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1

Bourke, Brian. Factors affecting the shear bond strength of orthodontic brackets to porcelain. Birmingham: University of Birmingham, 1997.

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2

Mohammad, Louay N., Mostafa A. Elseifi, Ramendra Das, and Wei Cao. Validation of the Louisiana Interlayer Shear Strength Test for Tack Coat. Washington, D.C.: Transportation Research Board, 2018. http://dx.doi.org/10.17226/25123.

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3

Mohammad, Louay N., Mostafa A. Elseifi, Ramendra Das, and Wei Cao. Validation of the Louisiana Interlayer Shear Strength Test for Tack Coat. Washington, D.C.: Transportation Research Board, 2018. http://dx.doi.org/10.17226/25458.

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4

Hanhijarvi, Antti. Computational optimisation of test specimen for planar shear strength tests of wood based panels. Espoo, Finland: VTT, Technical Research Centre of Finland, 1998.

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5

Crews, John H. Measurement of multiaxial ply strength by an off-axis flexure test. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1992.

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6

Crews, John H. Measurement of multiaxial ply strength by an off-axis flexure test. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1992.

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7

Sharma-Sayal, Seema K. The influence of bracket base design on shear bond strength of brackets bonded to bovine enamel. [Toronto: University of Toronto, Faculty of Dentistry], 1999.

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8

Choi, Sung Rak. Dependency of shear strength on test rate in SiC/BSAS ceramic matrix composite at elevated temperature. [Cleveland, Ohio: NASA Glenn Research Center, 2003.

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9

Caldwell, Richard E. Investigations into the factors affecting the shear bond strength of multiple component and single bottle dentin bonding systems to dentin. [Toronto: Faculty of Dentistry, University of Toronto], 2000.

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10

Mahal, Raj-Deep Singh. A standardized approach to determine the effect of thermocycling and long term storage on the shear bond strength of orthodontic brackets cemented to bovine enamel. [Toronto: Faculty of Dentistry, University of Toronto], 2000.

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11

Mital, Subodh K. Fiber pushout test: A three-dimensional finite element computational simulation. [Washington, D.C.]: NASA, 1990.

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12

Li, Jian. Simplified data reduction methods for the ECT test for mode III interlaminar fracture toughness. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1995.

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13

Riyanto, Djoko S. Comparative test methods for evaluating shear strength of structural lumber. 1996.

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14

Center, Langley Research, ed. Test methods for textile composites. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1994.

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15

Kliewer, Julie E. Test procedures for low-confining stress, multistage triaxial testing of compacted cohesive soils. 1992.

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16

Kliewer, Julie E. Test procedures for low-confining stress, multistage triaxial testing of compacted cohesive soils. 1992.

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17

McNabb, David H. Consolidation, compression, and shear strength of four western Oregon forest soils. 1990.

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18

Heck, Leanne Renee. Evaluation of the torsion test for determining the shear strength of structural lumber. 1997.

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19

P, Bansal Narottam, Gyekenyesi John P, and NASA Glenn Research Center, eds. Dependency of shear strength on test rate in SiC/BSAS ceramic matrix composite at elevated temperature. [Cleveland, Ohio: NASA Glenn Research Center, 2003.

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20

Childers, Sean A. The effect of surface conditioning on the shear bond strength of compomers to bovine and human primary enamel and dentin. 2002.

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21

Pan, Youguang. Bond strength of concrete patch repairs: An evaluation of test methods and the influence of workmanship and environment. 1995.

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