Showing posts with label Comet. Show all posts
Showing posts with label Comet. Show all posts

Monday, 30 January 2023

Comet C/2022 E3 (ZTF)...

Comet C/2022 E3 (ZTF)...
Object: Comet C/2022 E3 (ZTF)
Type: Comet
Constellation: Ursa Minor
Distance: 48.9 million miles (at 20.15, Jan 27th 2023)
Equipment: Atik 460/EFW 2, Samyang 135mm lens@ F2, Vixen GPDX mount, guiding with Lodestar X2/PHD
Date: January 27th. 2023.
Subframes: 18 x 200s each for LRGB (comet): 6 x 20s each RGB for stars, flats, bias as dark frames.

Astronomers discovered Comet C/2022 E3 (ZTF) using the 48-inch (1.2-meter) Samuel Oschin robotic telescope (part of the Zwicky Transient Facility (ZTF), located at Mt. Palomar in southern California). Once confirmed as a comet, the standard naming convention for it was adopted: it was the 3rd such object discovered in the fifth half-month (A, B, C, D, E) of the year, hence the label 2022 E3 (ZTF).

Comet C/2022 E3 (ZTF) was in the morning sky, in the direction of the constellation Aquila when astronomers with the Zwicky Transient Facility first spotted it.

The ZTF program images the whole Northern Hemisphere every two nights looking for supernovae, variable stars, binary stars, flashing merging neutron stars, asteroids and comets. Overall, it has discovered 10 comets in the past three years.

When astronomers first detected C/2022 E3 in March 2022, the comet was around 400 million miles from the sun, or just within the orbit of Jupiter. At that time the comet was a very faint 17th magnitude, initially appearing as a stellar object until its proper motion showed it moving against the sky background.

The solid, core structure of a comet is known as the nucleus. Cometary nuclei may be up to 20 miles across (Hale-Bopp was one such monster) but are generally much smaller: the nucleus of Comet C/2022 E3 (ZTF) has been estimated to be only a mile across. Because of their low mass, comet nuclei do not become spherical under their own gravity and often have irregular shapes.

Cometary nuclei are composed of an amalgamation of rock, dust, water ice, and frozen carbon dioxide, carbon monoxide, methane, and ammonia. As such, they have been popularly described as "dirty snowballs". The surface of the nucleus is generally dry, dusty or rocky, suggesting that the ices are hidden beneath a surface crust several metres thick. In addition to the gases already mentioned, the nuclei contain a variety of organic compounds, which may include methanol, hydrogen cyanide, formaldehyde, ethanol, ethane, and other, more complex molecules such as long-chain hydrocarbons and amino acids.

These nuclei normally orbit the Sun at an immense distance right on the very edge of the Solar System as part of a sphere of such objects surrounding it, known as the Oort Cloud, Occasionally, one such nucleus will undergo a gravitational encounter, perhaps with the distant giant planet Neptune, one that will send it spiralling in towards the Sun.

As the frozen nucleus approaches the Sun, solar radiation increasingly releases a huge and extremely thin atmosphere around the comet called the "coma". It is this coma that we see, rather than the nucleus of the comet itself. The force exerted on the coma by the Sun's radiation pressure and solar wind cause a cometary "tail" to form pointing away from the Sun. Both the coma and tail are illuminated by the Sun and start to become visible when a comet passes into the inner Solar System. Cometary dust reflects sunlight directly while the gases glow from ionisation by the Sun's intense radiation.

It was it this point that the researchers made out the distinct tail, or coma, proving that C/2022 E3 (ZTF) was indeed a comet rather than an asteroid.

The green colour of Comet C/2022 E3 (ZTF) is typical of comets and is believed to be due to the presence of an unstable form of carbon molecule (“dicarbon”) formed by the photolysis of the carbon compounds present in the nucleus, and which fluoresce with a green light under solar irradiation in the vacuum of space.

Occasionally a comet may experience a huge and sudden outburst of gas and dust, during which the size of the coma greatly increases for a period of time. This happened in 2007 to Comet 17P Holmes.

The streams of dust and gas each form their own distinct tail, pointing in slightly different directions. The tail of dust is left behind in the comet's orbit in such a manner that it often forms a curved tail called the type II or dust tail.  At the same time, the ion or type I tail, made of gases, always points directly away from the Sun because this gas is more strongly affected by the solar wind than is dust, following magnetic field lines rather than an orbital trajectory.  On occasions - such as when Earth passes through a comet's orbital plane, an “anti-tail”, pointing in the opposite direction to the ion and dust tails, may be seen.  This has been observed for Comet C/2022 E3 (ZTF) and can be seen in my image.

By Jan. 12, 2023, the comet had travelled nearly another 300 million closer to Earth, becoming visible in the night sky near the northern constellation Corona Borealis. As stated earlier, solar radiation ionises the gas emitted from the comet, giving rise to complex magnetic fields around it. While making its closest approach to the Sun, a blast of radiation and solar particles (called a “coronal mass ejection”) swept over the comet, squeezing its magnetic field lines together and leading to a disruption in the flow of gas from the comet – a "tail disconnection event" which was clearly observed from Earth.

On February 1 and 2, Comet C/2022 E3 (ZTF) will have reached its closest point to Earth (27 million miles) and can be seen overhead against the background of the rather obscure constellation of Camelopardalis, close to the borders of the better-known constellations Ursa Major and Ursa Minor. A map of the comet's progress is shown below:

Track of comet C/2022 E3 (ZTF) during February 2023...

A few days later, on Feb. 5 and 6, the comet will pass across the night sky to the west of the bright star Capella and then pass across the constellation Auriga. On Feb. 11th, it lies just to the east of Mars. From there, it will descend toward Taurus, becoming ever dimmer as it moves away from Earth, back out toward the edge of the solar system. 

The last time Comet C/2022 E3 (ZTF) passed near the sun was 50,000 years ago. However, the latest orbital element calculations suggest that the comet’s recent close approach to the Sun has changed its orbital path to a parabolic orbit, rather than an elliptical one. Such an orbit is not “closed”, so after it sweeps around the sun C/2022 E3 will move back out into deep space, never to return again.

Much blather has been written by the excitable English press (particularly the Daily Mail) about poor old Comet C/2022 E3 (ZTF), with headlines hyping it up to be an eyeball-searing, “one-in-a-lifetime event”. The truth, on the odd occasion that it can ever be found, is much often more mundane and is usually buried in the depths of the article. I can, however, reassure you that the comet will not affect house prices, cause cancer or lead to a rapprochement with the EU, whatever the Daily Mail may say in future.

The reality is that bright comets — the kind that can be seen easily without binoculars or telescopes — appear on average perhaps two or three times every 15 to 20 years. The last such comet to do that was Comet NEOWISE (C/2020 F3) in July 2020 – hardly a “once-in-a-lifetime” event.

Then there are the common comets, of which most are only visible either with good binoculars or a telescope. If you look at my blog (both old and new) indexes, you will find several examples of ones I have imaged over the years.

The vast majority of comets fall into this category, but C/2022 E3 (ZTF) may end up ranking as “slightly brighter than common”, since for a short while it may hover at around “fifth magnitude”, the limit of naked-eye visibility (and only for those fortunate enough to be blessed with dark, non-light polluted night skies). Additionally, the light from a comet is not a bright point, but a fuzzy, diffuse spot, one that will be increasingly difficult to pick up from a night sky containing a bright waxing moon that will be full on February 5th.

I was able to pick up the comet in 7x50 binoculars as a tiny fuzzy blob, but only because I knew exactly where to look (and I am also a fairly experienced night-sky observer armed with a computer-controlled camera set-up that was pointing the way!)

My image shows the comet displaying a distinct greenish colour and sprouting two faint tails, the gas tail being the long one to the right on the image. Sadly, such long-exposure images tend to be quite deceptive. For one thing they bring out colours and levels of detail that are not readily evident to the eye, even through binoculars or telescopes.

My CCD camera is a monochrome device, which is more sensitive than colour cameras. To get colour data, I have to take multiple exposures through colour filters. This works just fine with most celestial objects, which don’t move against the sky background.

Comet C/2022 E3 (ZTF) was “motoring” in celestial terms against the background sky, however. My set-up was able to “guide” the camera, locking it on to the comet, but this meant that the stars became trailed on the long cumulative exposures as the comet was moving quite perceptibly across the sky background. You will see the stars as faint grey (luminance), red, green then blue lines on the above image as the filters were placed in sequence during the imaging session.  

To capture stars for the image that allow a frame of positional reference, I just shot a few short exposures with the camera guiding on a star as usual. Combining the separate LRGB exposures together gave the colour image of the comet, with the stars overlaid in “screen mode” to give the view you see above.

"Starless" monochrome version....

Just as an experiment, I ran the individual luminance sub-frames through Starnet and then stacked them. Although a bit noisy, the cometary tails do seem to stand out a bit better, with the "fan" of the dust tail spread out across the comet's orbital plane and the twin tail gas clearly visible off to the right.

Sunday, 12 July 2020

Comet C/2020 F3 (NEOWISE)...


Object: Comet C/2020 F3 (NEOWISE)
Type: Comet
Constellation: Lynx
Distance: 134 million miles
Date: July 11th. 2020
Equipment: ATIK 460EX with EFW2, Skywatcher f5.5 Esprit 100 ED refractor, Avalon Linear mount
Subframes: 10 x 60s and 3 x 120 sec each for luminance and RGB, stacked and colour combined in Astroart, final processing in PaintShop Pro

It was with faint optimism that I swung the telescope down to this target at the end of a long imaging session. Initially the scope was pointing at a hedge, but the comet soon cleared my local obstacles and starting at around 3 a.m, I rattled off some exposures before the comet was quickly drowned out by the brightening dawn twilight.


Mk1 NEOWISE image...
The subs were messy (to say the least!), full of weird gradients and blobs brought on by the rapidly changing twilight conditions and some local horizon objects crossing the field as the telescope tracked the comet.

I processed the one minute frames to give (after a lot of work) a cleanish image, but still plagued with psychedelic background colours (see opposite). I was going to leave it at that, but today I thought I'd layer in the sky background from my first image of this comet, plus some data from the 120 second subs which showed a hint of the blue ion tail. The eventual result is the main image above, which I'm rather pleased with...

This comet is probably the most striking since Hale-Bopp back in 1997. Recent infra-red studies show that NEOWISE's nucleus is quite large, at around 5 km in diameter, hence its brightness. Hopefully it will remain as bright as it moves into the south-western evening sky (at a more civilised time!) over the course of the next few weeks...

Monday, 6 July 2020

Comet C/2020 F3 (NEOWISE)...

Comet NEOWISE...
Object: Comet C/2020 F3 (NEOWISE)
Type: Comet
Constellation: Auriga
Distance: 160 million miles
Date: July 6th. 2020
Equipment: Canon 450D, Vixen 600mm 114 ED refractor, GPDX mount
Subframes: 34 x 1 sec @ ISO400,  processed in Registax.


Comet C/2020 F3 NEOWISE’s unusual name comes from NASA's Near-Earth Object Wide-field Infrared Survey Explorer (NEOWISE), which discovered the comet on March 27, 2020.  It is a retrograde comet with a near-parabolic orbit.  It survived its closest approach to the Sun on July 3, 2020 at perihelion 0.29 AU (43 million km) from the Sun, some 14 million km closer on average than the planet Mercury, an encounter that causes many comets to disintegrate.  Solar heating of this ball of ice and rock subjected it to temperatures of nearly 600C, causing it to dramatically brighten and shed gas and dust, giving rise to a cometary tail.  

My image above gives a fair representation of what the comet looks like through 6 x 30 binoculars before the dawn twilight gets too bright. 

Closest approach to Earth will occur 23 July 2020 at a distance of 0.69 AU (103 million km). This perihelion passage will increase the comet's orbital period from about 4500 years to about 6800 years.

Originally, NEOWISE was not expected to get much brighter than ninth or 10th magnitude, making it accessible only to those with good binoculars or small telescopes. During the spring, observers in the Southern Hemisphere followed the very rapid brightening of this object as its distances from both the sun and Earth decreased.  A consensus of observations placed it at magnitude +9.9 on May 10. Just under a month later, on June 7, the comet was on the far side of the sun, 73 million miles (117 million km) distant from the star and 147 million miles (236 million km) from Earth. It had increased 12-fold in brightness to a magnitude +7.2. As projected on the sky, the comet was scarcely 24 degrees from the sun (a closed fist at the end of an outstretched arm covers 10 degrees of the sky) and the two were rapidly closing together. Shortly thereafter, the comet was lost to earth-based observers in the increasing glare of the sun.

From June 22 through to June 27 however, the comet was within the range of the Solar and Heliospheric Observatory (SOHO). SOHO is a cooperative mission between the European Space Agency (ESA) and NASA. The spacecraft is stationed in a halo orbit around the sun-Earth L1 Lagrangian point, a position roughly 930,000 miles (1.5 million km) sunward of Earth. At this point in space, the orbital period of SOHO exactly matches the orbital period of Earth. From this orbit, SOHO is able to observe the sun 24 hours a day.

Using its Large Angle and Spectrometric Coronagraph (LASCO-3, which uses an occulting disc to block out the glare of the sun's disc from its images), NEOWISE could be monitored as it passed near to the sun.  During this time, the comet appeared to significantly brighten, just before it passed out of the field of the LASCO-3 camera. Comet NEOWISE also appeared to have developed a rather bright, albeit short and stubby forked-shaped dust tail.

Comets fall into two categories. "Common" comets are faint fuzz-balls that are visible only with the help of good binoculars or telescopes. At any time there may be perhaps eight or 10 such comets in our sky. Then there are the "Great" Comets, those that become bright enough to be plainly visible with the naked eye and accompanied by a striking tail of dust and gas. Unfortunately, such objects do not come around very often. In the average human lifespan, you may get a chance to see perhaps four if you are very fortunate.

The last great comet visible from the Northern Hemisphere was Comet Hale-Bopp in 1997, but is NEOWISE developing into one right now? Based on the very latest brightness estimates, Comet NEOWISE might fall just short of the criteria, though once it becomes evident in darker skies it should be quite obvious, especially away from light polluted cities.

Catching this comet required an early morning start, to see it emerge above the horizon for about 40 minutes before the glare of the rising Sun drowns it out.  At 3.45 a.m. the comet was a mere 8 degrees above the horizon and had just got above the roof of my next door neighbour's house.

Position of Comet NEOWISE on the morning of July 6th. 2020
The chart opposite shows its position in the sky that morning.

I was able to rattle off about 40 exposures, with one second ISO 400 exposures seeming to offer the best contrast between the comet and the rapidly brightening morning sky. The comet, with just a hint of its tail, was just visible to the naked eye in the morning twilight, but only because I knew exactly where to look, thanks to a laptop looking after the telescope pointing!  Through small binoculars, the tail was very evident and the jets on either side of the comet head could be seen.

I estimated its magnitude to be around 2, though its low elevation in the morning twilight makes such assessments difficult. It is certainly the brightest comet I have seen in the UK since Comet 17P Holmes back in October 2009.

Over the next few weeks, the comet draws away from the Sun, becoming an early evening object towards the end of July (see chart below).  It will be interesting to see if NEOWISE continues to remain bright as it passes by the Earth.

Track of Comet NEOWISE during July in 2020.
References:

1)  https://en.wikipedia.org/wiki/C/2020_F3_(NEOWISE)

2)  https://www.space.com/comet-neowise-july-2020-night-sky-forecast.html

Thursday, 13 December 2018

Comet 46P/Wirtanen

Comet 46P/Wirtanen
Object: 46P/Wirtanen
Type: Comet
Constellation: Taurus
Distance: 0.0806 AU (7.5 million km)
Date: December 12th. 2018
Equipment: ATIK 460EX, Vixen 114mm f5.3 ED114 refractor, NEQ6 mount, guiding with Lodestar X2/PHD
Subframes: 30 x 120s luminance, 20 x 30s each for RGB (for comet, same again for stars).  Additional 60s (30 taken) and 30s luminance frames (70 taken) were also obtained (see below) in this session.

Comet 46P/Wirtanen was discovered by Carl A. Wirtanen in 1948 at the Lick Observatory, California on a photographic plate.  The plate was exposed on 17 January 1948 during a stellar proper motion survey at the observatory.  It took over a year before the object was recognised as a short-period comet due to a lack of observations.

Comet 46P/Wirtanen has an orbital period of approximately 5.4 years and belongs to the “Jupiter Family” of comets. Jupiter-family comets will occasionally have their orbits perturbed when they make a close approach to Jupiter because its strong gravitational field can alter (sometimes quite significantly) a comet's path through space.

In the case of 46P/Wirtanen, it underwent two such interactions with Jupiter (in April 1972 and February 1984) that pushed its orbit about 50 million miles closer to the sun as well as very near to the orbit of Earth.

Perihelion passage of comet Wirtanen will be on 16 December 2018 when it will pass 0.078 AU (7,220,000 miles) from Earth.  Close though this encounter is, the comet is relatively small in size with an estimated nuclear diameter of just 1.2 kilometers (unlike the Great Comet of 1997, Hale-Bopp, with its 60 km nucleus) and so will not appear to be particularly bright.  

46P is expected to reach magnitude 3, but this light is spread out a bit across the comet’s visual area which, unlike a star, is not a point source. It is therefore right at the limit of naked eye visibility. I could not see it without binoculars, even though I knew exactly where to look. This is the brightest prediction of known and future passes of this comet. This is also currently the brightest prediction for all comet passes in 2018, although even by the usual UK tabloid’s moronic standards, it can hardly be described as a “head-scorcher”….

Sensible information about 46P Wirtanen can be found here.

The "seeing" on the evening of December 12th. was horrendous.  Focussing was a challenge as star shapes fluctuated wildly between focus frames. I initially gathered 70 x 30 second luminance frames and 20 x 30 second frames in RGB, (plus a further 20 x 30 second RGB frames for star colour once the comet had drifted out of the field of view). No evidence of a tail could be seen. Setting PHD to guide on the comet nucleus seemed to work fairly well, although the longer subs at 60 seconds and 120s seem to be plagued with noise and gradients - I think some high cloud had set in.  This made processing a bit difficult and it took a few iterations to get the noise reduction and background brightness into a presentable image.  The 120s subs did show a hint of a tail and the final result is shown above.  The shorter sub stacks did not show much in the way of cometary detail but are shown below.

A map of the comet's perihelion passage through the constellation of Taurus is shown below:

Track of 46P through Taurus, 11-16 December (position marked every 12h)

Using the sigma stacking function in Astroart, and "one star" alignment gave an image of the comet with star trails virtually eliminated.  The LRGB stack showed the bright green colouration of the comet itself.  I layered the RGB star stack over it to give coloured stars in the final images.

46P - Larson Sekanina filtered image

The striking green fuzzball (see an explanation of the colour here) rather dominates the image and it was a bit tricky to stop it being spoiled by an "onion ring" brightness gradient, which I still haven't completely eliminated.  The core does show a tiny bit of detail and a hint of a tail.

The AstroArt image processing programme offers something called a Larson-Sekanina filter, which uses a lot of complex math to allegedly pull out cometary detail from raw comet images. Applying this to the luminance data stack gives a result (left) does seem to show a tail and other additional details that correspond to faint features in the colour image above.


Below is a GIF animation using the 70 x 30 second luminance frames from above, showing the comet moving against the sky background.


This 3 second sequence shows the movement of the comet between 19.07 and 20.01 on December 12th, 2018, over a span of about 9 arc-minutes (or about a third of a full moon diameter).  The comet appears to graze the 9.7 magnitude Hipparcos catalogue star HIP 16342.

Comet 46P Wirtanen - (stack of 30s subframes)

Comet 46P Wirtanen - (stack of 60s exposures)

Saturday, 20 January 2018

Comet C/2016 R2 (PanSTARRS)...

Click on image to enlarge


Object: Comet C/2016 R2 (PanSTARRS)
Constellation: Taurus
Distance: 2.1796 AU / 326 million km (at time of image)
Date: 19 January 2018
Equipment: SXV-H9, Vixen 114mm f5.3 ED refractor, guiding with Lodestar X2/PHD
Subframes: 30 x 120s luminance, 20 flats, no darks (hot pixel removal in Astroart instead).

Guiding and stacking using the comet as the reference point has produced trailing stars due to the orbital motion of the comet against the sky background.

Longer exposures through larger apertures (and by far more skilled imagers than I!) evidence much more tail structure than is apparent here.

I could not convince myself that I could actually see the comet through the eyepiece of the ED114, let alone detect the CO-induced blue colouration so evident on long exposure colour images.