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Briefly, for visibly transparent materials like glass, you can see through then even while they are glowing red hot. Most glasses have plenty of absorption in the IR, so there is plenty of absorption and re-emission going on. But once a visible photon is emitted, there's only a very low probability that it will be absorbed.

Will the visible emission still have the characteristic blackbody shape corresponding to the actual temperature of the material? It certainly looks that way to me, but how to understand the physics behind blackbody radiation from a transparent bodies?

In this really nice answer @RobJeffries explains the difference between the ideas of Thermal Radiation and Blackbody Radiation in the context of a source which may be in thermal equilibrium, but who's radiation may not be. It's worth a moment or two to read it before continuing here.

Here are some images from Wikipedia to help frame the question. The first from Blackbody illustrates the familiar cavity in radiative equilibrium with a small hole to sample that radiation.

enter image description here

If you visit a Glassblowing factory, studio, or demonstration, you are likely to see something like this, which is roughly similar (except for the flames).

enter image description here

The glass is introduce through the opening to be heated in the furnace, via some combination of absorption of the infrared light and contact with the hot gasses.

enter image description here

When it is pulled back out, the glass is usually glowing red, orange, or even yellow, depending on temperature,

enter image description here

...so that it softens and is easier to shape.

enter image description here

Assume for the purposes of this question that the glass has reached uniform temperature, removed, and the radiation from the glass measured. I believe that most blowing-friendly glasses used in this context are absorbing for at least a large chunk of the infrared.

When I watch the real thing, the glass visually appears to me to be transparent even when it is hot (it's really a beautiful effect!)

Question: Will the visible part of the radiation still approximate a Blackbody spectrum, even though the visible light does not experience several absorptions and re-emissions?

note: When it's very hot, it's very bright and so it's difficult to verify that the glass is still transparent, and I'm not going to start irritating someone holding hot glass by shooting lasers at them!

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    $\begingroup$ Depends on the color of the glass. It's the same problem as the selective absorption/radiation of different infrared bands by water vapor in the atmosphere. If one wants to model that, a radiation transport code is necessary that analyzes all possible scattering paths trough the atmosphere. $\endgroup$
    – CuriousOne
    Commented May 5, 2016 at 9:34
  • $\begingroup$ The key thing that will differ is the emissivity which determines the power radiated $\endgroup$
    – Jaywalker
    Commented May 5, 2016 at 9:56
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    $\begingroup$ I'd wager, that since glass (in the visible part of the spectrum) looks more or less uniformly transparent, the spectrum of its thermal radiation (in the same range) should follow the black body spectrum in shape, but not overall intensity, quite well. This is in accordance with Kirchhoff's law. $\endgroup$
    – LLlAMnYP
    Commented May 5, 2016 at 14:44
  • $\begingroup$ @LLlAMnYP do you think you could expand that into an answer, and show how that would be in accordance with Kirchhoff's law using math? Thanks! $\endgroup$
    – uhoh
    Commented Jul 13, 2016 at 13:39
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    $\begingroup$ Well here's an answer. +1, really, this is a very well written question; dunno why it isn't upvoted more. $\endgroup$
    – LLlAMnYP
    Commented Jul 13, 2016 at 15:25

2 Answers 2

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Edit: Please note important Caveat #2 at the bottom.

The Russian wikipedia page for Kirchhoff's law of thermal radiation is simpler and shorter than the English version, however it contains the answer to the question, which is absent in the English version. Translation follows:

Bodies, whose absorptivity is frequency-independent are called "gray bodies". Their emission spectrum is of the same form as a black-body spectrum.

Kirchhoff's law states:

$$ \frac{r(\omega,T)}{a(\omega,T)}=f(\omega,T) $$

where $a$ is the (temperature and frequency dependent) absorptivity of the object, $f$ is the black-body spectrum and $r$ is the emission spectrum of the object.

A high-quality sample of glass does not induce perceptible changes in color (well it does, and you can see this from a prism, but that's beside the point right now) so it may be safe to say, that in the visible part of the spectrum $a$ is constant. In that case, the emission spectrum of hot glass is

$$ r(\omega,T)=a(T) f(\omega,T) $$

i.e. proportional to the black-body spectrum (in visible frequencies, we aren't discussing any others right now) with a frequency-independent coefficient.

Caveat: room-temperature $a$ may be $\omega$-independent. High-temperature $a$ need not retain that property, though it might to some degree.

Caveat #2: human perception is a terrible way to judge the absorption spectrum of glass. A human is sensitive to the value $1 - a(\omega)$ and how uniform it is. A good glass is highly transparent and probably absorbs much less than it reflects (4% IIRC). But a human will not be able to distinguish between $a(700nm)\approx0.01$ and $a(400nm)\approx0.001$ (numbers taken of the top of my head). This will completely skew the thermal radiation spectrum.

EDIT: Here's some data on the complex refractive index of silica glass. See bottom of page 7. It appears, that the absorption of glass in the visible spectrum is indeed rather uniform. $k(400nm)=.7\cdot10^{-7};\,k(700nm)=1.1\cdot10^{-7}$, which is quite a bit more uniform than I initially expected. Thus the emission spectrum of glass compared to black-body is somewhat red-shifted, but not drastically.

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  • $\begingroup$ Very nice! So for at least some high purity glasses (e.g. SiO2 glass) and small object size or wall thickness, there may be a good chance that the spectrum may approximate a black body spectrum. Thank you very much for finding and translating it! $\endgroup$
    – uhoh
    Commented Jul 13, 2016 at 15:35
  • $\begingroup$ @uhoh I was about to comment, that "probably no because caveat #2", but see latest edit, high quality silica glass is indeed very uniform. $\endgroup$
    – LLlAMnYP
    Commented Jul 13, 2016 at 16:12
  • $\begingroup$ Glass is an amazingly diverse group of materials. It's really fascinating stuff. One really specialized case is single mode optical fiber. Around 1.5μ it's a mind-boggling 0.2 dB/km, and even in visible it's at least 100X better than "normal optical silica" such as that in your link. They make it out of extremely pure SiO2 which is actually obtained from "silicon smoke" - flame hydrolysis of Silane and Oxygen. Or at least that's how I remember it. Crazy stuff! $\endgroup$
    – uhoh
    Commented Jul 13, 2016 at 17:05
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If you can see through it then it it is not black body radiation.

A blackbody emitter must absorb light of all wavelengths that is incident upon it and must be in thermal equilibrium. i.e. It must be "optically thick" at all wavelengths.

It may have a spectrum similar to the Planck function if the partial absorptivity is independent of wavelength. This is what LLlAMnYP is suggesting.

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