Colour Measurement and MixtureAbney, William de Wiveleslie, Sir
Science
Colour Measurement and Mixture
Abney, William de Wiveleslie, Sir
Color
It is worth while to pause a moment and think what extraordinary sensual
pleasure the presence of the small scattering particles floating in the
air causes us; that without them the colouring which impresses itself
upon us so strongly would have been a blank, and that artists would have
to rely upon form principally to convey their feelings of art. Indeed
without these particles there would probably be no sky, and objects
would appear of the same hard definition as do the mountains in the
atmosphereless moon. They would be only directly illuminated by
sunlight, and their shadows by the light reflected from the surrounding
bright surfaces.
CHAPTER VII.
Luminosity of the Spectrum to Normal-eyed and Colour-blind
Persons--Method of determining the Luminosity of Pigments--Addition
of one Luminosity to another.
The determination of the luminosity of a coloured object, as compared
with a colourless surface illuminated by the same light, is the
determination of the second colour constant. We will first take the pure
spectrum colours, and show how their luminosity or relative brightness
can be determined. Viewing a spectrum on the screen, there is not much
doubt that in the yellow there is the greatest brightness, and that the
brightness diminishes both towards the violet and red. Towards the
latter the luminosity gradient is evidently more rapid than towards the
former. This being the case, it is evident that, except at the brightest
part there are always two rays, one on each side of the yellow, which
must be equally luminous. If the spectrum be recombined to form a white
patch upon the screen, and the slide with the slit be passed through
it, patches of equal area of the different colours will successively
appear; but the yellow patch will be the brightest patch. If the patch
formed by the reflected beam be superposed over the colour patch, and
the rod be interposed, we get a coloured stripe alongside a white
stripe, and by placing our rotating sectors in the path of the reflected
beam, the brightness of the latter can be diminished at pleasure.
Suppose the sectors be set at 45°, which will diminish the reflected
beam to one-quarter of its normal intensity, we shall find some place in
the spectrum, between the yellow and the red, where the white stripe is
evidently less bright than the coloured stripe, and by a slight shift
towards the yellow, another place will be found where it is more bright.
Between these two points there must be some place where the brightness
to the eye is the same. This can be very readily found by moving the
slit rapidly backwards and forwards between these two places of "too
dark" and "too light," and by making the path the slit has to travel
less and less, a spot is finally arrived at which gives equal
luminosities. The position that the slit occupies is noted on the scale
behind the slide, as is also the opening of the sectors, in this case
45°.
Public-domain text, read in full here on John Shaqi.
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