Relationships among Elastic Wave Velocities and Stress-Strain Responses in Mortar or Concrete Specimens under Uniaxial Compressive Load Elastic wave propagation properties of rock materials (mortar or concrete) under load (I)

It is well known experimentally that the elastic wave propagation velocity and its amplitude depreciate when the elastic waves encounter cracks in rocks and rocky materials such as concrete and mortar etc. According to various investigators, Gupta (1970), Ito, Omi and Kaneko etal., their observation...

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Published inTransactions of The Japanese Society of Irrigation, Drainage and Reclamation Engineering Vol. 1980; no. 86; pp. 42 - 50,a1
Main Authors KOYAMA, Shuhei, NAKAYA, Mitsuo, OKUNO, Hizuru
Format Journal Article
LanguageJapanese
Published The Japanese Society of Irrigation, Drainage and Rural Engineering 25.04.1980
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ISSN0387-2335
1884-7234
DOI10.11408/jsidre1965.1980.86_42

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Abstract It is well known experimentally that the elastic wave propagation velocity and its amplitude depreciate when the elastic waves encounter cracks in rocks and rocky materials such as concrete and mortar etc. According to various investigators, Gupta (1970), Ito, Omi and Kaneko etal., their observations showed that the propagation velocities and the amplitude in rock specimens under uniaxial compression are altered when the specimens deform. In using the ultrasonic pulsating method, however, little information concerning the observations of concrete or mortar specimens under uniaxial loading has been published. Therefore, in preparing the concrete and mortar specimens, we have attempted to clarify the relationship between the propagation velocity and the characteristics of the deformation in the specimens under the uniaxial compression. The static characteristics of the specimens are obtained from the stress-strain (longitudinal and transverse strain) curves, and the parameters (ΔεT and ΔεV) payed attention to the inelastic region with regard to the stress-strain produced, which are similar to the characteristics of dilatancy in solid rocks noted by Walsh, Scholz, Nur (1972), Brace et al. and Mogi etc. The variations of the incremental transverse strain (ΔεT) and volumetric strain (ΔεV) are suggested to the process from the microfracturing to the main failure in specimens under uniaxial loading.Therefore, the decrease in the longitudinal wave velocity due to incremental strains (ΔεT or ΔεV) can be explained by the wave propagation theory in the two-phase media with cracks based on Walsh's, and Kuster and Toksöz's expressions.
AbstractList It is well known experimentally that the elastic wave propagation velocity and its amplitude depreciate when the elastic waves encounter cracks in rocks and rocky materials such as concrete and mortar etc. According to various investigators, Gupta (1970), Ito, Omi and Kaneko etal., their observations showed that the propagation velocities and the amplitude in rock specimens under uniaxial compression are altered when the specimens deform. In using the ultrasonic pulsating method, however, little information concerning the observations of concrete or mortar specimens under uniaxial loading has been published. Therefore, in preparing the concrete and mortar specimens, we have attempted to clarify the relationship between the propagation velocity and the characteristics of the deformation in the specimens under the uniaxial compression. The static characteristics of the specimens are obtained from the stress-strain (longitudinal and transverse strain) curves, and the parameters (ΔεT and ΔεV) payed attention to the inelastic region with regard to the stress-strain produced, which are similar to the characteristics of dilatancy in solid rocks noted by Walsh, Scholz, Nur (1972), Brace et al. and Mogi etc. The variations of the incremental transverse strain (ΔεT) and volumetric strain (ΔεV) are suggested to the process from the microfracturing to the main failure in specimens under uniaxial loading.Therefore, the decrease in the longitudinal wave velocity due to incremental strains (ΔεT or ΔεV) can be explained by the wave propagation theory in the two-phase media with cracks based on Walsh's, and Kuster and Toksöz's expressions.
Author OKUNO, Hizuru
KOYAMA, Shuhei
NAKAYA, Mitsuo
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References 6) 伊藤一郎他2名: き裂の存在および伸展にともなう弾性波伝播特性, 第4回岩の力学シンポジウム講演集, pp.55-59 (1973
14) W.F.Brace et al.: Dilatancy in the Fracture of Crystalline Rocks, J.Geophys. Res., 71 (16), pp.3939-3953 (1966
2) 大見美智人: 一軸圧縮下における岩石の弾性波伝ぱ特性 (第2報), Vol.21, pp.84-94 (1971
3) 金子勝比古他3名: 岩石の破壊の進展に伴う弾性波伝播特性に関する研究 (第1報), 日本鉱業会誌94 [1080], pp.77-83 (1978
16) B.L.Meyers and J.L. Lott: Control of Cracking in Concrete, Chapter 2-Crack mechanism in concrete, ACI Committe 224, ACI Journal, 69 (12), pp.718-723 (1972
18) T.C. Y Liu, A.H. Nilson et al.: Stress-Strain Response and Fracture of Concrete in Uniaxial and Biaxial Compression, ACI Journal, 69 (5), pp.291-295 (1972
9) M. Nail Toksaz et al.: Velocities of Seismic Waves in Porous Rocks, Geophrsics, Vol.41, pp.621-645 (1976
1) 大見美智人: 一軸圧縮下における岩石の弾性波伝ぱ特性 (第1報), 熊本大学工学部研究報告, Vol.20, pp.63-73 (1971
12) 茂木清夫 (金森博雄編): 岩石力学と地震, 岩波講座地球科学8, 地震の物理, 岩波書店, pp.211-262 (1978
5) 金子勝比古他3名: 岩石の破壊の進展に伴う弾性波伝播特性に関する研究 (第3報), 日本鉱業会誌94 [1089], pp.791-796 (1978
17) 阿部司他1名: クラヅク状空隙に含まれる水分が岩石の弾性波速度に及ぼす影響, 日本鉱業会誌92 [1056], pp.73-78 (1976
10) J.B. Walsh: New Analysis of Attenuation in Partially Me-lted Rock, J.Geophys. Res., 74 (17), pp.4333-4337 (1969
15) W.F.Brace et al.: Electrical Resitivity Changes in Saturated Rocks during Fracture and Frictional Sliding, J.Geophys. Res., 73 (4), pp.1433-1445 (1968
7) 小林良二他1名: 圧縮破壊過程における岩石の弾性波速度に関する研究, 日本鉱業会誌93 [1067], pp.7-11 (1977
13) C.H. Scholz: Microfracturing and Inelastic Deformation of ock in Compression, J.Geophys. Res., Vol.73, pp.1417-1432 (1968
8) G.T. Kuster and M. Nafi Toksaz: Velocity and Attenuation of Seismic Waves in Two-Phase Media: Part 1, Theoretical Formulations, Geophysics. 39 (5), pp.587-606 (L974
11) 中谷三男他2名: 一軸圧縮下におけるモルタルの弾性波伝ば特性, 昭和53年度京都支部研究発表会講演要旨集, pp.136-137 (1978
19) 丹羽義次他2名: 三軸圧縮応力下におけるコソクリートの破壊過程, 土木論集185, pp.31-41 (1971
4) 井上博之他3名: 岩石の破壊の進展に伴う弾性波伝播特性に関する研究 (第2報), 日本鉱業会誌94 [1083], pp.323-328 (1978
References_xml – reference: 2) 大見美智人: 一軸圧縮下における岩石の弾性波伝ぱ特性 (第2報), Vol.21, pp.84-94 (1971)
– reference: 19) 丹羽義次他2名: 三軸圧縮応力下におけるコソクリートの破壊過程, 土木論集185, pp.31-41 (1971)
– reference: 16) B.L.Meyers and J.L. Lott: Control of Cracking in Concrete, Chapter 2-Crack mechanism in concrete, ACI Committe 224, ACI Journal, 69 (12), pp.718-723 (1972)
– reference: 17) 阿部司他1名: クラヅク状空隙に含まれる水分が岩石の弾性波速度に及ぼす影響, 日本鉱業会誌92 [1056], pp.73-78 (1976)
– reference: 4) 井上博之他3名: 岩石の破壊の進展に伴う弾性波伝播特性に関する研究 (第2報), 日本鉱業会誌94 [1083], pp.323-328 (1978)
– reference: 5) 金子勝比古他3名: 岩石の破壊の進展に伴う弾性波伝播特性に関する研究 (第3報), 日本鉱業会誌94 [1089], pp.791-796 (1978)
– reference: 11) 中谷三男他2名: 一軸圧縮下におけるモルタルの弾性波伝ば特性, 昭和53年度京都支部研究発表会講演要旨集, pp.136-137 (1978)
– reference: 12) 茂木清夫 (金森博雄編): 岩石力学と地震, 岩波講座地球科学8, 地震の物理, 岩波書店, pp.211-262 (1978)
– reference: 1) 大見美智人: 一軸圧縮下における岩石の弾性波伝ぱ特性 (第1報), 熊本大学工学部研究報告, Vol.20, pp.63-73 (1971)
– reference: 6) 伊藤一郎他2名: き裂の存在および伸展にともなう弾性波伝播特性, 第4回岩の力学シンポジウム講演集, pp.55-59 (1973)
– reference: 15) W.F.Brace et al.: Electrical Resitivity Changes in Saturated Rocks during Fracture and Frictional Sliding, J.Geophys. Res., 73 (4), pp.1433-1445 (1968)
– reference: 18) T.C. Y Liu, A.H. Nilson et al.: Stress-Strain Response and Fracture of Concrete in Uniaxial and Biaxial Compression, ACI Journal, 69 (5), pp.291-295 (1972)
– reference: 14) W.F.Brace et al.: Dilatancy in the Fracture of Crystalline Rocks, J.Geophys. Res., 71 (16), pp.3939-3953 (1966)
– reference: 10) J.B. Walsh: New Analysis of Attenuation in Partially Me-lted Rock, J.Geophys. Res., 74 (17), pp.4333-4337 (1969)
– reference: 9) M. Nail Toksaz et al.: Velocities of Seismic Waves in Porous Rocks, Geophrsics, Vol.41, pp.621-645 (1976)
– reference: 8) G.T. Kuster and M. Nafi Toksaz: Velocity and Attenuation of Seismic Waves in Two-Phase Media: Part 1, Theoretical Formulations, Geophysics. 39 (5), pp.587-606 (L974)
– reference: 3) 金子勝比古他3名: 岩石の破壊の進展に伴う弾性波伝播特性に関する研究 (第1報), 日本鉱業会誌94 [1080], pp.77-83 (1978)
– reference: 7) 小林良二他1名: 圧縮破壊過程における岩石の弾性波速度に関する研究, 日本鉱業会誌93 [1067], pp.7-11 (1977)
– reference: 13) C.H. Scholz: Microfracturing and Inelastic Deformation of ock in Compression, J.Geophys. Res., Vol.73, pp.1417-1432 (1968)
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Snippet It is well known experimentally that the elastic wave propagation velocity and its amplitude depreciate when the elastic waves encounter cracks in rocks and...
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Subtitle Elastic wave propagation properties of rock materials (mortar or concrete) under load (I)
Title Relationships among Elastic Wave Velocities and Stress-Strain Responses in Mortar or Concrete Specimens under Uniaxial Compressive Load
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