24-MMP-A6 Mining and the Environment · May 2015
Nivaar worked solution (AI-drafted; not reviewed by a licensed engineer)
EGBC National Exam — Mining and Mineral Processing Engineering, 09-MMP-A6 Mining and the Environment, 2015-May. 3 hours duration, open book (any non-communicating calculator permitted). FIVE questions constitute a complete exam paper: Questions 1 and 2 are MANDATORY, and THREE questions must be selected from the OPTIONAL Questions 3 to 6, with only the first three optional answers appearing in the answer book marked. Most questions require a full-sentence or bullet-point response.
Reference texts: BC Ministry of Energy, Mines and Low Carbon Innovation, Health, Safety and Reclamation Code for Mines in British Columbia (current edition) (permitting, reclamation and closure planning requirements); Canadian Dam Association (CDA), Dam Safety Guidelines (2013/2019 update) (dam classification, tailings dam consequence categories, dam safety review and inspection intervals); Global Industry Standard on Tailings Management (GISTM, 2020) (tailings governance, design and closure principles); Price, W.A., MEND Report 1.20.1, Prediction Manual for Drainage Chemistry from Sulphidic Geologic Materials (1997/2009) (acid-base accounting, NPR screening criteria, ARD prevention and treatment); International Network for Acid Prevention (INAP), Global Acid Rock Drainage (GARD) Guide (ARD prediction, prevention, treatment and waste rock encapsulation design); Government of Canada, Metal and Diamond Mining Effluent Regulations (MDMER, the current name for the exam's "MMER") under the Fisheries Act; Government of Canada, Impact Assessment Act (successor to the 2012 Canadian Environmental Assessment Act); Government of Canada, Canadian Environmental Protection Act, 1999 (National Pollutant Release Inventory); Mining Association of Canada, Towards Sustainable Mining Tailings Management Protocol; International Cyanide Management Institute, International Cyanide Management Code; ATSDR, Toxicological Profiles for polycyclic aromatic hydrocarbons, mercury, lead and cyanide.
Question text not reproduced: the examination questions are © Engineers and Geoscientists BC. Open the official past paper (linked at the top of this page) to read the question, then follow the worked solution below.
The humidity cell test is a kinetic (as opposed to static) geochemical characterization method: a crushed, sieved sample (typically 1–2 kg) is loaded into a laboratory cell and subjected to a repeating weekly cycle – commonly three days of dry air, three days of humidified air, then a flush with a fixed volume of deionized water on the seventh day – run continuously for a minimum of 20 weeks and often 40–52+ weeks for a defensible result. Each week's leachate is analyzed for pH, conductivity, acidity/alkalinity, sulphate and dissolved metals, building a time series rather than the single static number an acid-base accounting (ABA) test gives. The results are used to determine the RATE of sulphide oxidation and acid generation, to identify the lag time before net-acidic drainage begins as fast-reacting neutralizing minerals are consumed, and to track which metals mobilize first as pH drops – all direct inputs to sizing a closure cover, a water treatment plant, and a monitoring program. Its advantage is that it captures reactivity behaviour ABA cannot, since two samples with an identical NPR can have very different lag times and peak loading rates; its limitation is time and cost, since a defensible result takes many months to a year of continuous lab operation, and the small crushed sample may not fully represent full-scale particle-size and oxygen-diffusion effects.
The column test is the field-scale complement: a larger, less-crushed (often run-of-mine or coarse-crushed) sample is packed into a much larger column, typically metres rather than centimetres tall, and leached by percolating water downward – continuously or on a periodic irrigation schedule – to simulate infiltration through an actual waste rock pile rather than the tightly-cycled wet/dry regime of a humidity cell. Effluent collected at the base is analyzed on the same schedule over a comparable multi-month-to-year duration. Because the sample retains a more realistic particle-size distribution and pore structure, a column test better represents field-scale oxygen diffusion, preferential flow paths and physical armouring effects, which is its main advantage over the humidity cell for predicting full-scale pile behaviour. Its limitations are a larger footprint and sample volume requirement and a still-imperfect scale-up to a pile that may be tens of metres high.
Acid rock drainage from pyrite (FeS2) oxidation proceeds through three coupled reactions. The process begins with direct oxidation of pyrite by dissolved oxygen, releasing ferrous iron, sulphate and acidity into solution:
As pH falls, the second reaction – oxidation of ferrous iron to ferric iron – becomes rate-limiting; below about pH 4.5 it is strongly catalyzed by acidophilic bacteria such as Acidithiobacillus ferrooxidans, which can accelerate it by several orders of magnitude:
The ferric iron produced is itself a strong oxidant and attacks fresh pyrite directly, with no dissolved oxygen required – this third reaction makes the cycle self-sustaining (autocatalytic) once started, regenerating the Fe2+ consumed in Reaction 2 while releasing far more acidity per mole of pyrite than Reaction 1 alone:
The net effect of the coupled cycle is that a small initial charge of dissolved oxygen can drive a very large amount of continued pyrite dissolution through the Fe3+/Fe2+ shuttle, which is why ARD prevention strategies (Question 5) focus on excluding either oxygen or water – removing either reactant stalls the whole cycle even though Reaction 3 itself needs no free O2.
The neutralizing potential ratio is the ratio of a sample's Neutralization Potential to its Acid Potential, both expressed in kg CaCO3-equivalent per tonne: $NPR = NP / AP$. AP is normally derived from total or sulphide sulphur content via the Sobek stoichiometric factor, $AP = 31.25 \times \%S$, while NP is measured by acid titration (Sobek or modified Sobek method) of the sample's carbonate/hydroxide neutralizing minerals.
| Potential for ARD | Initial screening criteria | Interpretation |
|---|---|---|
| Likely | $NPR < 1$ | Neutralization Potential is insufficient to offset the sample's Acid Potential; acid drainage is expected once the limited available NP is exhausted (or promptly, for a fast-reacting, low-NP sample) – treat as acid-generating for waste-management planning without further testing. |
| Possible/uncertain | $1 < NPR < 2$ | NP and AP are close in magnitude; the static test alone cannot resolve long-term behaviour because it does not capture the relative REACTION RATES of acid-generating sulphides versus neutralizing carbonates. Kinetic testing (Question 2a) is recommended before this material is classified as safe for unrestricted disposal. |
| Non-acid generating | $NPR > 2$ | Neutralizing capacity comfortably exceeds acid-generating capacity under the static test; the material can generally be used as neutralizing cover/encapsulation stock (Question 5b) or placed without special acid-management handling, subject to confirmation on a representative subset by kinetic testing. |
Worked example. A waste rock sample assays 1.60% sulphide sulphur, giving Acid Potential $AP = 31.25 \times 1.60 = 50.0$ kg CaCO3-eq/t. If its titrated Neutralization Potential is $NP = 60.0$ kg CaCO3-eq/t, then $NPR = 60.0/50.0 = \boxed{1.2}$, classifying the sample as possible/uncertain under this exam's own criteria – a candidate for kinetic testing before it is committed to a NAG cover or an unrestricted waste dump (Question 5b).