| Literature DB >> 35565025 |
Ming Li1, Rujia Wang1, Gang Li2, Xinzhu Song1, Huaizhen Yang1, Huinan Lai1.
Abstract
Chemical dust suppression is an effective dust control technology. A dust suppressant component evaluation method that facilitates a complete selection of safe, efficient, and economical chemical materials has not been explored. Considering dust suppression performance, environmental safety, and cost-effectiveness of chemical dust suppressant technology, this study constructs a comprehensive evaluation index system of chemical dust suppressant performance, including the wetting performance, hygroscopic performance, bonding performance, annual cost per unit area, pH value of dust suppression solution, chemical toxicity, and chemical corrosion. Among them, the index characterizing the wetting performance of the solution is the sedimentation wetting time, which is determined by the dust sedimentation experiment; the index characterizing the hygroscopic performance of the solution is the evaporation stability time, which is determined by the evaporation experiment of the solution on the dust surface; the index to characterize the bonding performance of the solution is the surface wind erosion rate, which is determined by the wind erosion experiment of the solution on the dust surface; the toxicity of the solution is evaluated by the LD50 of the solution; the index to characterize the corrosion performance of the solution is the Q235 monthly steel corrosion rate, which is determined by the Q235 steel corrosion test. Corresponding evaluation parameters are determined including sedimentation wetting time, evaporation stabilization time, surface wind erosion rate; annual average use cost per unit area; solution pH value, chemical acute toxicity classification, monthly corrosion rate of Q235 steel, and corresponding standard test methods are also provided. In order to evaluate the comparability of the results, according to the specific requirements of the evaluation index system and the distribution characteristics of the measurement data, the data of each evaluation and detection index are standardized by linear transformation, range transformation and other methods, so that the obtained results are comparable. Considering the differences in the actual performance requirements of dust suppressants in different usage scenarios, the weights of evaluation indicators at all levels can be set independently and flexible. The experimental test data obtained through the example shows that: among the four chemicals selected to participate in the experiment, the comprehensive dust suppression performance score of Triton X-100 solution is in the poor-grade category. The comprehensive dust suppression performances of calcium chloride solution, water, and polyacrylamide solution scored high in the average-grade category. The comprehensive evaluation process is logically correct, and the results are consistent with the phenomena observed in the experiment, consistent with conventional understanding, and have strong credibility. This method can provide a standardized evaluation technique and test process for the comprehensive performance evaluation and comparison of chemical materials and dust suppressants.Entities:
Keywords: chemical dust suppression; dust pollution; dust suppression agent; evaluation method
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Year: 2022 PMID: 35565025 PMCID: PMC9105875 DOI: 10.3390/ijerph19095617
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 4.614
Figure 1Schematic diagram of comprehensive evaluation index system.
Figure 2Schematic diagram of sedimentation wetting time experiment.
Figure 3Schematic diagram of the stabilization time experiment.
Figure 4Schematic diagram of surface wind erosion rate experiment.
Technical specification for chemical toxicity identification.
| Toxicity Classification | Toxicity | LD50 (mg/kg) |
|---|---|---|
| Grade 6 | Extremely toxic | <1 |
| Grade 5 | Highly toxic | 1–50 |
| Grade 4 | Moderately toxic | 51–500 |
| Grade 3 | Slightly toxic | 501–5000 |
| Grade 2 | Practically non-toxic | 5001–15,000 |
| Grade 1 | Non-toxic | >15,000 |
Figure 5Monthly corrosion rate of Q235 steel experiment. (a) The experimental schematic diagram; (b) The experimental figure.
Figure 6Flowchart of comprehensive evaluation of optimized dust suppressant.
Figure 7Process diagram of evaluation parameter measurement experiment. (a) Distribution map of experimental data for sedimentation wetting time measurement; (b,c) Evaporation stabilization time measurement experimental phenomenon and the trend graph of the data changing with time.
Table of valuation parameter weight coefficients.
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| C | 0.2 | 0.2 | 0.2 | 0.1 | 0.05 | 0.05 | 0.2 |
Evaluation parameter data of several chemical materials for dust suppression.
| Purified Water | Calcium Chloride | Triton X-100 | Polyacrylamide | |
|---|---|---|---|---|
| Sedimentation wetting time (s) | 632.0 | 566.7 | 278.3 | 1257.6 |
| Evaporation stabilization time (min) | 540 | 580 | 610 | 510 |
| Surface wind erosion rate (%) | 2.265 | 2.177 | 3.931 | 1.359 |
| Annual average use cost per unit area (yuan) | 86 | 312 | 2184 | 585 |
| pH value of dust suppression solution | 7.0 | 6.5 | 7.3 | 6.7 |
| Acute toxicity classification of chemicals (mg/kg) | Grade 1 | Grade 3 | Grade 3 | Grade 2 |
| Monthly corrosion rate of Q235 steel (%) | 0.192 | 0.189 | 0.359 | 0.081 |
* indicate the reference values of the literature [17].
Figure 8The statistical figure of standard values of several chemical materials for dust suppression.
Comprehensive evaluation score of dust suppressant performance of several chemical materials.
| Chemical | Purified Water | Calcium Chloride | Triton X-100 | Polyacrylamide |
|---|---|---|---|---|
| Score | 54.00 | 53.51 | 48.25 | 63.31 |