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1

Duba, A. G., W. B. Durham, J. W. Handin, and H. F. Wang, eds. The Brittle‐Ductile Transition in Rocks. Washington, D. C.: American Geophysical Union, 1990. http://dx.doi.org/10.1029/gm056.

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2

Horii, H. Brittle failure in compression: Splitting, faulting and brittle-ductile transition. London: The Royal Society, 1986.

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3

Zhang, Yun-Quan. The ductile-to-brittle transition in ferritic steels. Birmingham: University of Birmingham, 1995.

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4

Joyce, J. A. Ductile to brittle toughness transition characterization of A533B steel. Washington, DC: Division of Engineering, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1988.

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5

Joyce, J. A. Ductile to brittle toughness transition characterization of A533B steel. Washington, DC: Division of Engineering, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1988.

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6

G, Duba A., and Heard H. C. 1931-, eds. The Brittle-ductile transition in rocks: The Heard volume. Washington, D.C: American Geophysical Union, 1990.

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7

Zia-Ebrahimi, F. Ductile-to-brittle transition in steel weldments for arctic structures. Boulder, Colo: U.S. Dept. of Commerce, National Bureau of Standards, 1985.

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8

Zia-Ebrahimi, F. Ductile-to-brittle transition in steel weldments for arctic structures. Boulder, Colo: U.S. Dept. of Commerce, National Bureau of Standards, 1985.

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9

Zia-Ebrahimi, F. Ductile-to-brittle transition in steel weldments for arctic structures. Boulder, Colo: U.S. Dept. of Commerce, National Bureau of Standards, 1985.

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10

Zia-Ebrahimi, F. Ductile-to-brittle transition in steel weldments for arctic structures. Boulder, Colo: U.S. Dept. of Commerce, National Bureau of Standards, 1985.

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11

1945-, Joyce J. A., Naval Surface Warfare Center (U.S.), United States Naval Academy, and U.S. Nuclear Regulatory Commission. Office of Nuclear Regulatory Research. Division of Engineering Technology., eds. Application of fracture toughness scaling models to the ductile-to-brittle transition. Washington, DC: Division of Engineering Technology, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1996.

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12

T, Read D., and National Institute of Standards and Technology (U.S.), eds. Fracture behavior of a pressure vessel steel in the ductile-to-brittle transition region. [Washington, D.C.]: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1989.

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13

T, Read D., and National Institute of Standards and Technology (U.S.), eds. Fracture behavior of a pressure vessel steel in the ductile-to-brittle transition region. Boulder, Colo: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1989.

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14

Tanguy, Benoit. Ductile to Brittle Transition. Wiley & Sons, Incorporated, John, 2021.

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15

Durham, W. B., J. W. Handin, A. G. Duba, and H. F. Wang. Brittle-Ductile Transition in Rocks: The Heard Volume. Wiley & Sons, Limited, John, 2013.

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16

D'Onofrio, John L. The transition from brittle to ductile failure on polyethelene. 1987.

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17

Duba, A. G. The Brittle-Ductile Transition in Rocks: The Heard Volume (Geophysical Monograph). Amer Geophysical Union, 1990.

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18

Determination of the gaseous hydrogen ductile-brittle transition in copper-nickel alloys. [Marshall Space Flight Center, AL]: National Aeronautics and Space Administration, George C. Marshall Space Flight Center, 1985.

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19

Deformation mechanisms of NiAl cyclicly deformed near the brittle-to-ductile transition temperature. [Washington, DC]: National Aeronautics and Space Administration, 1993.

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20

Vogel, David L. Determination of the ductile to brittle transition temperature of platinum-aluminum gas turbine blade coatings. 1985.

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21

The effect of various metallurgical parameters on the flow and fracture behavior of polycrystalline NiAl near the brittle-to-ductile transition. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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22

The effect of various metallurgical parameters on the flow and fracture behavior of polycrystalline NiAl near the brittle-to-ductile transition. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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23

Tanaka, H. Phase separation in soft matter: the concept of dynamic asymmetry. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198789352.003.0015.

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In this article, we review the basic physics of viscoelastic phase separation including fracture phase separation. We show that with an increase in the ratio of the deformation rate of phase separation to the slowest mechanical relaxation rate the type of phase separation changes from fluid phase separation, to viscoelastic phase separation, to fracture phase separation. We point out that there is a physical analogy of this to the transition of the mechanical fracture behaviour of materials under shear from liquid-type, to ductile, to brittle fracture. This allows us to discuss phase separation and shear-induced instability of disordered materials including soft matter, on the same physical ground. Finally it should be noted that what we are going to describe in this article has not necessarily been firmly established and there still remain many open problems to be studied in the future.
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