Showing posts with label indoor observatory. Show all posts
Showing posts with label indoor observatory. Show all posts

Tuesday, April 26, 2022

Laser Light & Window Glass


Laser Light & Window Glass
Will green laser light penetrate glass?

This is an important question when operating an indoor telescope observing through window glass with a green laser finderscope. Will glass stop or significantly modify the beam rendering it useless as a nighttime finderscope to find celestial objects.

Introduction
There are many heated and optical physics, optronics,  and electro dynamic technical discussions that reach varying conclusions. The indoor observatory at HSO decided to test the laser beam at night and the results would speak for themselves and elicit the final say, conclusion and response. To the right of the telescope, the green gemstone laser was activated and a series of photos were take with the handheld iphone Xs Max. Would the light beam make it through the window glass and if it did, would it remain a coherent straight line? Would the laser light be significantly diminished and become unusable? Will powerful laser light reflect backwards and blind the observer?

Results
In the photo, the green line represent the laser pulse of light. At the bottom of the photo, the line begins inside the observatory room. About half way, a bright large circle of diffusion results where the beam strikes the single window glass pane first surface and enters the glass, and light scattering appears to take place. Then the beam penetrates the glass back side to exit to the outdoors and the straight line reaches skyward on the same straight and true intended path. The light is not noticeably dimmed in the process. There was no dangerous visible backtracking of the laser light and the safety of the observer was maintained by laser light continually moving in the forward direction.

Conclusion
Therefore an indoor laser can shine through window glass and be used as a finder to point to the location of celestial objects and to show where the telescope is pointing, safely by following the basic precautions. The light appears to continue moving in the forward direction. The only noticed different between the indoor and outdoor use is that indoors results in a large circle of diffusion appearing embedded in the glass or at the point of lasering entrance/exit - a bright green scattering of light - a round area of light where the laser beam enters the glass. As the laser is on only momentarily to locate an object, it won't interfere with astro imaging.

Friday, April 1, 2022

Celestron Nexstar 6 SE Looking Through Window Glass

THE INDOOR OBSERVATORY
Celestron Nexstar 6 SE Looking Through Window Glass

This ongoing page is dedicated to indoor observing by looking through window glass with the Celestron Nexstar 6 SE telescope.

Years ago when astro imaging with small telescopes, like the 2.99-inch Celestron Firstscope, it was discovered that it was possible to photo solar system objects through a closed window while the telescope remained indoors. The window was kept closed to avoid the excessive summer heat, high dew forming humidity, and deadly bugs and killer mosquitoes carry Dengue Fever. This indoor observatory also experimented with a Celestron EdgeHD 14 and 9.25-inch telescopes. Now moved to a new location with more space, more windows, and newer windows, indoor telescopes will prevail.

There are several tricks to observing through window glass to get the best results, some of which are controllable and some are not. Here's the top of the ongoing bucket list:

* Have access to new white float glass with higher precision flats
* Do not use tinted glass
* Clean the both sides of the glass just before observing
* Do not use double or triple insulated windows
* Keep the window closed
* Inspect & remove any dew, frost or dust from the glass when observing
* Do achieve indoor thermal equilibrium with indoors/outdoors
* Move the telescope as perpendicular as possible to the glass
* Measure window aperture, plot when objects will become visible using
   planetarium software
* Measure & know clear sky altitude, azimuth and horizon
* Have exact latitude longitude for telescope GOTO
* Computer image "process out" window glass
* Subtract any secondary reflections from the back of the glass
* Make any color corrections necessary
* Boost compensation contrast & sharpness as necessary
* Smaller telescope apertures may minimize aberration differentials
* Move the telescope closer to the glass to increase sky viewing area
* Use lower EFRs to minimize magnifying any defects
* Avoid glass bubbles, striations or any defects
* Avoid telescope tube obstruction by window frame
* Correct for achromatic and chromatic aberrations from the window glass

How to Subtract Achromatic Chromatic Aberrations
Depending on factors (window glass type, angle of telescope relative to the plane of the window), correct for typical achromatic chromatic aberration from the window glass when the image has blue on one side and red on the opposite side by employing a ZWO ADC Atmospheric Dispersion Corrector to correct the image at the telescope. Aberration effects can also be minimized through final image processing on the computer.

Singularity Observatory Telescope Indoor Observing

Singularity Observatory Indoor Observing Success!

August 30, 2020 Celestron FirstScope Image through Window Glass Project

Indoor Observatory

Singularity Observatory Telescope Indoor Observing

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Celestron Firstscope Image Through Glass

Singularity Observatory Diving through Glass

Saturday, June 26, 2021

Indoor Observatory

Inventing the Indoor Observatory
Above: observing indoors with a focus on the Moon - the sky portal size, area of visibility and which objects are visible at any given date and time, are calculated with an astronomy app. The Celestron CGX/L goto mount with the short OTA 14-inch EdgeHD catadioptric is ideal for indoor observing through an opened window or window glass. Adjacent to the telescope are indoor electrical receptacles, camera imaging computers and accessory racks - the epitome of indoor observatory convenience.

Indoor Observatory
The indoor observatory includes telescopes kept in a room inside a home, and are used for observing through window glass or an open window, in a comfortable regulated environment. This achieves the greatest convenience.

Left: small Dobsonian tabletop telescopes, like the upgraded "grab and go" collector's
signature edition Celestron FirstScope, are extremely convenient when observing indoors

Chromatism
Instruments, such as optical atmospheric chromatic dispersion correctors (ADC), may be used to compensate window glass to improve the overall image quality and to reduce and mitigate optical defects. 

Plane Dimension
Telescope optical orientation to the plane of window glass is corrected through software.

Observing Through Window Glass
Obtaining good astro imaging through window glass necessitates image processing to correct double images, image softening, planar deviation, contrast reduction, color skewing and other factors.

Left: the Moon through the indoor Celestron 14" Edge HD

Experiments were performed with large and small telescopes and the result compared for the notion of an indoor observatory. Telescopes reside indoors, completely isolated from the outdoor elements, such as bugs and mosquitoes, extreme heat and humidity, and bitter cold and wind.

Remote Controls
Extra remote observatory control elements are not needed and power is readily available, often with several computers. Visual observing and imaging are possible with astro imaging using computer image processing to improve the images. 

Telescope Aperture
Telescope size makes a difference in the quality of the observation. Observing through window glass is a lot like observing through the atmosphere - small telescopes perform better across the smaller wavefront than larger scopes because they look through a smaller diameter of window glass which will have less deviations.

Window Glass Quality
Other defects up for compensation and correction include off axis planar orientation, nonhomogeneous glass, and chromatism. The quality of the float window glass can also widely vary.

Room Reflections
Eliminate and minimize internal nuisance ghost reflections from the glass window by turning off indoor lighting.

Left: the Moon image taken with the indoor 2.99-inch Celestron FirstScope Dobsonian is processed to subtract window glass. Imaging through window glass can change the focus, reduce contrast and soften the image.

Double Image
The double image anomaly can result from two sided reflections off the window glass, front and back surfaces. Design image processing to subtract (more complex) or suppress (more simple) the weaker of the two images, which is normally the backside image coming back through the first surface.

Glass Thermal Insulation
Be sure to avoid thermally insulated glass of the double pane type. This would create additional unwanted reflective images and aberrations. Window glass can also cause thermal convection if the indoor and outdoor temperatures vary too much. In this case there are two corrective options. Make the temperature indoors the same as outdoors, or use lucky imaging techniques.

Polar Align Indoors
The indoor telescopes are set up, calibrated to north as needed using a compass, and positioned for maximum viewing. 

Window Size
It helps to observe through a large deck glass door to see more of the sky. Of course a small telescope and a small bedroom window sill may be ideal.

Glass Avoidance
As a simple option, put on bug repellant, slide the window open, equalize the temperature differential, and bypass the glass.

Telescopes Indoors
Telescopes kept indoors under regulated temperature and humidity have an advantage and will not be as prone to dewing. In some cases, expensive large outdoor telescopes were known to dew over inside the sealed Schmidt-Cassegrain tubes, ruining the telescope or causing a very complicated repair disassembly.

Sky Area of Visibility
A portal of sky visibility is determined and a planetarium app calculates which objects will be visible in the window on any given date and time. It can also determine how long the object will be visible.

Blast from the Past: Old school telescopes often had the front end capped with a flat of conventional 1:1 plate glass. These telescopes were primarily visual and the user dealt with any problems caused by the telescope's glass window. Essentially these old telescopes were looking through a window, not much different than a house window.

Left: Celestron's cell phone mobile sky app, free SkyPortal, can determine the window of opportunity for available objects at a given date and time when observing from indoors

Indoor Observatory