T. Ramamurthy et Vk. Arora, STRENGTH PREDICTIONS FOR JOINTED ROCKS IN CONFINED AND UNCONFINED STATES, International journal of rock mechanics and mining sciences & geomechanics abstracts, 31(1), 1994, pp. 9-22
Most of the rotational approaches to the design of structures on or in
a rock mass are based on the strength response of the rock mass. Real
izing this important aspect, the present investigation was undertaken
to understand the strength response of jointed rocks. The objective wa
s achieved by simulating joints in intact isotropic rock cores in the
laboratory. Three materials, namely, plaster of Paris, Jamrani sandsto
ne and Agra sandstone were selected. The intact specimens of these mat
erials provided a wide range of compressive strength (sigma(ci) = 11.3
-110 MN/m2). A special technique was devised to develop joints varying
in number and inclination. In all, about 250 uniaxial compressive str
ength (UCS) tests and 1300 triaxial tests on jointed and intact specim
ens of these materials were conducted. Based on this extensive experim
entation, a joint factor J(f), has been evolved to account for the num
ber of joints per metre length, inclination of the sliding joint and t
he shear strength along this joint. This factor is found to be uniquel
y related to the ratio of compressive strength of jointed rock to that
of the intact rock irrespective of the type of rock. A strength crite
rion for jointed rocks is proposed and the parameters defining this cr
iterion can be evolved simply by knowing the joint factor, compressive
strength of intact rock and triaxial strength of intact specimens at
two convenient confining pressures. The empirical relations developed
have been verified with similar data for other jointed rocks and model
materials.