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Abstract

Construction work on buildings covered by the revitalization program of historic urban development represents a special type of construction project in which, in the execution phase, difficult technical situations and other risk sources are being encountered. An important source of risk is the necessity to preserve a part of the historic substance, which results, among others, from the recommendations of the conservator, legal regulations or from the vision of the architect/investor. The risk is also associated with difficulties and complications in construction works resulting from the location of these objects in dense urban development. The aim of the article is to identify risk factors and reactions of contractors, i.e. applied risk management methods and techniques, based on the example of a complex of buildings constructed in the historic district of Krakow. The elimination of sources of risk, especially of a technical nature, requires the construction management to be highly skilled and experienced, to carefully prepare the construction work and to design additional solutions to ensure safety at work. The experience gained may serve as a basis for risk analysis and identification during the implementation of projects involving the use of an existing building and historic substance in areas subject to revitalization programs.

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Authors and Affiliations

A. Sobotka
A. Radziejowska
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Abstract

Stereotyp polskiego chłopa na furmance ciągniętej przez smętnego konia wciąż tłucze się w głowach wielu Polaków. Czy polska wieś rzeczywiście tak dziś wygląda? Jak wejście do Unii Europejskiej zmieniło postawy i świadomość rolników?
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Authors and Affiliations

Barbara Fedyszak-Radziejowska
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Abstract

In Poland, it often happens that construction objects are subject to demolition work for different reasons. Demolition, according the Construction Law, is defined as a type of construction works and, as such, represents a particular type of construction project. As in other construction projects, a very important phase, in addition to execution of the works, is to prepare, design and plan demolition works. Some demolition activities are covered by appropriate regulations and can be described as typical. On the other hand the technical side of demolition works depends on many factors such as: the type of building, its age, technical condition, type of construction, etc. This article covers the analysis of the stages and tasks in the preparatory phase of the building demolition. This work will also present a description of the tasks carried out during the demolition works based on the example of a historic tenement house located in Krakow. This analysis aims to identify implementation problems and sources of risk that may occur during this type of construction work.

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Authors and Affiliations

A. Sobotka
A. Radziejowska
J. Czaja
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Abstract

The stereotype of a Polish peasant riding a pitiful horse-drawn wagon still lingers in the minds of many Poles. Is that what rural Poland really looks like today? How has EU accession changed farmers' attitudes and awareness?
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Authors and Affiliations

Barbara Fedyszak-Radziejowska
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Abstract

The aim of the article is to analyze existing foreign experiences presented in the literature in the field of estimating demolition waste and their applicability in Poland condition. Using the case study method for more than a dozen objects, the authors prove the necessity to verify the suitability of the proposed models in relation to regional conditions (e.g. climatic conditions, local technologies, etc.). The amount of concrete waste from demolition of objects made in the analyzed technology is characterized by a low coefficient of variation, especially in the case of public facilities and is only 10%. However, in the case of residential buildings, the volatility was 16,7%. The calculated average index of concrete waste was compared with the two literature models. The results obtained differ from the values obtained from the models. Based on an analysis of the advantages and disadvantages of the selected models and their assumptions, a proposal has been formulated for the development of an effective tool for estimating demolition waste taking into account regional specific conditions together with the concept of sustainable construction. The focus was on waste from demolition of concrete objects.

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Authors and Affiliations

A. Sobotka
J. Sagan
A. Radziejowska
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Abstract

The article presents method of assessment of one of the three basic aspects of sustainable construction concerning social utility properties of residential buildings. The study was based on the recommendations of standards [1] and [2], on the basis of which the area of features characterizing the social aspect of buildings was determined. Additionally, the presented method includes criteria which are necessary for the assessment of this aspect, and which are not included in the normative guidelines. The presented method fits in with the current trend of sustainable construction. This method enables and facilitates the comparison of social utility properties in different residential buildings. It is also allows for the classification of buildings according to the degree to which they meet their social utility properties; that can be a practical tool to support the decision on the future of the building (i.e., the sequence of necessary refurbishments) or the decision to buy or sell the property by indicating its strengths and weaknesses. By developing a way to assess a comprehensive set of criteria, the proposed method allows you to quickly and easily assess the social quality of residential buildings. In addition, the proposed measures for individual criteria can easily be adapted to requirements in other countries. The proposed “star” classification can also be used as a universal scale for assessing the social quality index of buildings.
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Bibliography


[1] EN 15643-3, Sustainability of construction works – Assessment of buildings – Part 3: Framework for the assessment of social performance, 2012.
[2] EN 16309, Sustainability of construction works – Assessment of social performance of buildings – Calculation methodology, 2014.
[3] A. U.S. Environmental Protection, https://www.epa.gov/, 26.01.2018. [Online].
[4] C. o. t. E. Communities, “Action Plan for sustainable construction,” A Lead market Initiative for Europe, Bruksela, 2007.
[5] H. Daly, “Beyond Growth: The Economics of Sustainable Development,” 1996.
[6] s. EN 15643-1, Sustainability of construction works - Sustainability assessment of buildings – Part 1: General framework, 2011.
[7] H. Zabihi, F. Habib and L. Mirsaeedie, “Sustainability in Building and Construction: Revising Definitions and Concepts,” International Journal of Emerging Sciences, 2(4), pp. 570–578, December 2012.
[8] M. Bryx, Fundamentals of Real Estate Management, Warsaw: poltext, 2009.
[9] J. Arendalski, Durability and reliability of residential buildings, Warsaw: Arkady, 1978.
[10] P. Knyziak, “Analysis of the Technical State for Large-Panel Residential Buildings Using Artificial Neural Networks,” Wydawnictwo Politechniki Warszawskiej, January 2007.
[11] M. R. M. K. J. Miks L., “Assessment of the technical condition of older urban buildings as a base for reconstruction proposals,” Slovak, pp. 30–34, 03 2004.
[12] A. M. A. S. Langevine R., “Decision support tool for the maintenance management of buildings,,” Joint International Conference on Computing and Decision Making in Civil and Building Engineering, Montreal–Canada, 14–16 June 2006.
[13] K. Firek and J. Dębowski, “Influence of the mining effects on the technical state of the panel housing,” Technical Transactions. Architecture, pp. 275–280, 2007.
[14] A. Wodyński, Technical wear of buildings in mining areas, Cracow: Uczelniane Wydaw. Nauk.-Dydakt. AGH im. S. Staszica, 2007.
[15] M. Wójtowicz, “Durability of buildings in the light of Regulation No. 305/2011,” Building Materials, pp. 28–29, December 2012.
[16] J. Konior, “Technical Assessment of Old Buildings by Fuzzy Approach,” Archives of Civil Engineering 65(1), pp. 130–141, March 2019. http://dx.doi.org/10.2478/ace-2019-0009
[17] D. Caccavelli and G. H., “TOBUS – an European diagnosis and decision making tool for Office building upgrading Energy and Building,” 2002. [Online]. https://doi.org/10.1016/S0378-7788(01)00100-1
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[19] A. Kaklauskas, E. Zavadskas and S. Raslanas, “Mulivariant design and multiple criteria analysis of building refurbishemnt,” Energy and Buildings, pp. 361–372, 2005. http://dx.doi.org/10.1016/j.enbuild.2004.07.005
[20] T. Kasprowicz, “Identification analysis of the exploitation of building objects,” in Polish construction a year after joining the European Union. Selected technological and organizational problems, Gdańsk, 2005.
[21] Z. Orłowski and A. Radziejowska, “Model for assessing the utility properties of a building,” in Conference: People, Buildings And Environment, Kromeriz, 2014.
[22] A. Ostańska, “Revitalization programs of settlements with prefabricated buildings in Europe, a contribution to the development of Polish programs”, Przegląd budowlany, 3, 2010.
[23] BREEAM, https://www.breeam.com/, Building Research Establishment, 31.01.2018. [Online].
[24] CASBEE, http://www.ibec.or.jp/CASBEE/english/ Japan Sustainable Building Consortium, 31 01 2018. [Online].
[25] DGNB, http://www.dgnb.de/en/, German Sustainable Building Council, 31.01.2018. [Online].
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[27] N. Ardda, R. Mateus and L. Bragança, “Methodology to Identify and Prioritise the Social Aspects to Be Considered in the Design of More Sustainable Residential Buildings – Application to a Developing Country,” Buildings, 2018. http://dx.doi.org/10.3390/buildings8100130
[28] E. Radziszewska-Zielina, P. Czerski, Ł. Grześkowiak and K.-S. P. , “Comfort of use assessment in buildings with Interior wall insulation based on silicate and lime system in the context of the elimination of mould growth,” Archives of Civil Engineering, pp. 89–104, 2020. https://doi.org/10.24425/ace.2020.131798
[29] p. 6. Dz. U. Nr 75, Regulation of the Minister of Infrastructure regarding technical conditions that should be met by buildings and their location, 2002.
[30] Z. Orłowski and A. Radziejowska, “Model for assessing „accessibility” - the basic category in the evaluation of social performance of buildings according to standards PN-EN 16309+A1:2014-12,” Technical Transactions, 2017. https://doi.org/10.4467/2353737XCT.17.134.6885
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Authors and Affiliations

Aleksandra Radziejowska
1
ORCID: ORCID

  1. AGH University of Science and Technology in Cracow, Department of Geomechanics, Civil Engineering and Geotechnics, Av. Mickiewicza 30, 30-059 Cracow, Poland
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Abstract

Paper presents the issue related to the selection of slab formwork taking into account the criteria that are currently the most important The in the process of the construction project execution. The analysis included selected, modern system solutions, which significantly accelerate the tempo of reinforced concrete works and, as a consequence, increase the effectiveness of the construction project execution. The innovative system of drop heads, which the analysed slab formwork is equipped with, is offered by various formwork producers. The offered solutions, however, differ not only in the construction of the drophead itself, but also in the arrangement and variety of other system elements, as well as the scheme of their operation, which may ultimately significantly affect the effectiveness of their application. For that reason, the choice of formwork for specific buildings should be made from among carefully analysed several variants of the wide market offer. The paper presents the results of analysis and evaluation of formwork systems with dropheads according to the proposed methodology, including multi-criteria analysis.

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Authors and Affiliations

Aleksandra Radziejowska
ORCID: ORCID
Anna Sobotka
ORCID: ORCID
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Abstract

A comprehensive assessment of buildings in accordance with the concept of sustainable development requires their analysis in three economic, environmental and social aspects. J It is a multi-criteria assessment, which takes into account many factors and their significance for the purpose of this assessment. Due to the complexity of this assessment, it can be performed due to a particular aspect, and the result obtained is a component of the global quality indicator as an additive function. The article presents the results of research conducted in large-panel buildings (LPB) enabling their assessment due to the social aspect. It is particularly important in the assessment of residential buildings, and the existing large resources of LPB are the basis for choosing them for such assessment According to the PN-EN 16309 + A1: 2014-12 standard, during conducting a social assessment of buildings, six main categories should be taken into account, which include: accessibility, adaptability, health and comfort, impact on the neighborhood, maintenance and maintainability, safety and security. The presented data was obtained as a result of the analysis of the features of selected buildings from the “large panel” located in housing estates in Cracow and Jędrzejów using a computer application. It is based on a mathematical model that was developed as part of a doctoral dissertation.
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Bibliography


[1] L. Runkiewicz, B. Szudrowicz, H. Prejzner, R. Geryło, J. Szulc and J. Sieczkowski, “Diagnostics and modernization of large-panel buildings”. Vol. 1 and Part 2, Przegląd budowlany, 7–8, 9 2014.
[2] J. Sieczkowski and J. Szulc, “Three-layer walls in large-panel buildings,” Inżynier budownictwa, 10 2019.
[3] M. Wójtowicz, “Possibility of failure of the outer walls of multi-panel buildings - a real problem or a media sensation,” in XXV Konferencja Naukowo-Techniczna „Awarie Budowlane”, Szczecin-Międzyzdroje, 2011.
[4] M. Wójtowicz, “Durability of large-panel buildings in the light of research,” in XIII Konferencja naukowo-techniczna. Warsztat Pracy rzeczoznawcy budowlanego, Cedzyna, 2014.
[5] J. Szulc, “General technical condition of large-panel buildings in the aspect of historical systemic irregularities,” IZOLACJE, http://www.izolacje.com.pl/artykul/id2763,ogolny-stan-techniczny-budynkow-wielkoplytowych-w-aspekcie-historycznych-nieprawidlowosci-systemowych?p=4, 08.04.2019.
[6] A. Radziejowska, A method of assessing the social performance of residential buildings in the aspect of sustainable construction, Cracow, 2018.
[7] D. Walach, J. Sagan and M. Gicala, “Assessment of Material Solutions of Multi-level Garage Structure Within Integrated Life Cycle Design Process,” IOP Conference Series-Materials Science and Engineering. Volume: 245, 2017.
[8] A. Ajdukiewicz, “Aspects of durability and impact on environment in design of concrete structures,” Przeglad budowlany, pp. 20–29, 2 2011.
[9] A. Wodyński, Technical wear of buildings in mining areas, Kraków: Uczelniane Wydaw. Nauk.-Dydakt. AGH im. S. Staszica, 2007.
[10] J. Arendalski, Durability and reliability of residential buildings, Warszawa: Arkady, 1978.
[11] Knyziak, “A proposal for a new method for determining the technical wear of buildings,” in Problemy naukowo-badawcze budownictwa, Białystok, 2008.
[12] W. Drozd, “Methods of evaluation of technical condition of buildings in the aspect of their practical use,” Przegląd budowlany, pp. 43–47, 4 2017.
[13] E. Marcinkowska and P. Urbański, “Assessment of the technical degree of wear of residential buildings using artificial neural networks,” Ekologia w inżynierii procesów budowlanych. Konferencja naukowa, Lublin-Kazimierz Dolny, pp. 319–325, 21–24 5 1998.
[14] L. Miks, M. Radim, V. Mencl and J. Kosulic, “Assessment of the technical condition of older urban buildings as a base for recontruction proposal,” Slovac Journal of Civil Enginering, pp. 30–34, 2004.
[15] P. Knyziak, Analysis of the technical condition of prefabricated residential buildings using artificial neural networks, Warszawa, 2007.
[16] J. Rusek, Modeling the degree of technical wear of buildings in mining areas using selected methods of artificial intelligence, Kraków, 2010.
[17] P. E. O. PEO, “Structural Condition Assessments of Existing Buidlings and Designated Structures Guideline,” 11 2016 . [Online]. Available: http://www.peo.on.ca/index.php/ci_id/31399/la_id/1.htm
[18] J. Jaskowska-Lemańska, D. Wałach and J. Sagan, “Technical condition assessment of historical buildings – flowchart development,” INFRASTRUCTURE AND ECOLOGY OF RURAL AREAS, http://dx.doi.org/10.14597/infraeco.2016.4.4.132
[19] B. Nowogońska, "Method for predicting the technical condition of a residential building," Materiały budowlane, 8 2017. http://dx.doi.org/10.2478/ace-2019-0020
[20] P. Urbański, “Assessment of the degree of technical wear of a selected group of residential buildings using artificial neural networks,” in Zastosowania metod statystycznych w badaniach naukowych II, Kraków, 2003.
[21] No. 305 UE, Regulation No. 305/2011, 2011.
[22] Dz. U. Nr 75, Regulation of the Minister of Infrastructure on technical conditions to be met by buildings and their location, 2002, p. 6.
[23] EN 15643-1, Sustainability of buildings - Assessment of building sustainability – Part 1: General principles, 2011.
[24] ISO 15392, Sustainability in building construction — General principles, 2008.
[25] J. Konior, The impact of housing maintenance on the degree of wear of elements, 1997.
[26] D. Caccavelli and G. H., “TOBUS - an European diagnosis and decision making tool for Office building upgrading Energy and Building,” 2002. [Online]. https://doi.org/10.1016/S0378-7788(01)00100-1.
[27] B. Nowogońska, Selected factors determining the programming of renovation activities of buildings made in traditional technology, Zielonagóra, 2003.
[28] A. Kaklauskas, E. Zavadskas and S. Raslanas, “Mulivariant design and multiple criteria analysis of building refurbishemnt,” Energy and Buildings, pp. 361–372, 2005. http://dx.doi.org/10.1016/j.enbuild.2004.07.005.
[29] T. Kasprowicz, “Identification analysis of the exploitation of building objects,” in Polish construction a year after joining the European Union. Selected technological and organizational problems, Gdańsk, 2005.
[30] T. Truchanowicz, “The concept of methods for identifying the state of use of a building,” Prace Naukowe Instytutu Budownictwa Politechniki Wrocławskiej. Studia i Materiały Vol. 87, nr 18, pp. 353–360, 2006.
[31] M. Starzec, “Programming the operation of residential buildings. Problems of preparation and implementation of construction investments,” Puławy, 2008.
[32] M. Prystupa, “Hierarchy of legal and methodological conditions in the real estate valuation process,” Rzeczoznawca majątkowy, pp. 8–12, marzec 2013.
[33] Z. Orłowski and A. Radziejowska, “Model for assessing the utility properties of a building,” in Conference: People, Buildings And Environment, Kromeriz, 2014.
[34] A. Ostańska, “Revitalization programs of settlements with prefabricated buildings in Europe, a contribution to the development of Polish programs,” Przegląd budowlany, 3 2010.
[35] A. Ostańska, „Social research as a contribution to improving the built environment,” in Badania Interdyscyplinarne w Architekturze 1”, tom 1 „Problemy jakości środowiska w kontekście zrównoważonego rozwoju”, Gliwice, Wydział Architektury Politechniki Śląskiej, 2015, pp. 227–237.
[36] R. Bucoń, Decision model for the selection of variants for renovation or reconstruction of residential buildings, Lublin, 2017.
[37] E. Bolewińska, Engineering thesis: Social assessment of buildings from a large slab, 2019.
[38] K. Firek and J. Dębowski, “Influence of the mining effects on the technical state of the panel housing,” Czasopismo Techniczne. Architektura, pp. 275–280, 2007.
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Authors and Affiliations

Aleksandra Radziejowska
1
ORCID: ORCID
Anna Sobotka
1
ORCID: ORCID

  1. AGH University of Science and Technology in Cracow, Department of Geomechanics, Civil Engineering and Geotechnics, Av. Mickiewicza 30, 30-059 Cracow, Poland
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Abstract

Currently, more and more investments are carried out in areas with difficult ground conditions, where in addition there may be a high level of groundwater. Therefore, it is necessary to use technologies which ensure the safety of the building in the exploitation phase by, among others, ensuring appropriate leak-tightness of its underground part. The article focuses on presenting the application of watertight concrete system (WCS), also known as "white tub" technology, which is an effective way to protect the underground part of the building against the destructive effects of water. The aim of this paper is to present and analyze selected methods of securing the underground parts of erected buildings using the "white tub" technology. In this paper, the authors analyze and select the solution using a multi-criteria analysis. The presented method will be used on a selected object.
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Bibliography

[1] J. Bilcik, R. Sonnenschein, K. Gajdosova, “Design and execution of watertight concrete constructions”, Key Engineering Materials, 2016, vol. 691, no. pp. 209–219, 2016; DOI: 10.4028/www.scientific.net/KEM.691.209.
[2] R. Al-Rashed, M. Jabari, “Dual-crystallization waterproofing technology for topical treatment of concrete”, Case Studies in Construction Materials, 2020, vol. 13. DOI: 10.1016/j.cscm.2020.e00408.
[3] A. Radziejowska, A. Sobotka, “Comparative analysis of slab formwork of monolithic reinforced concrete buildings”, Archives of Civil Engineering, 2020, vol. 66, no. 1, pp. 127–141.
[4] M. Rokiel, “Zastosowanie betonu wodonieprzepuszczalnego w tzw. technologii białej wanny – cz. I – Inzynier Budownictwa”, [Online]. Available: https://inzynierbudownictwa.pl/zastosowanie-betonuwodonieprzepuszczalnego-w-tzw-technologii-bialej-wanny-cz-i/. [Accessed: 07 Jul. 2021].
[5] M. Rokiel, “Zastosowanie betonu wodonieprzepuszczalnego w tzw. technologii białej wanny – cz. II”, Inzynier Budownictwa, 2017, no. 2, pp. 75–79.
[6] A. Radziejowska, K. Zima, “Multicriteria analysis in selecting the optimal variant of solar system”, E3S Web of Conferences, 2016, vol. 10, DOI: 10.1051/e3sconf/20161000078.
[7] T. Saaty, Fundamentals of decision making and priority theory with the analytic hierarchy process. RWS Publications, 2000.
[8] PN-EN 1992-3:2008/NA:2010 – wersja polska. [Online]. Available: https://sklep.pkn.pl/pn-en-1992-3-2008-na-2010p.html. [Accessed: 02 Jun. 2021].
[9] PN-EN 206¸A1:2016-12 – wersja angielska. [Online]. Available: https://sklep.pkn.pl/pn-en-206-a1-2016-12e.html. [Accessed: 02 Jun. 2021].
[10] B. France, Warunki techniczne wykonania i odbioru robót budowlanych, czesc C Zabezpieczenia i izolacje, zeszyt 12. Czesci podziemne budynków wykonanych z betonu wodoszczelnego. Uszczelnianie miejsc newralgicznych, Warszawa: ITB, 2017.

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Authors and Affiliations

Aleksandra Radziejowska
1
ORCID: ORCID
Kazimierz Linczowski
1
ORCID: ORCID

  1. AGH University of Science and Technology in Cracow, Faculty of Civil Engineering and Resource Management, Department of Geomechanics, Civil Engineering and Geotechnics, Av. Mickiewicza 30, 30-059 Cracow, Poland
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Abstract

Environmental protection is one of the objectives of the implemented concept of sustainable development and circular economy. The construction industry and its products (building objects) have a large contribution in negative influences, therefore all actions limiting them are necessary. One way of doing this is to apply substitution to existing unfavourable solutions, both in terms of construction and materials as well as technology and organization. The aim of the article was to determine the key factors conditioning the use of substitution at each stage of the investment and construction cycle, leading to environmental protection. The research paid attention to the use of substitute recycled products. The defined factors were subjected to a SWOT analysis and then, using the DEMATEL method, cause-andeffect relationships were identified that determine development in the application of substitution in the environmental context of sustainable and closed-cycle construction. The analysis was carried out by using a summative, linear aggregation of the values of the position and relationship indicators.
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Authors and Affiliations

Anna Sobotka
1
ORCID: ORCID
Kazimierz Linczowski
1
ORCID: ORCID
Aleksandra Radziejowska
1
ORCID: ORCID

  1. AGH University of Science and Technology in Cracow, Faculty of Civil Engineering and Resource Management, Department of Geomechanics, Civil Engineering and Geotechnics, Av. Mickiewicza 30, 30-059 Cracow, Poland

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