the annexed claims.
[0093] It can for example be noted that the furnace according to the invention can be suitable for firing limestone rock in one shaft and dolomitic rock in another shaft. Note that only one type of rock is contained in a shaft. That is to say that if for example, the shaft in firing mode contains limestone rock, the shaft in preheating mode can contain limestone rock or dolomitic rock and inversely. This results in that during a cycle, quicklime and quick dolime can be produced simultaneously but in different shafts.