137 results on '"Basu, Dipanjan"'
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2. List of contributors
3. Design of Drilled Shaft with Environmental Impact Considerations: A Parametric Study
4. Analysis of Laterally Loaded Large-Diameter Rigid Piles Considering Vertical and Horizontal Soil Displacements
5. Simplified Continuum Model for Laterally Loaded Rigid Piles and Poles Considering Vertical and Horizontal Soil Displacements
6. Correlation of Pressuremeter Test Results with SPT N Values and Liquidity Index for Cohesive Soil of Normal Calcutta Deposit
7. Effect of groundwater flow on thermal performance of SBTES systems
8. Serum levels of S-100 protein are directly proportional to the size, number, thickness and degree of cellularity of congenital melanocytic nevi
9. Discussion of “Energy-Based Analysis of Laterally Loaded Caissons with Large Diameters under Small-Strain Conditions”
10. A parametric study on deformation behaviour for design of braced excavation in soft clay
11. A Semi-Analytical Solution for Laterally Loaded Noncircular Piles in Elastic Soil
12. Modelling Geosynthetic Reinforced Three-Layered Soil System Under Monotonic Loads Considering Shear and Vertical Deformations of Layers
13. Supplementary Figure Legends from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
14. Supplementary Figure 3 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
15. Supplementary Figure 4 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
16. Supplementary Figure 5 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
17. Supplementary Figure 6 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
18. Supplementary Figure 6 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
19. Supplementary Figure 4 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
20. Supplementary Figure 2 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
21. Supplementary Figure 1 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
22. Supplementary Figure Legends from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
23. Supplementary Figure 5 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
24. Supplementary Figure 8 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
25. Supplementary Figure 7 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
26. Supplementary Figure 3 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
27. Supplementary Figure 8 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
28. Supplementary Figure 2 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
29. Supplementary Figure 7 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
30. Supplementary Figure 1 from Identification, Mechanism of Action, and Antitumor Activity of a Small Molecule Inhibitor of Hippo, TGF-β, and Wnt Signaling Pathways
31. Numerical investigation and estimation of active earth thrust on gravity retaining walls under seismic excitation
32. Sustainability in geotechnical engineering: what does it mean and why does that matter?
33. A Quantitative Framework for Sustainability and Resilience in Geotechnical Engineering
34. Dynamic analysis of beams vibrating on nonlinear poroelastic multi‐layered continuum
35. Effect of loading characteristics and specimen size in split Hopkinson pressure bar test on high-rate behavior of phyllite
36. Sustainable Earthquake Resilience with the Versatile Shape Memory Alloy (SMA)-Based Superelasticity-Assisted Slider
37. Behavior of Saturated Soils at Elevated Temperatures: A Review
38. Discussion on “The modified Vlasov model on a nonhomogeneous and nonlinear soil layer” by Volkan Isbuga, Mehmet Cerezci and M. Zulfu Asik
39. Importance of Non-stationarity in Sustainability and Resilience of Geo-Infrastructure
40. Effect of Design Parameters on Piled Rafts in Sand under Eccentric Triangular Loads
41. Time-Dependent Response of Rectangular Piled Rafts in Clayey Soils
42. Low-strain dynamic characterization of undisturbed Leda clay
43. Environmental impacts of drilled shafts in sand
44. Sustainable Geotechnical Engineering - A Research Perspective
45. Numerical Advances in Understanding the Behavior of Gravity Retaining Wall during Seismic Motions
46. A Simplified Settlement Prediction Method for Piled Rafts in Clay
47. Interaction of Beams with Consolidating Nonlinear Poroelastic Layered Soil
48. PVD-Aided Consolidation with Spatial Variations in Soil Properties and Initial Excess Pore Pressure
49. Estimation of Raft Settlement Based on Linear Elastic Finite Element Analysis
50. Dynamic analysis of soil-structure interaction shear model for beams on transversely isotropic viscoelastic soil
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