Concept explainers
The temperature distribution in laser-irradiated materials is determined by the power, size, and shape of the laser beam, along with the properties of the material being irradiated. The beam shape is typically Gaussian, and the local beam irradiation flux (often referred to as the laser fluence) is
The x- and y-coordinates determine the location of interest on the surface of the irradiated material. Consider the case where the center of the beam is located at
A shape factor for Gaussian heating is S = 27112%, where
Want to see the full answer?
Check out a sample textbook solutionChapter 4 Solutions
Fundamentals of Heat and Mass Transfer
- A furnace with an aperture of 30 mm diameter and emissive power of 4x10^5 W/m^2 is used to calibrate a heat flux gage having a sensitive area of 2x10^-5 m^2At what distance, measured along a normal from the aperture, should the gage be positioned to receive irradiation of 1000 W/m^2 ? If the gage is tilted off normal by 20^o what will be its irradiation?arrow_forwardPlease helparrow_forwardA laser contains a Ti:sapphire rod of length 5mm and composed of a material with n=1.76 and n2=1x10-19m2 w-1 The FWHM (intensity) beam diameter is 100µm, the average intra-cavity laser power is 8W, the pulse duration is 53fs and the pulse repetition frequency is 64MHZ. By considering the optical Kerr effect, by what distance (in nm) does the center of the beam lag behind the FWHM points after propagating the length of the rod?arrow_forward
- The sun is the only star whose size we can easily measure directly; astronomers therefore estimate the sizes of other stars using Stefan's law. The spectrum of the star Betelgeuse, plotted as a function of energy, peaks at a photon energy of 0.8 eV, while Betelgeuse is approximately 10,000 times as luminous as the sun. How does the radius of Betelgeuse compare to the sun's radius? Why is Betelgeuse called a "red supergiant"?arrow_forwardRj gandhiarrow_forwardLight has a wavelength of 320 nm. What is the energy of a photon of this light? Given:c=2.998 x 10 8 m/s; h-6.626x 10-34 J.s* O 3.42 10-19 J O 7.21 * 10-18 J O 3.67 * 10-18 J O 1.28 * 10-19 J O 6.21 10-19 J For which of the following transitions does the light emitted have thearrow_forward
- 4) when the fine structure spectrum of a two-electron helium atom is exomined, the averoge angles measured for I st order diffraction are os Dollows: Day = 17.58° for a green , O av = 16.87° for a blue %3D ノ 15.50° for 2 purple Calculote the wavelength of each spectral tronsition in terms of Angstrom (A), using Bragg 's law of diffroction, (The gating constant of the diffraction grating is 1684 nm for this experiment)arrow_forwardA spherical radiator has a radius of 3ft and emissivity of 0.5. If radiates 6000 Btu/hr of heat at 3000R, what is the temperature of a surface affected by its radiation?arrow_forwardWavelength (um) Refractive index in water 2.0 1.1 × 10-3 2.89 x 10-4 9.56 × 10-4 3.17 x 10-3 What are the 2.2 2.4 angles of refraction when 2.6 light enters and exits a water droplet, forming a rainbow in the A case of non- Li-r visible 2.0 - 2.6 um microwaves 'B 180°-2r (First order rainbow)arrow_forward
- Optical Fiber The Rayleigh scattering coefficient for a silica SMSI- fiber at a wavelength of 0.80 µm is 0.46 /km. The fiber has a refractive index of 1.6 and a numerical aperture of 0.14. When a light pulse of 60 ns duration at a wavelength of 0.80 um is launched into the fiber, calculate the level in dB of the back scattered light compared with the Fresnel reflection from a clean break in the fiber. It may be assumed that the fiber is surrounded by air.arrow_forwardProblem 2: (a) Consider the double-slit experiment in which the slit separation, d, is equal to the slit width, a. Explain how this set up is equivalent to a single-slit experiment with slit width 2a. In particular, what happens to the interference peaks of that double-slit experiment (besides the central peak)? What happens to the diffraction peaks of that double-slit experiment (besides the central peak)? Sketch the intensity pattern to elucidate the equivalence. (b) To prove that equivalence even further, show that the intensity function of the double-slit experiment [sin(o/2)' (/2) I(0) = Io cos (8/2) (1) reduces to the correct intensity function of the single-slit experiment with slit width 2a. Recall o = 27 a sine and 8 = 27 dsin @ %3D (c) Now ignore diffraction. A laser with 600 nanometer wavelength is shines at two slits separated by 2 millimeters. An interference pattern forms on a screen 1.5 meters behind the slits. How many maxima are illuminated on the screen? Assume the…arrow_forwardA DVST, or Direct View Storage Tube, is a kind of optical storage medium.arrow_forward
- Principles of Heat Transfer (Activate Learning wi...Mechanical EngineeringISBN:9781305387102Author:Kreith, Frank; Manglik, Raj M.Publisher:Cengage Learning