Excerpt from:
The Keck Telescope
SCIENCE Kit Fact Sheet

This excerpt is from the first side of the fact sheet in the kit.
On the fact sheet's second side, there's a large line drawing surrounded
by explanatory notes. We'll try to scan it into this web site in the future.

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Highlights of The Keck Telescopes

The Largest Telescope in the World

It took about 300 years from the time Galileo first examined the heavens with his small telescope, until an astronomical observatory was built on a mountain top: a hundred years ago, the largest telescope in the world was a refractor featuring a 36-inch diameter objective lens, on Mount Hamilton in northern California. Owned and operated by the University of California (UC), the Lick Observatory made major discoveries about the universe in which we live. Later, the Carnegie Institution, together with the California Institute of Technology (Caltech), built instruments on Mount Wilson, and then on Mount Palomar, each of which became the world's largest in turn. Today, Caltech and UC together own and operate the two Keck Telescopes, in 1995 the world's premier. Located in the thin, stable, and dark atmosphere 4200 meters above sea level on HawaiiÕs dormant shield volcano Mauna Kea, each one provides a light-collecting area ten meters in diameter Ñ double the aperture of the Hale Telescope atop Mount Palomar, four times its light collecting area, and more than ten times the aperture of the James Lick Telescope (both of which are still operating today).

New technologies have been required to sustain the growth of telescope aperture (the most significant measure of light-gathering ability). Lick's 36-inch lens was nearly the largest solid glass body which could be supported by its edge in a telescope. Telescopes much larger than that would have to use curved mirrors instead of lenses. Mirrors can be supported from behind, and they do not absorb any wavelengths of light, or cause chromatic errors, the way lenses do. Thus mirror technology replaced that of lenses in telescopes larger than about a meter in aperture. But this mirror technology had limits, too. The 5-meter diameter mirror of the Hale telescope on Mount Palomar uses about the largest single piece of glass possible for a good mirror. Anything larger will deform too much under its own weight to be of use. Large monolithic take a long time to adjust to the night air's temperature, affecting their ability to focus, because of thermal contraction or expansion. They also require massive mechanical support systems. A whole new technology was required once again, indeed a whole new paradigm. Mirror control diagramThe Keck Telescope's revolutionary design, pioneered by UC astronomer Dr. Jerry Nelson, employs 36 individual lightweight glass mirror segments, which together, under the control of a computer, maintain a single, precise hyperbolic surface accurate to within a millionth of an inch. They are not 36 separate hyperbolic mirrors. They are 36 segments of a single hyperbolic mirror. The attitude of each of the 36 mirror segments is adjusted twice a second under the control of a computer. The computer looks at input provided by sensors located at each segment's edge. Running algorithms developed by CARA, the computer drives three actuators underneath each segment to keep all 36 segments in a perfect hyperbolic shape as the telescope moves, or as it is buffeted by the wind. Thus, with the availability of computer control, it was not necessary to create a single, rigid, monolithic 10-m diameter piece of glass, which would be very difficult or impossible to deal with. Each of the 36 mirror segments (plus spares) was cast in a relatively easy process, ground to its proper shape in a special process under tension, and then finished using an ion-polishing process. Keck's active optics would not, of course, be possible without the computer technology of today. The computer and its software are integral to the Keck Telescope's mirror.

Telescope Mountings and Domes - more hurdles cleared

The telescope mounting also presented a major barrier to making larger telescopes. The Hale Telescope's mount is extremely massive and complicated, in part because one of its axes is aligned with earth's axis (it is an equatorial mount). The Hale telescope's mount is perhaps the most robust equatorial mounting structure physically possible to engineer. It would clearly be a very difficult and prohibitively expensive undertaking to attempt to make a larger one. Dome comparisonBut today's computer technology also permits use of a simple, lightweight mounting structure which moves the telescope at right angles to the earth's surface (an altitude-azimuth mount, also called azimuth-elevation), doing away with the structural nightmare of a large equatorial system. Instead of relying on the mechanical mounting to track the sky as the earth turns, computers calculate the exact increments to move the telescope in altitude and azimuth, and to rotate the telescope's instruments' fields of view. This fact, combined with the "fast" (f1.7) optical design, which employs a relatively short telescope structure, also permits a relatively small dome to enclose the telescope. The dome for the 10-m aperture Keck Telescope is smaller than the dome which houses the 5m Hale telescope on Mount Palomar!

A fine location

At the summit of Mauna Kea, the clear air is thin. The sky is dark, and well removed from city lights. Its height is above most of the water in Earth's atmosphere, so observations can be made in the infra red part of the spectrum which are impossible at down lower levels in earth's moist atmosphere. And the Keck Telescope is diffraction limited at infra-red wavelengths.

A second Keck Telescope was being completed as this kit first went into production, and is now in operation. Situated within the same observatory facility as the original Keck Telescope, but in a separate dome, Keck II is virtually identical to its twin. The observatory is designed to permit interferometric observations using both telescopes, a technical feat which will achieve the resolving power of a telescope equal in aperture to the distance spanned by the two Keck Telescopes, which is 85 meters. The Keck Telescopes are owned and operated by the California Association for Research in Astronomy, which is an association of the California Institute of Technology and the University of California. The telescopes are named in honor of William M. Keck. Gifts from the W. M. Keck Foundation made the telescopes possible.


To keep up with discoveries made through use of the Keck Telescopes, refer to publications such as Science News, Sky & Telescope, and Astronomy, which frequently publish articles and images covering discoveries made using the Keck Telescope.

Your Keck Telescope kit could not have been produced without the kind permission and generous technical assistance of the Keck Observatory and the California Association for Research in Astronomy. Copyright © 1995 SCI Space Craft International, Pasadena, CA U.S.A.

      Keck Telescope Specifications

  Telescope

  Optical design:        Ritchey-Chretien
  Mount:                 Altazimuth
  Overall height:        24.6 meters
  Total moving weight:   270 tons
  Total weight of glass: 14.4 tons


  Primary mirror:

  Design:                Actively controlled,
                       segmented hexagon
  Equivalent diameter:   10 meters
  Figure:                Concave hyperboloid
  Number of segments:    36
  Segment diameter:      1.8 meters
  Segment thickness:     75 mm
  Segment weight:        400 kg
  Gap between segments:  3 mm
  Segment material:      Zerodur low-
                       expansion glass-ceramic

  Light collecting area: 76 square meters
  Focal ratio:           f/1.75


  Secondary mirror:

  Figure:                Convex hyperboloid
  Shape:                 Circular


  Dome:

  Height, Width:         30.8 x 37 meters 
  Moving weight:         635 tons
  Total air-replacement  5 minutes

The Venerable Hale Telescope

References to the Hale 200-inch telescope here, and in the online catalog, are not meant to belittle the Hale, which is still very much a first-class research too today. An excellent description of the Hale telescope and its history can be found in "The Perfect Machine; Building the Palomar Telescope" by Ronald Florence, Harper Perennial 1994. This book also provides a good background for appreciating the new paradigm represented by the Keck Telescopes and their contemporaries.

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