Submitted:
24 March 2025
Posted:
26 March 2025
You are already at the latest version
Abstract

Keywords:
1. Introduction
1.1. Ferrochrome Pollution and Groundwater Contamination
1.2. Impact on Surface Water
1.3. Effects on Marine Coastal Ecosystems
1.4. Public Health Implications
1.5. Mitigation Strategies
2. Material and Methods
2.1. Suggested Methodology
2.1.1. Surface, Ground and Marine Water Sampling
2.1.2. Public Health Data Collection
2.1.3. Laboratory Analysis
2.1.4. Ecological Impact Assessment
2.1.5. Health Impact Assessment
2.1.6. Policy Recommendations
3. Results
3.1. Different Exposures for Surface and Groundwater Contamination
3.2. Agricultural Exposure
3.3. Risk of Detection
3.4. Risk of Contamination in Open Drainage
3.5. Different Detection Methods
3.6. Human Factors
4. Discussion
5. Conclusion
Author Contributions
Funding
Acknowledgments
Conflicts of interest
References
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| Compounds | Percentage | Hazardous effect |
| Mg | 18.1 | Respiratory Depression, Magnesium Poisoning, Cardiac Arrest, Gastrointestinal Issue, Bone Health Disruption |
| Cr | 14.5 | Respiratory Depression, Skin Irritation and Ulcers, Reproductive and Developmental Toxicity, allergies |
| Si | 11.5 | Lung Cancer, Silicosis, Respiratory Problems, Eye Irritation, Systemic Toxicity |
| Fe | 6.1 | Acute Poisoning, Hemochromatosis, Skin Irritation |
| Al | 12.8 | Respiratory Issues, Bone Diseases, Cognitive Impairment |
| Zn | 1.6 | Reduced Immune Function, Skin Irritation, Respiratory Issues |
| Ca | 1.6 | Hypercalcemia, Kidney Stones, Cardiovascular Issues, Reproductive Health Issues |
| Cu | 1.2 | Wilson's Disease, Hemolysis, Skin and Eye Irritation |
| Mn | 1.5 | Muscle Weakness and Fatigue, Behavioral Changes, Skin and Eye Irritation |
| Ni | 1.2 | Gastrointestinal Issues |
| Pb | 0.1 | Allergies |
| Ti | 0.5 | Respiratory Issues, Eye Irritation |
| Exposure pathway | Source | Contaminants | Impacts | Health risk |
|---|---|---|---|---|
| Irrigation Water | Discharge from ferrochrome industries | Chromium (Cr), Heavy Metals (Ni, Pb, Cd) | Bioaccumulation in crops | Consumption of contaminated food |
| Soil Contamination | Irrigation with polluted water | Hexavalent Chromium (Cr(VI)), Arsenic | Reduced soil fertility, altered pH | Dermal exposure, ingestion via crops |
| Groundwater Infiltration | Leaching from industrial effluents | Chromium, Sulfates, Fluorides | Toxic accumulation in soil and water | Contaminated drinking water, kidney damage |
| Crop Absorption | Uptake by plants | Chromium, Lead, Cadmium | Reduced yield, toxic residues in food | Long-term health issues |
| Livestock Contamination | Drinking contaminated water, eating crops | Chromium, Heavy Metals | Health issues in livestock, bioaccumulation | Indirect exposure through milk/meat consumption |
| Detection methods | Target contaminants | Advantages |
|---|---|---|
| Atomic Absorption Spectroscopy (AAS) | Chromium (Cr), Lead (Pb), Cadmium (Cd), Nickel (Ni) | High sensitivity, quantitative analysis |
| Inductively Coupled Plasma Mass Spectrometry (ICP-MS) | Heavy metals (Cr, Pb, Cd, Ni, As) | Ultra-trace detection, high accuracy |
| UV-Visible Spectrophotometry | Hexavalent Chromium (Cr(VI)) | Simple, cost-effective for Cr(VI) |
| X-ray Fluorescence (XRF) | Heavy metals, total chromium | Non-destructive, rapid analysis |
| Electrochemical Methods (e.g., Anodic Stripping Voltammetry) | Chromium, Lead, Cadmium | Portable, low-cost, field applications |
| Chromatographic Methods (e.g., ICP-OES, HPLC) | Chromium species (Cr(III), Cr(VI)), Organics | High specificity, accurate speciation |
| Biosensors | Chromium, Arsenic, Heavy metals | Fast, low-cost, eco-friendly |
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