This disclosure relates to a method of estimating the surface tension of coal and a method of producing coke.
Coke used as a blast furnace raw material for pig-iron production in blast furnaces preferably has high strength. This is because coke having low strength degrades in blast furnaces to inhibit gas permeability in blast furnaces, which hinders stable production of pig iron.
Coke is produced by carbonizing coal. Carbonization is a process of heating coal at a pyrolysis temperature or higher (about 300° C. or higher) in a non-oxidizing atmosphere. Coal that softens and melts at 350° C. to 600° C. in a carbonization process is preferably used as a raw material of coke. When softening and melting, coal powder or particles adhere to and fuse with each other to form lump coke.
To produce coke having high strength, coal particles preferably adhere well to each other. The surface tension of heat-treated coal (semicoke) is used as a physical property value to evaluate the adhesiveness of the coal.
Examples of the method of measuring the surface tension of coal include a capillary-rise method, a maximum bubble pressure method, a drop weight method, a pendant drop method, a ring method, a Wilhelmy method, an advancing/receding contact angle method, a tilting plate method, and a film flotation method. Since coal is composed of various molecular structures and thus expected to have uneven surface tension, the film flotation method in D. W. Fuerstenau: International Journal of Mineral Processing, 20 (1987), 153 or Japanese Patent No. 5737473 expected to evaluate the surface tension distribution is said to be the most reasonable measurement method.
The film flotation method is a technique based on the idea that pulverized sample particles placed in liquid and starting to sink from floating state have the same surface tension as the liquid have. Sample particles are dropped into liquids having various surface tensions, and the mass ratio of sample particles that float in each liquid is determined. The surface tension distribution is obtained from the result. The film flotation method can measure the surface tension of any coal, regardless of the type of coal such as hard coking coal, non- or slightly caking coal, anthracite, and heat-treated coal (semicoke) made by treating such coal with heat.
The film flotation method has a problem of taking a long time (about one day) to measure the surface tension of coal and is not effective in terms of time. The film flotation method also has a problem of a complicated process of measuring the surface tension, and only skilled measurers can stably measure the surface tension.
It could therefore be helpful to provide a method of easily estimating the surface tension of coal.
We thus provide:
The surface tension of coal can easily be estimated by carrying out the method of estimating a surface tension of coal. When the surface tension of coal can easily be estimated in this way, the estimated value of the surface tension can be used to investigate blending of coals, which enables production of coke with high quality.
Our methods will be described below through examples. We focused on coal components that soften and melt with heat (hereinafter reactives) and coal components that neither soften nor melt with heat (hereinafter inerts). First, the relationship between the surface tensions of the reactives and the inerts and the surface tension of coal will be described.
Since coal inerts are harder than reactives, the inerts tend to concentrate in coarse particles of coal after pulverizing. This tendency is used to prepare samples having different inert contents from the same brand of coal by pulverizing and sifting. The total inert content (hereinafter TI) of each of the samples having different inert contents prepared in this way is measured, and the samples are each treated with heat at a predetermined temperature to form semicokes. The TI is the total inert content defined in JIS M 8816 and indicates the proportion (vol %) of inerts contained in coal.
In this example, the coal of which the surface tension is to be estimated includes heat-treated coal, that is, semicoke. The method of estimating the surface tension of coal according to this example can be applied to coal without a heat treatment as well as semicoke. Since the surface tension of semicoke is particularly useful for predicting coke strength and producing coke with high strength, the method of measuring the surface tension of semicoke, which is heat-treated coal, will be described in this example. In this example, the semicoke is produced in the following (a) to (c):
With regard to the heating temperature for heating the coal, the coal is preferably heated to a temperature between 350° C. at which the coal starts to soften and melt and 800° C. at which coking is complete, based on the idea that the surface tension has an effect on adhesion between coal particles. However, in a range of heating temperatures of 350° C. to 800° C., the temperature that particularly contributes to adhesion is 350° C. to 550° C. which is a temperature of softening and melting, and the adhesion structure may be set around 500° C. For this, the heating temperature is particularly preferably 480° C. to 520° C., which is around 500° C., and the heating temperature is set to 500° C. in this example. Heating is preferably performed in an inert gas (e.g., nitrogen, argon, helium) atmosphere, which is unreactive with coal.
Cooling is preferably performed in an inert gas atmosphere, which is unreactive with coal. The heat-treated coal is preferably quenched at a cooling rate of 10° C./sec or more. The reason for quenching is to maintain a molecular structure in the reactive state, and the cooling rate is preferably 10° C./sec or higher at which the molecular structure may not change. Quenching may be performed by using liquid nitrogen, iced water, water, or an inert gas such as a nitrogen gas. Quenching is preferably performed by using liquid nitrogen.
The surface tension of the coal can be measured by using the film flotation method described in D. W. Fuerstenau: International Journal of Mineral Processing, 20 (1987), 153. That method can be used for both coal and semicoke made from the coal, and the surface tension distribution can be obtained by using a finely pulverized sample. The mean of the obtained surface tension distribution is defined as a representative value of the surface tension of the sample. The measurement of the surface tension of semicoke using the film flotation method is specifically described in JP '473.
We studied the relationship between γ100 and coal properties and found that γ100 shows a strong correlation with the mean maximum vitrinite reflectance (hereinafter RO) of coal. With TI and RO as main dominant factors having an effect on the surface tension of coal, it is determined whether the surface tension of coal can be estimated from the measured values of TI and RO. Table 1 shows the properties of the coals G to M, which are used in the determination. RO is an example physical property value representing a coal rank. Examples of physical property values representing coal ranks other than RO include the volatile matter of coal, the carbon content, and the re-solidification temperature in softening and melting. These physical property values all show a good correlation with R0. Thus, the volatile matter of coal, the carbon content, or the re-solidification temperature in softening and melting can thus be used as a dominant factor having an effect on the surface tension, instead of RO. These physical property values can be used as an explanatory variable in multiple regression analysis described below.
In Table 1, “log MF (log/ddpm)” is a common logarithmic value of the maximum fluidity (MF/ddpm) of coals measured by the Gieseler plastometer method described in JIS M8801. “RO (%)” is a mean maximum vitrinite reflectance of coals G to M in JIS M 8816. “TI (%)” is a total inert content (vol %) and calculated in accordance with Methods of microscopical measurement for the macerals for coal and coal blend in JIS M 8816 and formula (1) based on the Parr formula described in the explanation of the Methods:
Inert content (vol %)=fusinite (vol %)+micrinite (vol %)+(2/3)×semifusinite (vol %)+mineral matter (vol %) (1).
The “measured surface tension (mN/m)” is a surface tension (representative value) obtained by measuring semicokes made by treating coals G to M with heat at 500° C. in accordance with the film flotation method. The “estimated surface tension (mN/m)” is an estimated surface tension calculated by using the measured values of RO and TI and the regression equation including the surface tension (Y) as an objective variable and RO and TI as explanatory variables (X1, X2).
The coals in Table 1 are examples of coal commonly used as a coke raw material. Coal used as a coke raw material has an MF of 0 to 60000 ddpm (log MF: 4.8 or less), a RO of 0.6% to 1.8%, and a TI of 3 to 50 vol %. The method of estimating the surface tension of coal according to this example can be suitably used for coals in such ranges.
The regression equation including the surface tension as an objective variable and RO and TI as explanatory variables can be represented by formula (2):
Surface tension=a+b1×RO+b2×TI (2).
In formula (2), a, b1, and b2 are parameters of the regression equation.
In this example, the measured surface tensions and the measured values of RO and TI of different brands of coals G to L are subjected to multiple regression analysis to calculate the parameters of formula (2) and thus to obtain regression equation (3):
Estimated surface tension=42.805−3.123RO+0.0614TI (3).
In Table 1, the “estimated surface tension (mN/m)” is an estimated surface tension calculated by using regression equation (3). Coal M is not used to calculate the parameters of regression equation (3), but the estimated surface tension of coal M calculated by using regression equation (3) is substantially the same as the measured surface tension of coal M.
Samples having different TI contents are prepared by the above method using 3 brands (N, O, P) of coal. The samples are converted into semicokes according to the method including (a) to (c) described above under the same conditions except that only the heat treatment temperature is changed to 400° C. and 600° C. The surface tension of each semicoke is measured, and the relationship between TI and surface tension is determined in the same manner as in
As shown in
JP '473 also discloses that the surface tensions of semicokes prepared at heat treatment temperatures of 350° C. or higher and 800° C. or lower show the same tendency regardless of the type of coal. This indicates that our method of estimating the surface tension of coal can be used for semicokes prepared at a temperature of 350° C. or higher and 800° C. or lower as well as semicokes made by a heat treatment at 500° C. In other words, estimation of the surface tension of a coal treated with heat at a predetermined temperature of 350° C. or higher and 800° C. or lower can be done by using the regression equation obtained by multiple regression analysis using the data of surface tensions obtained by treating coals at the predetermined temperature.
In general, coal maceral analysis regarding TI, physical property values representing coal ranks such as Ro, and other parameters are widely used in business transactions for the purpose of expressing the characteristics of coal, and these parameters are analyzed and available. Therefore, as long as the surface tension of a coal can be estimated from the coal rank and the TI of the coal, the surface tension of the coal can be estimated without relying on skilled measurers, and the time for measuring the surface tension can be saved.
When regression equation (3) is determined in advance, the measurement of RO and TI of a coal of which the surface tension is to be estimated allows estimation of the surface tension of the coal. The surface tension of the coal can thus be estimated accurately, easily, and readily by carrying out the method of estimating the surface tension of coal according to this example. The strength of a coke made from a coal blend containing a mixture of coals with different surface tensions is lower than that of a coke made from a coal blend containing a mixture of coals with similar surface tensions. If the surface tension of coal can be estimated in this way, the estimated value of the surface tension can be used to investigate blending of coals. The use of a coal blend having the blending ratio set by the blending investigation to produce coke thus enables production of coke with high quality.
Number | Date | Country | Kind |
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2019-194864 | Oct 2019 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2020/038828 | 10/14/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2021/085145 | 5/6/2021 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4135983 | Kiritani | Jan 1979 | A |
9463980 | Fukada | Oct 2016 | B2 |
9850441 | Fukada | Dec 2017 | B2 |
10144891 | Shimoyama | Dec 2018 | B2 |
20130255142 | Dohi | Oct 2013 | A1 |
20150039242 | Fukada et al. | Feb 2015 | A1 |
20150040468 | Shimoyama | Feb 2015 | A1 |
20150047961 | Fukada | Feb 2015 | A1 |
20150075961 | Fukada | Mar 2015 | A1 |
Number | Date | Country |
---|---|---|
3 131 778 | Sep 2020 | CA |
1392222 | Jan 2003 | CN |
102890144 | Jan 2013 | CN |
109374479 | Feb 2019 | CN |
2 832 822 | Feb 2015 | EP |
2 985 602 | Feb 2016 | EP |
3 211 104 | Aug 2017 | EP |
552049 | Apr 1923 | FR |
2014-202711 | Oct 2014 | JP |
2014-218648 | Nov 2014 | JP |
5737473 | Jun 2015 | JP |
2640183 | Dec 2017 | RU |
201319239 | May 2013 | TW |
2013145677 | Oct 2013 | WO |
2013145678 | Oct 2013 | WO |
2013145679 | Oct 2013 | WO |
2016063317 | Apr 2016 | WO |
2020179576 | Sep 2020 | WO |
Entry |
---|
Examination Report No. 1 for Standard Patent Application dated Mar. 27, 2023, of counterpart Australian Patent Application No. 2020376541. |
Decision to Grant Patent dated Sep. 3, 2021, of counterpart Taiwanese Patent Application No. 109136837, along with a Concise Explanation of Relevance to Office Action in English. |
Office Action dated Oct. 28, 2023, of counterpart Chinese Patent Application No. 202080072430.8, along with a Concise Explanation of Relevance of the Office Action in English. |
D. Li, “The Application of Fuzzy Set Methods for Coking Coal Blending on Data Processing and Coal Storage Field Management in Kunming Steel,” Coal Quality Technology, No. 2, Mar. 31, 2015, along with an English translation. |
Office Action dated Oct. 27, 2022, of counterpart Russian Patent Application No. 2022110688, along with an English translation. |
M.A. Duchesne et al., “Slag density and surface tension measurements by the constrained sessile drop method,” Article in “Fuel,” V. 188, pp. 173-181, Jan. 2017. |
M.C. Williams et al., “A simple flotation method for rapidly assessing the hydrophobicity of coal particles,” International Journal of Mineral Processing, vol. 20, Issues 1-2, Jun. 1987, pp. 153-157 (First Page Preview). |
International Search Report dated Jan. 12, 2021 in counterpart International Application No. PCT/JP2020/038828. |
Written Opinion dated Jan. 12, 2021 in counterpart International Application No. PCT/JP2020/038828. |
Extended European Search Report dated Oct. 27, 2022, of counterpart European Patent Application No. 20882942.4. |
M. Nagayama et al., “Evaluation of Coal Compatibility Effect in Coke Strength by Surface Tension of Semi-coke,” ISIJ International, vol. 57, No. 6, pp. 989-995, Retrieved online on Feb. 25, 2022, Japan, in English. |
Official Action dated Dec. 15, 2023, of related U.S. Appl. No. 17/770,573. |
Official Action dated Mar. 5, 2024, of related U.S. Appl. No. 17/770,573. |
Official Action dated Feb. 14, 2024, of related U.S. Appl. No. 17/789,705. |
Number | Date | Country | |
---|---|---|---|
20220389326 A1 | Dec 2022 | US |