The Potential and Usage of the Architectural Heritage of Mining Sites: Case Studies in the Locality of Rudňany, Slovakia
Abstract
1. Introduction
- What are the specifics and the usage potential of the mining objects?
- What is the potential for a conversion of the function and sustainability of the mining objects in the Rudňany locality?
2. Materials and Methods
3. Background of the Research—The Locality, History, and Heritage
4. Results
- Territory and environment;
- Architecture–construction;
- Manufacture–technology.
- Environment and landscape (the context of the structure and the environs is evaluated);
- Architecture (judged by the state of upkeep—accenting of evaluated elements, units, objects);
- Construction technologies (evaluated are originality, singularity, and construction identity);
- Construction and structural (preserved on the basis of constructional logic; originality and quality of construction substance are evaluated).
- Building history (considered is the documentation value of the preserved object from the standpoint of architectural development);
- Traditions of production and mining (considered is the documentation value of the preserved object from the standpoint of industrial and technical development);
- Social (considered is the social—societal dimension of the mining community life);
- Economic (considered is the stability of the preserved object on the basis of the assumption of its overall profitability).
4.1. Case Studies
4.1.1. The Šachta Mier/Mier Shaft
- -
- Stone functions focused on the documentation and on an experiential presentation of the history of mining and the life of the local society;
- -
- Functions of a flexible character will include input in real time with a focus on the present-day requirements of the locality (educational activities for the general public exploring nature and the local geology, exhibitions of local ethnic groups).
4.1.2. Nový Závod/New Factory
- -
- Stone functions—semi-public (apartment living, areas for organized sport, culture, education) and public (temporary accommodation, presentation of the history of ore refining and the life of the local society);
- -
- Functions of a flexible character—will be adapted at the appropriate time with a focus on the present requests of the locality: farmers’ markets, spaces for fairs, gastro and recreation/sports activities, community life.
5. Discussion
5.1. The Specifics and the Usage Potential of the Mining Objects
5.2. Conversion of the Function in the Context of Sustainability
- -
- Minimum excavation work and use of existing materials to the maximum extent;
- -
- Minimal interventions to bearing and surface constructions;
- -
- Use of existing technologies (heritage preservation) as traces of the original manufacturing functions and as artefacts;
- -
- Simple construction–technical solutions for the proposed functions.
5.3. The Feasibility Study
- Locality, environment, building, and genius loci;
- Architectonic concept (setting of the preservation level of the original character of the object, application of new form, extent of intervention, and building transformation);
- Building structure (usability and setting of the intervention level for the original structure);
- Identification of the manufacturing technology for the preservation of artefacts;
- Defining and spatially validating the design of new functions in the context of sustainability (Table 3).
- -
- Enlivening highland tourism and travel;
- -
- Overall visitor rates indirectly contribute to an area’s economic development;
- -
- Positive impact on the area of education;
- -
- Direct bearer of the mining reference to future generations;
- -
- Development of an infrastructure;
- -
- Development of specific activities on a local, regional, and to a degree, supra-regional level;
- -
- Recultivation and maintenance of the environment.
6. Conclusions
- To reflect in the new usages of the buildings the existing urban or countryside context. Regarding the site, during the original constructions, there was a relatively insensitive approach to the countryside and to the structure of the settlement, which, from the economic side of extraction, was an inevitable phenomenon.
- To take advantage of the spaciousness of the interior premises when combining the former and present functions—joining the old and the new. To conceive new functions on the principle of originality of representation in the locality and the region.
- To present the architectural solutions in such a way that expressive identity elements are preserved; to preserve to a maximum degree the technological artefacts and the spirit of the final day; to present them to the public within wide-reaching educational activities relating to mining and the region.
- To a maximum degree, preserve and make use of quality structural substances and details. To be very cautious in the area of the new appearance, to adapt the material expression of the architecture to the period of an object’s appearance.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Type of Attribute | Description of the Material Attributes (Physical Value F) | Value | Potential | Rate of Usage% | |
---|---|---|---|---|---|
Technology | T1 | Truss structure of the extraction tower—exterior, interior of the shaft | H, A, TP, SS | U | 100 |
T2 | Elevator cage transit | TP, SS | U | 100 | |
T3 | Control elements of vertical delivery | TP, A | U | 80 | |
Structure | S1 | Bearing construction of shaft and machine room spaces | H, SS | U | 95 |
S2 | Bearing construction of shaft and machine room roofs | H, SS | U | 90 | |
S3 | Interior constructional elements—service platform, tracks | TP, A | U | 90 | |
S4 | Interior constructional elements—winding machine anchor | TP, A | U | 85 | |
Ar. | A1 | Basic mass of shaft object with tower and machine room | H, A | U | 100 |
A2 | Architectural tectonics morphology | H | U | 70 | |
Land. | L1 | Existing greenery | M | U, R | 40 |
L2 | Track of water flow and elements of surrounding landscape | A, L | U | 95 | |
L3 | Negative elements–devastated surroundings | N | R | 0 |
Type of Attribute | Description of Mass Attributes (Physical Value) | Value | Potential | Rate of Usage% | |
---|---|---|---|---|---|
Technology | T1 | Remains of anchoring of electric motors in the floor space | SS | U, R | 25 |
T2 | Delivery corridor for raw materials | H, SS, TP | U | 100 | |
T3 | Ball mill elements | TP | R | 10 | |
T4 | Hoppers (constructional elements of the technology) | H, SS, TP | U | 100 | |
T5 | Water dams for flotation | SS | U | 30 | |
Structures | S1 | Material and shaping of roof trusses | H, A | U | 80 |
S2 | Material and shaping of truss columns | H, A | U | 100 | |
S3 | Material and shaping of handling area | TP | U | 100 | |
S4 | Inclined conveyor corridor—construction solution | H, TP | U | 100 | |
S5 | Roof sheathing construction material | M | U, R | 20 | |
S6 | Material of the outer shell construction | H | U, R | 50 | |
Archi. | A1 | Spatial and compositional framework of the “cascade” | H, A | U | 100 |
A2 | Architectural tectonics and morphology | H, A | U | 80 | |
A3 | Semantics of material—brick facade | H, A | U | 90 | |
Lands. | L1 | Existing greenery | M | U, R | 20 |
L2 | Existing outdoor water areas | L | U | 50 | |
L3 | Natural attractions in the wider countryside (pyramids)—positive impact | L | U | 100 | |
L4 | Negative elements, sludge (waste) | N | R | 0 |
The Šachta Mier/Mier Shaft | Nový Závod/New Factory | |||||||
---|---|---|---|---|---|---|---|---|
Function | % of Volume | Scope | % of Volume | Scope | ||||
1 | 2 | 3 | 1 | 2 | 3 | |||
Temporary accommodation | 0 | ○ | ○ | ○ | 15 | ○ | ○ | ■ |
Gastro | 5 | ■ | ■ | ○ | 15 | ○ | ■ | ■ |
Sport | 10 | ○ | ■ | ○ | 25 | ○ | ■ | ■ |
Retail and services | 10 | ■ | ■ | ○ | 5 | ○ | ■ | ○ |
Administration, community facilities | 20 | ■ | ○ | ○ | 15 | ○ | ■ | ■ |
Culture and education | 55 | ■ | ■ | ■ | 25 | ○ | ○ | ■ |
Šachta Mier/Mier Shaft | Nový Závod/New Factory | |||
---|---|---|---|---|
Area of Solution | Proposed Solutions | Specifics of Construction Modification | Proposed Solutions | Specifics of Building Modifications |
Relation of building and locality, exterior, landscape modification | New exterior modification, landscape modifications | Addressing the relationship of object and landscape, repair of water element. New: planting of greenery, exterior elements. | New exterior arrangement, landscape arrangement | Addressing the relationship of object and landscape, repair of water element. New: planting of greenery, exterior elements. Use of materials from demolition work |
Regeneration of the environment | Regeneration of the environment | |||
Modification of the terrain and tourist routes | Modification of terrain and tourist paths | |||
Architecture, concept | Free, variable layout | Adjustments for the new layout, retaining the shaft identity: accenting of extraction tower and suitable technological elements in machine room. | Free, variable layout | Adjustments for the new layout, retaining shaft identity: accenting of the production interior and the look of the object. Accenting of conveyor and hoppers |
Insertion of hygiene, service cores | Insertion of hygiene, service cores | |||
New concept for facade and interior design. | New concept for facade and interior design. | |||
Construction solutions | Preservation of intact bearing structures | Surface renovation of bearing structure, necessary material adaption, accenting of interesting details | Preservation of intact bearing structures | Surface renovation of bearing structure, necessary material adaption, accenting of interesting details |
Solution of cladding structures | Solution of cladding structures | |||
Addressing non-bearing elements | Addressing non-bearing elements | |||
Traces of original technologies | Preservation of parts of technological supply | Refurbishment of selected parts of the technology, necessary building repairs and adaption of elements to new concept | Preservation of parts of technologies of ore processing and treatment | Refurbishment of selected parts of the technology, necessary building repairs and adaption of elements to new concept |
Preservation of characteristic details of technology | Preservation of characteristic details of technology |
Risk | The Šachta Mier/Mier Shaft | Nový Závod/New Factory | Solution |
---|---|---|---|
Function | Usability of new functions as part of tourism influenced by social factors of the settlement | Usability of supra-regional functions as part of tourism by the influence of the site’s social factors | Variable disposal solutions for the possibility of changing functions |
Constructions | Unforeseen interventions to the construction in the case of allowing access to the underground shaft | Unforeseeable breakdowns of the original constructions (hidden faults in bearing structures) | Good construction diagnostics and possibilities to strengthen it; renovation |
Landscape | Degradation of the surroundings | Insufficient recultivation of the landscape in the vicinity of the site | Landscape protection; progressive arrangement of the nature in the wider environs |
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Ilkovič, J.; Ilkovičová, Ľ. The Potential and Usage of the Architectural Heritage of Mining Sites: Case Studies in the Locality of Rudňany, Slovakia. Buildings 2025, 15, 3468. https://doi.org/10.3390/buildings15193468
Ilkovič J, Ilkovičová Ľ. The Potential and Usage of the Architectural Heritage of Mining Sites: Case Studies in the Locality of Rudňany, Slovakia. Buildings. 2025; 15(19):3468. https://doi.org/10.3390/buildings15193468
Chicago/Turabian StyleIlkovič, Ján, and Ľubica Ilkovičová. 2025. "The Potential and Usage of the Architectural Heritage of Mining Sites: Case Studies in the Locality of Rudňany, Slovakia" Buildings 15, no. 19: 3468. https://doi.org/10.3390/buildings15193468
APA StyleIlkovič, J., & Ilkovičová, Ľ. (2025). The Potential and Usage of the Architectural Heritage of Mining Sites: Case Studies in the Locality of Rudňany, Slovakia. Buildings, 15(19), 3468. https://doi.org/10.3390/buildings15193468