Mine safety dust and method of production
11021956 · 2021-06-01
Assignee
Inventors
Cpc classification
International classification
Abstract
A mine safety dust exhibiting improved dispersion in water. The rock dust includes dolomitic limestone particles which, when mixed at the mine site to form a slurry, stay in suspension during intermittent operation of spray machinery and with a reduced need for continuous mixing. The rock dust composition includes an inorganic salt that acts as a dispersant to improve dispersion of the rock dust in water and further acts as a deflocculant to keep the dust particles in suspension in the resultant slurry.
Claims
1. A mine safety dust comprising a composition of: pulverized dolomite having a particle size wherein 70% or more of the particles pass through a 200 mesh screen; and at least 2.0 grams of sodium chloride (NaCl) per pound of pulverized dolomite.
2. The mine safety dust of claim 1, comprising from 2.0 to 8.0 grams of NaCl per pound of pulverized dolomite.
3. The mine safety dust of claim 1, comprising 0.79 to 0.84 wt % NaCl in the pulverized dolomite.
4. The mine safety dust of claim 1 wherein the dolomite includes a magnesium content of at least 10% by weight.
5. The mine safety dust of claim 1, comprising a rodded density of between 78 and 90 lbs/ft3 per ASTM C29.
6. A method for forming a mine safety dust including: pulverizing dolomite to reduce the particle size; sieving the resultant particles through a 20 mesh sieve; sieving the resultant particles through a 200 mesh sieve; adjusting the pulverizing step until 70% or more of the particles pass through the 200 mesh sieve; and injecting into the pulverized and sieved material at least 2.0 grams of sodium chloride (NaCl) per pound of pulverized dolomite to enhance the dispersion of the mine dust in water.
7. The method of claim 6, wherein the NaCl comprises 0.79 to 0.84 wt % NaCl in the pulverized dolomite.
8. The method of claim 6, wherein the dolomite includes a magnesium content of at least 10% by weight.
9. The method of claim 6, wherein the dolomite comprises a rodded density of between 78 and 90 lbs/ft3 per ASTM C29.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
(1) Reference is made herein to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
(2)
(3)
DETAILED DESCRIPTION
(4) In accordance with the embodiment shown herein, the invention is a novel mine safety dust and a method for its production.
(5) Referring to
(6) A mine safety dust according to the invention can be produced of any sedimentary or metamorphic rock that is ground or pulverized to a desired particle size. Preferably the rock is limestone or marble. Most preferably the input rock material is dolomitic limestone. Dolomitic limestone is a sedimentary carbonate rock composed mainly of the mineral dolomite, wherein dolomite as used herein is defined as an anhydrous carbonate mineral composed of calcium magnesium carbonate with the formula CaMg(CO.sub.3).sub.2.
(7) Preferably the dolomitic limestone is ground or pulverized to a size such that 100 percent of the sieved material will pass through a sieve having 20 meshes per inch and 70 to 80 percent of which will pass through a sieve having 200 meshes per inch. The pulverizing step is adjusted to maintain the sieved product within this specification. The mineral particles of the resultant pulverized dolomitic limestone are of a desired round shape whereas particles of non-dolomitic limestone include a substantially flat profile.
(8) Deflocculant 16 is added to the pulverized rock material and mixed in the mixing step 14 until the deflocculant is evenly dispersed within the pulverized rock material. The resultant product exiting the mixing step is a pulverized dolomitic limestone with the deflocculant dispersed evenly therein.
(9) A preferred deflocculant according to the invention is sodium chloride (NaCl). The NaCl is preferably added to maintain a concentration of from 3.6 to 3.8 grams NaCl per pound of pulverized dolomitic limestone, which averages about 0.80 percent by weight in the final product.
(10) The resultant mine safety dust consisting of pulverized dolomitic limestone with 3.6 to 3.8 grams NaCl deflocculant per pound of pulverized dolomitic limestone, when mixed with water and agitated in the convention manner to form a slurry of mine dust, forms an enhanced mine dust slurry in which the mineral particles are maintained in a properly dispersed state for a longer period of time than slurries prepared from conventional mine safety dust. The salt also makes the slurry cake better when it dries.
(11) TABLE-US-00001 TABLE 1 Mine Dust Comparison: Sample A Sample B E. Dillon Element (wt %) (wt %) (wt %) CaO 55.49 43.79 30.24 Fe.sub.2O.sub.3 0.27 0.20 0.18 SiO.sub.2 2.06 2.08 1.45 Al.sub.2O.sub.3 0.55 0.67 0.33 MgO 2.02 4.91 20.81 S 0.20 0.33 0.12 NaCl 0.00 0.00 0.80 Density-rodded/loose 76.5/72 lbs/ft.sup.3 — 83.1/73.8 lbs/ft.sup.3
(12) Table 1 above lists the results of a chemical analysis of mine dust from three suppliers, including samples from two suppliers of mine dust (samples A and B) and from a sample of E. Dillon's mine dust. A mine dust according to the invention included 0.80 percent by weight of NaCl, as compared to 0 percent in samples A and B. The E. Dillon mine dust is a pulverized dolomite with a high magnesium content. The meaning of the term “high magnesium content” as used herein means a magnesium content of at least 10%. Dolomite is an anhydrous carbonate mineral composed of calcium magnesium carbonate, usually of the general chemical formula CaMg(CO.sub.3).sub.2. However, various deposits of dolomite on the earth's surface vary greatly in ratio of carbon to magnesium in the deposit. The E. Dillon dolomite is substantially high in magnesium content. As shown in Table 1, the E. Dillon mine dust is about 21% magnesium oxide versus about 2 to 5% magnesium in the comparative samples. The rodded and loose density of Sample A was determined and compared with the E. Dillon mine dust in accordance with ASTM C29. As shown in the last row of Table 1, the density of the E. Dillon mine dust was higher than the Sample A product, which can be attributed to the much higher ratio of magnesium to carbon in the E. Dillon dolomite versus the Sample A product. The rodded density per ASTM C29 is preferably between 78 and 90 lbs/ft.sup.3 in a mine dust according to the invention. More preferably the rodded density of the mine safety dust is between 80 and 88 lbs/ft.sup.3 per ASTM C29. Most preferably the rodded density of the mine safety dust is between 81 and 86 lbs/ft.sup.3 ASTM C29.
(13) More specifically, the invention describes a method for forming a mine dust that disperses easily in water and has a reduced tendency for agglomeration of particles in the resultant mix, which includes the steps of: (a) pulverizing dolomite having a high magnesium content; (b) sieving the dolomite to produce a mine safety dust wherein 70% or more of the particles are of 75 microns or smaller; and (c) injecting into the mine safety dust between 3.6 and 3.8 grams of sodium chloride (NaCl) per pound of dolomite to enhance the dispersion of the mine dust in water; and (d) packaging the product into containers for shipment to mines.
(14) The amount of NaCl added to the mine safety dust is preferably at least 2.0 grams of sodium chloride (NaCl) per pound of pulverized dolomite. More preferably the NaCl is added at a rate of between 2.0 and 8.0 grams of NaCl per pound of dolomite. Most preferably the NaCl is added at a rate of between 3.6 and 3.8 grams of NaCl per pound of pulverized dolomite, which is equivalent to 0.79 to 0.84 wt % NaCl in the pulverized dolomite. Preferably, the dolomite includes a magnesium content of at least 10%. More preferably, the dolomite includes a magnesium content of between 12 and 35%. Most preferably, the dolomite includes a magnesium content of between 15 and 30%.
(15) With reference to
(16) With reference to
(17) Referring to
(18) The description of the present invention has been presented for purposes of illustration and description, but is not intended to be exhaustive or limited to the invention in the form disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the invention. The embodiment was chosen and described in order to best explain the principles of the invention and the practical application, and to enable others of ordinary skill in the art to understand the invention for various embodiments with various modifications as are suited to the particular use contemplated.