Influence of Discontinuous Linear Deformation on the Values of Continuous Deformations of a Mining Area and a Building Induced by an Exploitation of Hard Coal Seam
Abstract
:Featured Application
Abstract
1. Introduction
2. Materials and Methods
3. Results
3.1. Inclinations
3.2. Curvatures
4. Discussion
4.1. Inclinations
4.2. Curvatures
5. Conclusions
- The next stages of an operation of the 1/II longwall in the 405/1 hard coal seam within a period of 2 months changes the primal values of inclinations and curvatures;
- the ground and buildings work in a different way;
- inclinations generally achieve greater values on the terrain’s surface than those in the building. It has a greater stiffness than the subsoil and is less susceptible to the deformation process, in the case of inclinations in the building and the groundwork independently;
- curvatures generally have greater values in the building than on the ground because they are closely connected to the subsoils in which foundations are located. A deformation process passes from the ground to the building; thus, in this case, they work together;
- an occurrence of a discontinuous linear deformation near the building reduces the values of inclinations and curvatures of the terrain’s surface and an object in the direction parallel to its longitudinal axis and increases the deformations in the direction perpendicular to it.
- despite the significant leaning of the building and its numerous minor damages, its technical condition can be described as satisfactory. However, minor ongoing repairs and continuous monitoring are necessary.
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Characteristic | The 404/3 Seam | The 404/5 Seam | The 405/1 Seam | ||
---|---|---|---|---|---|
Number of longwall | 1/II | 2/II | 1/II | 2/II | 1/II |
Time of exploitation | May 2013– December 2013 | August 2016–February 2017 | November 2015–June 2016 | October 2017–April 2018 | February 2019– September 2019 |
Depth of exploitation (m) | 410–500 | 500–575 | 430–510 | 500–600 | 495–605 |
Height of longwalls (m) | 4.0 | 3.4 | 3.3 | 3.5 | 1.7 |
Deviation (°) | 17.0 | 18.5 | 18.0 |
Section | 1–19 March 2019 | 2–3 April 2019 | 3–17 April 2019 | 4–10 May 2019 | ||||
---|---|---|---|---|---|---|---|---|
ΔH1 (mm) | d1 (m) | ΔH2 (mm) | d2 (m) | ΔH3 (mm) | d3 (m) | ΔH4 (mm) | d4 (m) | |
s09–s10 | −177 | 3.95 | −182 | 3.95 | −179 | 3.95 | −183 | 3.95 |
s10–s11 | 79 | 5.49 | 79 | 5.49 | 76 | 5.49 | 74 | 5.49 |
z09p–z10d | −161 | 3.68 | −160 | 3.68 | −162 | 3.68 | −164 | 3.68 |
z10d–z11d | −222 | 5.49 | −229 | 5.50 | −234 | 5.50 | −250 | 5.50 |
s56–s57 | 41 | 6.21 | 41 | 6.21 | 41 | 6.21 | 43 | 6.21 |
s57–s58 | 34 | 5.96 | 33 | 5.96 | 34 | 5.96 | 35 | 5.96 |
z56d–z57d | 130 | 6.22 | 129 | 6.22 | 125 | 6.22 | 127 | 6.22 |
z57d–z58g | 62 | 6.03 | 65 | 6.03 | 64 | 6.03 | 63 | 6.03 |
Section | 1–19 March 2019 | 2–3 April 2019 | 3–17 April 2019 | 4–10 May 2019 | |||
---|---|---|---|---|---|---|---|
T1 (mm/m) | T2 (mm/m) | ΔT1–2 (mm/m) | T3 (mm/m) | ΔT1–3 (mm/m) | T4 (mm/m) | ΔT1–4 (mm/m) | |
s09–s10 | −44.81 | −46.08 | −1.27 | −45.32 | −0.51 | −46.33 | −1.52 |
s10–s11 | 14.39 | 14.40 | 0.01 | 13.86 | −0.53 | 13.49 | −0.90 |
z09p–z10d | −43.75 | −43.48 | 0.27 | −44.02 | −0.27 | −44.57 | −0.82 |
z10d–z11d | −40.44 | −41.67 | −1.23 | −42.58 | −2.14 | −45.50 | −5.06 |
s56–s57 | 6.60 | 6.60 | 0.00 | 6.60 | 0.00 | 6.92 | 0.32 |
s57–s58 | 5.70 | 5.54 | −0.16 | 5.70 | 0.00 | 5.87 | 0.17 |
z56d–z57d | 20.90 | 20.74 | −0.16 | 20.10 | −0.80 | 20.42 | −0.48 |
z57d–z58g | 10.28 | 10.78 | 0.50 | 10.61 | 0.33 | 10.45 | 0.17 |
Sections | 1–19 March 2019 | 2–3 April 2019 | 3–17 April 2019 | 4–10 May 2019 | |||
---|---|---|---|---|---|---|---|
C1 (×10−3 1/m) | C2 (×10−3 1/m) | ΔC1–2 (×10−3 1/m) | C3 (×10−3 1/m) | ΔC1–3 (×10−3 1/m) | C4 (×10−3 1/m) | ΔC1–4 (×10−3 1/m) | |
s09–s10–s11 | 12.54 | 12.82 | 0.28 | 12.54 | 0.00 | 12.68 | 0.14 |
z09p–z10d–z11d | 0.72 | 0.39 | −0.33 | 0.31 | −0.41 | −0.20 | −0.92 |
s56–s57–s58 | −0.15 | −0.18 | −0.03 | −0.15 | 0.00 | −0.17 | −0.02 |
z56d–z57d–z58g | −1.73 | −1.63 | 0.10 | −1.55 | 0.18 | −1.63 | 0.10 |
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Orwat, J. Influence of Discontinuous Linear Deformation on the Values of Continuous Deformations of a Mining Area and a Building Induced by an Exploitation of Hard Coal Seam. Appl. Sci. 2023, 13, 3549. https://doi.org/10.3390/app13063549
Orwat J. Influence of Discontinuous Linear Deformation on the Values of Continuous Deformations of a Mining Area and a Building Induced by an Exploitation of Hard Coal Seam. Applied Sciences. 2023; 13(6):3549. https://doi.org/10.3390/app13063549
Chicago/Turabian StyleOrwat, Justyna. 2023. "Influence of Discontinuous Linear Deformation on the Values of Continuous Deformations of a Mining Area and a Building Induced by an Exploitation of Hard Coal Seam" Applied Sciences 13, no. 6: 3549. https://doi.org/10.3390/app13063549
APA StyleOrwat, J. (2023). Influence of Discontinuous Linear Deformation on the Values of Continuous Deformations of a Mining Area and a Building Induced by an Exploitation of Hard Coal Seam. Applied Sciences, 13(6), 3549. https://doi.org/10.3390/app13063549