MCDM Applied to the Evaluation of Transitional and Post-Mining Conditions—An Innovative Perspective Developed through the EIT ReviRIS Project †
Abstract
:1. Introduction
2. Materials and Methods
2.1. Transitional Post-Mining Landscape Profiles’ Definition (TPMLP)
- Is the site an active mine?
- Does the site have a private entity responsible for the environmental liability?
- Are field works implemented on site for environmental control and remediation?
- Are there field works implemented for revitalisation and new land use?
- the starting point is an area that is not expected to have other mineral exploitation, meaning that from the point of view of terrain modifications it is in a static situation,
- the starting point is an area with active mineral exploitation, meaning that from the point of view of terrain modifications it is in a dynamic situation.
2.2. Topics’ Definition
2.3. Multiple Criteria Decision-Making Methods Applicable to ReviRIS Context
2.3.1. Technique for Order Preference by Similarity to Ideal Solution (TOPSIS)
- “Positive” distances, between each alternative to PIS alternative
- “Negative” distances, between each alternative to NIS alternative
2.3.2. Sequential Interactive Method for Urban Systems (SIMUS)
2.3.3. Simple Multi-Attribute Rating Technique Extended to Ranking (SMARTER)
3. Results and Discussion: ReviRIS Decision Process for PMLU
- Questions 1 and 2 helps in defining the situation of the site (static/dynamic or abandoned/inactive/active), and who take the responsibility to develop the process of mine reclamation which, in turn, reveals a significant part: the main stakeholders involved. This does not mean that all other types of possible stakeholders be disregarded, but instead means that those main stakeholders are the ones going forward with the process.
- Question 3 provides insight regarding the stage of completion of terrain modelling and implementation of engineering solutions which, in turn, allows for the level of detail for the revitalisation project,
- Question 4 indicates that the process is at the final stage. The main reason to use this methodology, at this stage, it to determine the entity(ies) that will be the final manager(s) for the monitoring of the environmental reclamation works and the manager(s) for the new specific land use.
- First stage—TPMLP definition and selection through the four conceptual questions already referred,
- Second stage—development of alternatives, definition of criteria based on topics, creation of spatial and non-spatial data, by a group of experts, to input into the IDM, and test of the model using the suitable method (TOPSIS or SIMUS); and
- Third stage—participatory process with all stakeholders involved where the alternatives and criteria are explained, and stakeholders, not only attribute their preferences regarding criteria using SMARTER, but are also involved in the decision process, observing the modeling result with TOPSIS or SIMUS, and collaborating in its sensitivity analysis.
- The first stage is the selection of the TPMLP, which consists of a simple description of the site using the four simple questions, that allows to know the stakeholders involved and their responsibilities. With this first step, the MCDA goal is better understood and is possible to start the development of alternatives.
- For the second stage, design the alternatives, a careful analysis regarding site’s intrinsic characteristics (local conditions), restrictions to future new land uses, integration with local, regional, and national spatial and non-spatial data is needed. This analysis with GIS data integration will provide the experts the information needed to develop grounded and meaningful alternatives, determining the set of criteria that better represents the problem, based on the topics, and attribute the correct performance values (data) into de IDM. After this problem structuring (MCDA stage), the situation has evolved to a stage of MCDM, where a decision is needed.
- The final stage is the participatory process that takes place involving all stakeholders and allowing them to include their preferences, by attributing weights to criteria, using SMARTER method. In the end, and after a sensitivity analysis, which is the stage where parameters are subject to changes to model different scenarios and understand the robustness of the results, all stakeholders and decision-makers are better prepared to make a decision.
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Q1 | Q2 | Q3 | Q4 | Main Category | Profile No. |
---|---|---|---|---|---|
No | No | No | No | Abandoned | 1 |
No | No | Ongoing | No | 2 | |
No | No | Completed | No | 3 | |
No | No | Completed | Ongoing | 4 | |
No | No | Completed | Completed | 5 | |
No | Yes | No | No | Not active | 6 |
No | Yes | Ongoing | No | 7 | |
No | Yes | Completed | No | 8 | |
No | Yes | Completed | Ongoing | 9 | |
No | Yes | Completed | Completed | 10 | |
Yes | Yes | No | No | Active | 11 |
Yes | Yes | Ongoing | No | 12 | |
Yes | Yes | Completed | No | 13 | |
Yes | Yes | Completed | Ongoing | 14 | |
Yes | Yes | Completed | Completed | 15 |
Topic | Description |
---|---|
Economics | Costs related to the implementation of the alternative, monitoring environmental and safety issues, time needed to develop such plans, the post-mining land use economic balance, and the funding opportunities or possibilities. |
Environmental | Is linked with the natural environment, such as atmospheric, aquatic, terrestrial and biological domains. These domains form the baseline to develop a characterisation study of the current state of the mine complex. |
Technical issues | Intends to include into the decisional process aspects related to the mine site itself and engineering. The main aspects are related to the mine physical characteristics, the measures that need to be taken to cope with the type and way of contamination, the characteristics of structures and facilities, the potential for circular economy, the terrain characteristics, and the stability and risk conditions of the mine complex area. |
Social | This topic relates to the economic development of local communities, future employment situation, community cohesion, social structure impact, regional culture and collective identity, fears and aspiration of local community, safety, health and well-being, land planning, infrastructures, environment, personal and proper rights, political and institutional stresses. |
Regional Development | This is a new topic brought to the discussion of PMLU and its inclusion derives from the need to add regional strategies, ambitions, and needs into the decisional process. Therefore, the elements accounted are the potential for agricultural, commercial, touristic, real state or other economic activities, as well as the regional strategy designed for each of those activities, which is linked with the regional legislations and legal frameworks regarding land management. The regional strategy for climate change adaptation also be considered, as well as the distance to local communities. |
Geoethics | This new topic intends to enable decision-makers develop a set of criteria that considers the local population needs, the natural potential, the knowledge gathered through years or decades of mining, the safety and health of the whole ecosystem (including humans) and how it interacts with the economic activities, whether through the promotion of culture and tourism or by the preservation of geological and mining heritage. |
Profiles No. | MCDA Goals | Methods | Participatory Stage |
---|---|---|---|
1, 6, and 11 | Analyse the technical solutions to be implemented in the field. | SIMUS | SMARTER for criteria’s weights definitionSIMUS to run the complete IDM |
2, 7, and 12 | Define a general objective of the future possible land use (ex.: agriculture, natural, real state…). | TOPSIS | SMARTER for criteria’s weights definitionTOPSIS to run the complete IDM |
3, 8, and 13 | Select the specific future PMLU (ex.: museum, hotel, resort, wheat plantations, corn plantations…) | SIMUS | SMARTER for criteria’s weights definitionSIMUS to run the complete IDM |
4, 9, and 14 | Final responsibilities: (1) monitoring of environmental reclamation; (2) managing of the new land use | TOPSIS | SMARTER for criteria’s weights definitionTOPSIS to run the complete IDM |
5, 10, and 15 | No need to develop a MCDA | ------------ | -------------- |
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Amaro, S.; Barbosa, S.; Ammerer, G.; Bruno, A.; Guimerà, J.; Orfanoudakis, I.; Ostręga, A.; Mylona, E.; Hitch, M.; Strydom, J. MCDM Applied to the Evaluation of Transitional and Post-Mining Conditions—An Innovative Perspective Developed through the EIT ReviRIS Project. Mater. Proc. 2021, 5, 22. https://doi.org/10.3390/materproc2021005022
Amaro S, Barbosa S, Ammerer G, Bruno A, Guimerà J, Orfanoudakis I, Ostręga A, Mylona E, Hitch M, Strydom J. MCDM Applied to the Evaluation of Transitional and Post-Mining Conditions—An Innovative Perspective Developed through the EIT ReviRIS Project. Materials Proceedings. 2021; 5(1):22. https://doi.org/10.3390/materproc2021005022
Chicago/Turabian StyleAmaro, Sandra, Sofia Barbosa, Gloria Ammerer, Aina Bruno, Jordi Guimerà, Ioannis Orfanoudakis, Anna Ostręga, Evangelia Mylona, Michael Hitch, and Jessica Strydom. 2021. "MCDM Applied to the Evaluation of Transitional and Post-Mining Conditions—An Innovative Perspective Developed through the EIT ReviRIS Project" Materials Proceedings 5, no. 1: 22. https://doi.org/10.3390/materproc2021005022
APA StyleAmaro, S., Barbosa, S., Ammerer, G., Bruno, A., Guimerà, J., Orfanoudakis, I., Ostręga, A., Mylona, E., Hitch, M., & Strydom, J. (2021). MCDM Applied to the Evaluation of Transitional and Post-Mining Conditions—An Innovative Perspective Developed through the EIT ReviRIS Project. Materials Proceedings, 5(1), 22. https://doi.org/10.3390/materproc2021005022