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The analysis is based on Snell's law for reflection and refraction of an incident wave at the interface.
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These apparent effects of diffusion mechanism on tortuosities reflect the inaccurate use of number-averaged chord lengths when tracer reflections from random obstacles obey the Knudsen cosine law for diffuse reflection.
When dealing with diffractive beam-trees which include also one or more reflections, the condition is no longer sufficient for determining the location of the virtual source, as we must also preserve the Snell's law for the reflections inside the path.
The same law of reflection is followed for both sound and light, so that focusing a sound wave is equivalent to focusing a light ray.
Each facet is taken to be a perfect reflector, obeying the physical laws of reflection for dielectrics.
A reflective boundary interaction reflects the molecule according to the law of reflection.
Specular reflection is the reflection off of smooth or glossy surfaces in which an incoming ray is reflected into a single outgoing direction obeying the law of reflection.
The law of reflection used by Aristotle in Meteorologica iii.5 is incorrect.
In simple media, the reflection of light obeys the law of reflection and the transmission of light obeys Snell's law.
It is shown analytically that asymmetric (unequal mouth size) pores and, in general, pore structures that are asymmetric about their midsection are isotropic with respect to the sense of diffusion only if the diffuse law for the surface reflections is valid.
This experiment investigates the laws of reflection.
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