Actual web page:
http://www.public.asu.edu/~atppr/bodyscan.htmlActual article: https://docs.google.com/viewer?url=http://www.public.asu.edu...
The first thing you'll learn in radiation safety is that the nature of the dose matters a lot. Sometimes you're A-OK if you can survive the initial dose. Other doses are accumulative. It depends on the energy of the radiation, the tissue's scattering cross-section, the time, and the flux, among other things.
This means that the Sievert (a unit of biological impact due to radiation) is only meaningful in the context of the dose geometry. It's great for talking about a chest X-ray, where the dose is spread out over a big volume of tissue. Where it's unclear is in the case of rapidly-thermalizing or compton-scattered particles: like backscatter. Look at the graph in that article. Something like half of the energy is deposited in the first couple centimeters of tissue.
We haven't done this before, and don't have a good model for the long-term effects. My guess? This kind of exposure is a hell of a lot worse for melanomas than a chest X-ray delivering the same energy. Claiming compliance to a metric like the ANSI limits is meaningless.
Edit: Oh, and the concern raised over the beam stopping and delivering a couple Sv to a quarter-sized patch of skin is definitely scary. We did exactly that to several people with medical cyclotrons.
Edit: I should also mention that tissues have varying tolerance to radiation. Rapidly-dividing cells tend to be hit the hardest, which is why your stomach lining, skin, and hair slough off after acute ionizing rad exposure. Your skin, stomach, lungs, breast and thyroid are also the most frequent to undergo cancer in radiation-linked longitudinal studies. See, for example,
http://pats.atsjournals.org/cgi/content/full/5/9/934