Showing posts with label M42. Show all posts
Showing posts with label M42. Show all posts

February 17, 2015

M42, the Great Nebula (Dec. 15, 2014)

Ah, the dark art of imaging M42.  What can one say?

Telescope: Astro-Tech AT111EDT (f/7) and Astro-Tech AT2FF
Camera and Exposure: SXVF-H9C, 20x30", 20x60", and 29x300"; Alnitak Flat-man flats
Filter(s): Astronomik CLS
Guiding: SX Lodestar and SX OAG
Mount: Takahashi NJP
Software: Nebulosity, PHD, Maxim DL, Registar, Photoshop CS3
Location: The Woodlands, TX

November 22, 2012

NGC 1977, the Running Bigfoot Nebula (Nov. 16 & 17, 2012)


This nebula is part of a great complex of gas and dust in the constellation Orion.  The most prominent part of the complex is M42 and M43.  M43 and part of M42 can be seen at the bottom of this image.

The Running Bigfoot Nebula glows mostly for a different reason than M42 and M43, however.  While M42 and M43 radiate the light of ionized gas, the Running Bigfoot reflects the light of the bright blue stars in and around it.  If you look closely at the Bigfoot figure, you see in his trailing arm the reddish glow of ionized gas, probably hydrogen and nitrogen.  But the blue light of the nebula is reflected.  Further away from the bright stars, where the light is too dim to be reflected in blue, it is reflected in gray and then brown.

The Running Bigfoot Nebula is called by most folks the Running Man Nebula, but look at the size of those arms!  And he's got no neck.  He's like no man I ever saw.  His trailing leg is behind a bush, I think.

Telescope: SV80ED (and William Optics 0.8x II fr/ff (eff. at f/5.6))
Camera and Exposure: SXVF-H9C (50x480"), Alnitak Flat-man flats
Filter: Hutech IDAS-LPS2
Guiding: Meade DSI Pro and Hutech 50mm
Mount: Takahashi NJP
Software: Nebulosity, Maxim DL, Photoshop CS3
Location: The Woodlands, TX

October 10, 2012

M42 Trapezium (Sept. 22, 2012)


The lovely little cluster called the Trapezium lies at the heart of M42, the Great Nebula in Orion, and is named after the shape made by its brightest stars.  M42 and the Trapezium are one of the grandest sights in the sky and are subjects for serious study.

The cluster's stars are close together, literally as well as apparently.  They appear so close that they were once thought to be one star, Theta Orionis.  As astronomers over time split the star into more and more components, they named the components with letters.  The brightest star in the cluster is Theta Orionis C.  It is very bright, very hot, and generates most of the ultraviolet radiation that makes the gas around it glow.  In the image, the star at the top of the Trapezium is D.  The two brighter other stars that make up the trapezoid, going from left to right, are A and B.  Here is a close crop of the cluster:

As more components were discovered, more letters were used.  The semi-bright star between A and B (and just to the right of A) is E.  The star just above C is F (which looks elongated; actually there are two stars there).  The star just below D is G, and directly below G is I.  Moving to the lower left of I is H, which is just below C and to the left of A.  Next to H, to H's immediate left, is another star, and I have no idea what it's name is.  Nor do I know the names of the other, nearby stars.  Actually, I was surprised to see so many here.  But this is not anywhere close to all the stars in the cluster.  Many of them shine in wavelengths other than those allowed by the two filters that I used to take this image.  I should explain.

One of the cool things about this nebula is that stars in it are still forming.  There is still a lot of dust obscuring stars that have formed, and the stars do not all glow with the same intensity at all wavelengths.  When we take pictures, we often use different filters that cut out all but a few wavelengths.  This allows us to focus only on the gases that light up the nebula, to the exclusion of almost all other light (including streetlights in front of my house).  For example, this image records light with a wavelength of 656.28 nm.  At that wavelength we find light emitted by ionized hydrogen.  Very near it we also find the light of ionized nitrogen, and my filter (called an h-alpha filter because it focuses on the hydrogen emission) just happens to pass light from a band 12 nm wide.  It is wide enough that it also picks up the nitrogen signal.  This image also records light taken through another filter that allows the wavelengths of 495.9 nm and 500.9 nm, and this light is emitted by ionized oxygen.  This filter is often called an OIII filter.  The h-alpha line is in the red part of the spectrum, and the OIII lines are green, but I've mapped OIII to blue here, also, because blue and red make a better picture.  So here you see the stars as they shine at those wavelengths.

But look at this next image.  I also took an image through an SII filter, which allows in light of ionized sulfur, at wavelengths of 671.6 and 673.1 nm.  The image is quite different:
More stars appear, and they are brighter.  Why is that so?  It may be because these stars radiate more light from ionized sulfur than from hydrogen, nitrogen, or oxygen.  I suspect that is the case.  Notice that stars G, H, and I are dimmer in this SII image, and that F is not elongated.  

The best way to see this cluster, though, is at infrared wavelengths.  Not until wavelengths of 750 nm do we reach the infrared.  Infrared light cuts through the dust, so an infrared image shows hundreds more stars in the area.  An example from the Hubble Space Telescope is here.  How cool is that?  On the other hand, when the Hubble records in h-alpha, nitrogen, and OIII, as I did, it picks up the same stars I do in the first image above (and a few more with Hubble's better resolution and bigger aperture, of course, but nothing like the infrared), as here.

Anyway, I took these images of the Trapezium from my backyard, in about an hour's time.  The stars are so bright that only short exposures would keep the stars small enough to remain separate.

Telescope: Orion 254mm f/4.7 Newtonian and Astro-Tech Coma Corrector (eff. at f/5.17)
Camera and Exposure: SXVF-H9 (H-alpha: 11x30"; OIII: 15x30"; SII: 15x30"), T-shirt flats
Filter: Astronomik 12nm Ha, OIII, and SII
Guiding: SX Lodestar and SX OAG
Mount: Takahashi NJP
Software: Nebulosity, Maxim DL, Registar, Photoshop CS3
Location: The Woodlands, TX

October 12, 2010

The Great Nebula in Orion (9&10-2010)


This nebula is one of the most famous in the sky. It is visible without optical aid in the belt of Orion's sword. It is basically a huge cloud of gas and dust, mostly hydrogen, that is coalescing to form stars. The stars just lower left of center are newly formed and are sending out the radiation that makes the clouds of gas glow. The four bright stars are called the Trapezium. Actually, there is a knot of stars there. This image was shot at a focal length of 500mm, not enough resolution to allow the other stars to be seen clearly. This nebula is a stunning sight in a telescope. These colors are false, but in a large scope the entire nebula takes on a greenish glow that contrasts with the stars and with the dark sky behind it.

This image is about 2 hours per narrowband channel: Ha (mapped to green), OIII (blue), and SII (red). I also took a string of 30-second Ha exposures designed to show the four stars at the core of the nebula without totally blowing it out. Processing was done in Neb2, Maxim DL, Registar, and PS CS3. This is another image gathered with the 120mm achromat and the Atik 16. It's turned out to be a nice combination.

October 5, 2008

M42: New Renditions





These iterations were processed in Photomatix. A Huntsville Amateur Astronomy Society member suggested hdr processing for astrophotos at the star party I attended in September. I had tried it with single astronomical images but not with different stretches of the same image. The technique helps, I think. It enhances the fainter parts of the nebula and helps the brighter parts not to look blown out.