Fig. 1. Schematic of concrete block specimens with different arrangement of artificial slots
Fig. 2. Experimental setup for measuring the blast-induced acceleration
Fig. 3. Acceleration profiles for each blast cases
Fig. 4. 3D reconstructed images of the tested concrete block specimens
Fig. 5. Estimated fragmented volumes for the tested concrete block specimens
Fig. 6. Photographs of blasting debris for each experimental cases
Fig. 7. Particle distribution with CMPF curve for each experimental cases
Fig. 8. Vibration reduction ratio by different artificial slot arrangements
Fig. 9. 3D-DFPA simulation for Case 2 test
Fig. 10. The histogram of particle distribution for each tested cases
Fig. 11. Blast fragmentation by different artificial slot arrangements
Fig. 12. The corrected particle distribution with CMPF curve for each experimental cases
Fig. 13. Empirical design criteria for suitable artificial slot blasting
Table 1. Specification of the full-scaled concrete blocks
Table 2. Evaluated crater volume for each experimental cases
Table 3. Major parameters of particle distribution analysis result
Table 4. Calculation result of peak acceleration and vibration reduction ratio by different artificial slot arrangements
Table 5. Major parameters of particle distribution analysis result - Corrected
Table 6. Calculated parameters for artificial slot blasting design
참고문헌
- 오세욱, 민경조, 박세웅, 박훈, 노유송, 석철기, 조상호, 2018, 인공 자유면을 고려한 곤크리트 블록 발파에서의 충격하중 전파 특성 연구, 추계자원연합학술대회 논문집, 정선 강원랜드, 76.
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