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Waves wave frequency

The quanta of the elastic wave energy are called phonons The themral average number of phonons in an elastic wave of frequency or is given, just as in the case of photons, by... [Pg.412]

This is not the case for stimulated anti-Stokes radiation. There are two sources of polarization for anti-Stokes radiation [17]. The first is analogous to that in figure B1.3.3(b) where the action of the blackbody (- 2) is replaced by the action of a previously produced anti-Stokes wave, with frequency 03. This radiation actually experiences an attenuation since the value of Im x o3 ) is positive (leading to a negative gam coefficient). This is known as the stimulated Raman loss (SRL) spectroscopy [76]. Flowever the second source of anti-Stokes polarization relies on the presence of Stokes radiation [F7]. This anti-Stokes radiation will emerge from the sample in a direction given by the wavevector algebra = 2k - kg. Since the Stokes radiation is... [Pg.1205]

Figure Bl.5.5 Schematic representation of the phenomenological model for second-order nonlinear optical effects at the interface between two centrosynnnetric media. Input waves at frequencies or and m2, witii corresponding wavevectors /Cj(co and k (o 2), are approaching the interface from medium 1. Nonlinear radiation at frequency co is emitted in directions described by the wavevectors /c Cco ) (reflected in medium 1) and /c2(k>3) (transmitted in medium 2). The linear dielectric constants of media 1, 2 and the interface are denoted by E2, and s, respectively. The figure shows the vz-plane (the plane of incidence) withz increasing from top to bottom and z = 0 defining the interface. Figure Bl.5.5 Schematic representation of the phenomenological model for second-order nonlinear optical effects at the interface between two centrosynnnetric media. Input waves at frequencies or and m2, witii corresponding wavevectors /Cj(co and k (o 2), are approaching the interface from medium 1. Nonlinear radiation at frequency co is emitted in directions described by the wavevectors /c Cco ) (reflected in medium 1) and /c2(k>3) (transmitted in medium 2). The linear dielectric constants of media 1, 2 and the interface are denoted by E2, and s, respectively. The figure shows the vz-plane (the plane of incidence) withz increasing from top to bottom and z = 0 defining the interface.
Millimetre wave Klyston (frequency multiplied) backward wave oscillator Mica polymer None Crystal diode Golay cell thermocouple bolometer pyroelectric... [Pg.60]

A wide variety of other nonlinear optical effects also have been demonstrated. According to equation 12, if two light beams having frequency CO and CO2 are combined in a material with a nonzero value of light waves of frequency + UJ2 and are produced. A combination of such effects, used... [Pg.13]

The field of microwave technology is expected to increase as better and cheaper microwave systems are developed. In particular, uses for 5800 and 2450 MHz and the millimeter wave frequencies await the development of inexpensive efficient sources of power at those frequencies. [Pg.346]

In the breakup regime, spray characteristics include film angle, film velocity and thickness, breakup length, breakup rate, surface wave frequency, wavelength, growth rate, and penetration distance. These quantities, however, are extremely difficult to measure on account of the very small size and rapidly changing features of disintegrating Hquid jets or films. [Pg.330]

CW Continuous wave or frequency sweep, the older, less sensitive, more time consuming basic technique of NMR detection... [Pg.266]

Ultrasonic absorption is a so-called stationary method in which a periodic forcing function is used. The forcing function in this case is a sound wave of known frequency. Such a wave propagating through a medium creates a periodically varying pressure difference. (It may also produce a periodic temperature difference.) Now suppose that the system contains a chemical equilibrium that can respond to pressure differences [as a consequence of Eq. (4-28)]. If the sound wave frequency is much lower than I/t, the characteristic frequency of the chemical relaxation (t is the... [Pg.144]

In Eq. (4-29) jc is the distance traveled by the wave, and a is the absorption coefficient. Sound absorption can occur as a result of viscous losses and heat losses (these together constitute classical modes of absorption) and by coupling to a chemical reaction, as described in the preceding paragraph. The theory of classical sound absorption shows that a is directly proportional to where / is the sound wave frequency (in Hz), so results are usually reported as a//, for this is, classically, frequency independent. [Pg.145]

Wellen-knderung, /. (wave) frequency shift--anzeiger, m. wave detector, cymoscope, wellenartig, a. wave-like, wavy, undulatory. [Pg.510]

Wave frequency (/) is determined from mud pump strokes per minute. [Pg.1069]

Ax = Amplitude of each discrete sine wave ft) = Frequency... [Pg.686]

To integrate equation (10.149) we must know how dn is related to v. Debye assumed that a crystal is a continuous medium that supports standing (stationary) waves with frequencies varying continuously from v = 0 to v = t/m. The situation is similar to that for a black-body radiator, for which it can be shown that... [Pg.573]

In the case were the arms are oriented at 45° from the x, y axes, the same equation holds but /i+ has to be replaced hy hx- If the incident light is a monochromatic plane wave of frequency Vopt, this time delay will appear as a phase shift between the aj-beam and y-beam ... [Pg.316]

C07-0101. Redraw the first light wave in Figure 7 3 to show a wave whose frequency is twice as large as that shown in the figure, but whose amplitude is the same. [Pg.496]

In the past five years, it has been demonstrated that the QELS method is a versatile technique which can provide much information on interfacial molecular dynamics [3 9]. In this review, we intend to show interfacial behavior of molecules elucidated by the QELS method. In Section II, we present the principle and the experimental apparatus of the QELS along with the historical background. The dynamic collective behavior of molecules at liquid-liquid interfaces was first obtained by improving the time resolution of the QELS method. In Section III, we show the molecular collective behavior of surfactant molecules derived from the analysis of the time courses of capillary wave frequencies. Since the... [Pg.239]

The complex wave frequency Q (= ico — F) is related to k via a dispersion relation. For an inviscid liquid, Lamb s equation is well-known as a classical approximation for the dispersion relation [10]... [Pg.240]

As reviewed above, there have been many QELS studies on liquid surfaces. However, until a few years ago, reports were scarce on molecular dynamics at liquid-liquid interfaces which used time courses of capillary wave frequency. Molecular collective behavior at liquid-liquid interfaces from a QELS study was first reported by Zhang et al. in 1997 [5]. [Pg.241]


See other pages where Waves wave frequency is mentioned: [Pg.123]    [Pg.728]    [Pg.1247]    [Pg.1445]    [Pg.1582]    [Pg.1718]    [Pg.552]    [Pg.552]    [Pg.195]    [Pg.53]    [Pg.53]    [Pg.341]    [Pg.135]    [Pg.154]    [Pg.337]    [Pg.146]    [Pg.461]    [Pg.248]    [Pg.73]    [Pg.272]    [Pg.344]    [Pg.290]    [Pg.141]    [Pg.103]    [Pg.438]    [Pg.7]    [Pg.7]    [Pg.239]    [Pg.240]    [Pg.241]   
See also in sourсe #XX -- [ Pg.147 ]




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Angular frequency of a wave, defined

Brain wave frequencies

Carrier-wave frequency

Complex wave frequency, capillary waves

Electromagnetic wave frequency

Four-wave mixing frequency domain

Frequency The number of waves

Frequency of a wave, defined

Frequency of electromagnetic wave

Frequency of waves

Frequency square-wave modulation

Frequency ultrasound waves

Frequency, capillary waves

Frequency, sound waves

Frequency, waves and

Harmonic frequencies 847 wave operators

High frequency approximations in the solution of an acoustic wave equation

High frequency electromagnetic waves

Linear Frequency Modulated Continuous Wave Radar

Measurement of Acoustic-Wave Device Frequency Response

Multiple frequencies wave generation

Radio frequency continuous wave

Radio-frequency waves

Single-frequency surface acoustic wave

Square-wave amplitude frequency

Square-wave frequency

Surface waves variation with frequency

Swept-frequency continuous-wave signal

Three-wave mixing processes doubling, sum and difference frequency

Time course, capillary wave frequency

Water waves frequency

Wave Height Frequency Distribution

Wave frequency

Wave frequency, light

Wave frequency, ultrasound parameter

Waves, electric frequency

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