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Several researchers had studied the ionospheric incoherent scatter theory and obtained the similar expressions of incoherent scatter spectra (Evans 1969) in which one is listed as formula (6).
Such an approach could potentially enable the extraction of parameters not directly given by the existing analysis method (composition) or by the incoherent scatter theory at all (thermal electron velocity).
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Rayleigh scattering theory predicts a scattered power from nanoparticles P ∝ D, which would apply to microscopy modalities such as dark-field microscopy.
The optical properties, including the scattering (no absorption) and backscattering cross sections, of the fused silica nanosphere at the given concentration in the medium can be analytically predicted by the Mie scattering theory, and the angular dependent scattering pattern as shown in Fig. 1(A).
The scattering process can be modeled using a Mie scattering theory as described in the following paragraphs [ 4].
The single-scattering properties of spherical aerosol particles can be approximated using Mie scattering theory in radiative flux calculations.
According to the Mie scattering theory, the integral calculation for a single particle within the scattering angle was accomplished, and the relationship between the SS concentration and the intensity of 90° scattered light was worked out.
Based on the scattering theory we can deduce that the higher state is when a scatterer is trapped as opposed to when there is no scatterer.
In the case of the small angle transmission spectrum, scattered light not captured by the detector can be inferred using light scattering theory (in our case, the Mie theory) to deconvolute the spectrum into its scattering (Qsca) and absorption (Qabs) components.
The third involves two Hilbert space scattering theory [336].
Furthermore, the sample was analyzed based on the Mie scattering theory.
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