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and Homes Around the World!

What's Happening at Insight Observatory...

Showing posts with label astronomy research. Show all posts
Showing posts with label astronomy research. Show all posts

Saturday, December 5, 2020

5th-Grade Students Image and Study Nebulae

Insight Observatory had the pleasure, for the third straight school year, of collaborating with Ms. Christine DeSantis' 5th-grade class at Plymouth South Elementary School located in Plymouth, Massachusetts. Ms. DeSantis' students were given the assignment of imaging and studying the different types of nebulae that exist in our universe. Here is her summary of the assignment for her students...

A 5th-grade student in Ms. DeSantis class reviews Insight Observatory's Educational Image Request (EIR) online application before submitting an image request for his nebulae research assignment.
A 5th-grade student in Ms. DeSantis's class reviews Insight Observatory's Educational Image Request (EIR) online application before submitting an image request for his nebulae research assignment.

"We are very excited to have been able to benefit from Insight Observatory’s educational outreach program, especially during this challenging process of hybrid learning! As an at-home assignment, students first visited Insight Observatory's website to learn more about the remote telescope and its location. They discussed why New Mexico was an ideal location for deep space photography and learned about other Insight Observatory remote telescope locations around the world. After this research, students choose a nebula to have photographed.

Insight Observatory's 16" f/3.7 astrograph reflector (ATEO-1) remote telescope that was used by Ms. DeSantis' 5th-grade students to image supernova remnant known as M1, the Crab Nebula, IC 2118, the Witch Head Nebula, and IC 1805, the Heart Nebula.
Insight Observatory's 16" f/3.7 Dream Aerospace Systems astrograph reflector (ATEO-1) remote telescope that was used by Ms. DeSantis' 5th-grade students to image supernova remnant known as M1, the Crab Nebula, IC 2118, the Witch Head Nebula, and IC 1805, the Heart Nebula.

They then did a research project on their assigned nebula that included information about the three main types of nebulae, how nebulae are formed and how far away and large the nebula they chose was. This project was completed from home and then presented in class using Google Slides. The students were thrilled when their images arrived as they already knew so much about their subject.

5th-grade student researching her nebula image assignment virtually from home along with images of Westerhout 5, an emission nebula and NGC 7635, the Bubble Nebula in Cassiopeia.
5th-grade student researching her nebula image assignment virtually from home along with images of Westerhout 5, an emission nebula, and NGC 7635, the Bubble Nebula in Cassiopeia.

After seeing their images, students discussed the immensity of distances in space and reviewed the variety and beauty of these deep-space objects. Students said that the things that they loved most about this project were the discovery of how different their own nebula could appear depending on the telescope used and the time of year it was photographed. They also were impressed that energy, gas, and dust could create such astounding beauty.

5th-grade students selecting a nebula to image on ATEO-1 with NGC 7662, a planetary nebula located in the constellation Andromeda and NGC 7023, the Iris Nebula, a bright reflection nebula in the constellation Cepheus.
5th-grade students selected a nebula to image on ATEO-1 with NGC 7662, a planetary nebula located in the constellation Andromeda, and NGC 7023, the Iris Nebula, a bright reflection nebula in the constellation Cepheus.

Many thanks to Michael Petrasko and Insight Observatory for providing us with the astrophotography and information for this motivating and inspiring project!"

If you are an educator and would like to participate in a classroom and/or virtual project similar to this one utilizing Insight Observatory's Astronomical Telescopes for Educational Outreach (ATEO) remote telescope network, please contact us.
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Friday, July 3, 2020

Wolf 359 Star Parallax

Using Insight Observatory's 16" f/3.75 Dream Aerospace Systems astrograph reflector (ATEO-1) remote telescope, a Romanian team of amateur astronomers participated in the international project #NHParallax. This project is aimed to highlight the parallax effect by comparing image frames from the New Horizons space probe combined with frames obtained by ground-based remote telescope ATEO-1 located in New Mexico, USA.

Introduction:
Historically, the first determination of the distance to the stars was made by astronomer Friedrich Bessel in 1838 for the star 61 Cygni using the parallax method. This method remained the standard procedure for calibrating other methods for determining distances in the Universe. The parallax of a star is the angle through which the radius of the Earth's orbits is seen from the star when it is perpendicular to the Earth-Star direction. The simplified model of the parallax effect is illustrated in Figure 1. It involves a change in the apparent position of a star relative to the stars from the background when observed from two different locations. This is quantified by the angle p - called the parallax.

Figure 1 - Parallax Effect
Figure 1 - Parallax Effect

For the calculation of the distance, we refer to Figure 1.

The following equations can be written:

tg (p ”) = Earth-Sun Distance / Sun-Star Distance
tg (p ”) = 1UA / D, from which it follows that:
D = 1 / tg (p ”)
Since the angle p ”is very small (less than one second of arc) we can approximate tg (p”) = p ”and the formula becomes:
D = 1 / p ”,
where D is expressed in parsecs (pc)
p” is expressed in arcseconds and 1 AU represents an astronomical unit, ie the average Earth-Sun distance.

Traditionally the distances to Proxima Centauri and Wolf 359 were calculated using this method and resulted in the following data confirmed by the specialized space missions Hiparchos and Gaia:

p”Wolf 359 = 0.41516” ± 0.000162 ”

The distance to the star Wolf 359 = 2,409 ± 0.009 pc, ie 7.86 light-years (+/-0.03 ly) 

Remarks:
On April 22, 2020, we made observations with the ATEO-1 remote telescope in tandem with the New Horizons space probe at nearby star Wolf 359. The advantage of these tandem observations is that the New Horizons probe is 46 times the Earth-Sun distance, which causes the perspective of the probe on the star Wolf 359 to change visibly from the perspective observed on earth. With such a large distance between the two observation points (Earth - New Horizons), the parallax effect is easy to highlight by comparing photos taken from Earth with those received from the New Horizons probe. Here is the animation which shows a stereo view of this phenomenon.

Wolf 359 Star animation with image data acquired from the New Horizons space probe   and Insight Observatory's ATEO-1 remote telescope located in New Mexico.
Wolf 359 Star animation with image data acquired from the New Horizons space probe
 and Insight Observatory's ATEO-1 remote telescope located in New Mexico.

The raw images obtained by the New Horizons space probe were downloaded from the website below dedicated to this project:

http://pluto.jhuapl.edu/Learn/Parallax/Parallax-Images.php

The camera used by the space mission was the Long-Range Reconnaissance Imager (LORRI). The raw images required some processing to eliminate image artifacts. This was done in the following steps:

- Creation of synthetic flat and removal of cosmic rays and hot pixels.
- Slight convolution of stars.

In order to measure the parallax angle, we must calibrate the two images in coordinates relative to the celestial sphere. This calculation was performed using the Astrometry.net program.

We determined the astrometric solution of the plate in the ICRS J2000 (International Celestial Reference System). Because the LORRI camera aboard the New Horizons spacecraft was designed to take images of trans-Neptunian objects, its resolution is only 4,09 arcsec/pixel as opposed to the much better resolution ATEO-1 telescope provides, ie 1,237 arcsec /pixel.

Results:
Since the geometry of the observations is more general than in the simplified model, respectively the Wolf 359 star is not centered in relation to the observation base. We first measured the angular distance between the star and the New Horizons probe at the date of the observation. The following were obtained:

θNH-Wolf359 = 125.20785° - The angular separation between New Horizons and Wolf 359.

According to the Jet Propulsion Laboratory website at the time of the observations, the distance between the Earth and the New Horizons spacecraft was 46.8534 AU, ie 7.028 billion kilometers. We measured the position of the Wolf star on the New Horizons frames and on the images obtained with the ATEO-1 telescope. We used all the images (3 provided by the New Horizons probe and 6 purchased with the telescopes we used) and averaged these measurements. To evaluate the measurement error we calculated their standard deviation. The results obtained are presented in Table 1.

Table 1: Wolf 359 star coordinates in both images obtained by   the New Horizons probe and ATEO-1 telescope - ICRS2000.
Table 1: Wolf 359 star coordinates in both images obtained by the 
New Horizons probe and ATEO-1 telescope - ICRS2000.

An important aspect of these measurements, given that the pixel size is large compared to the star's profile, is the algorithm for identifying the centroid of each star in the images. For this, we used two methods: the position of the brightest pixel and the algorithm proposed by the AstroImageJ program.

To calculate the parallax, we used the formula for calculating the angular separation (Jean Meus - Astronomical Algorithms). In this formula, α and δ are the right ascension and the declination and the indices 1 and 2 correspond to the measurements with our telescope, respectively with the New Horizons probe.

cos d = sinδ1 sinδ2 + cosδ1 cosδ2 cos (α1 - α2)

Based on this formula we obtained the following parallaxes. I marked it with d to differentiate it from the meaning described in the introduction.

d”Wolf359 = 16,479” ± 3,390 ”

Figure 3: The geometry of the Earth, New Horizons space probe and Wolf 359 star on April 22, 2020.
Figure 3: The geometry of the Earth, New Horizons space probe, and Wolf 359 star on April 22, 2020.

Taking into account the geometry of the observation (Figure 3) the distance can be calculated using the formula:

distEarth-Wolf359 ≈ distEarth-New Horizon / tg (d”) * sin (θ),

where distEarth-Wolf359 is the distance from Earth to the Wolf star, distEarth-New Horizon= 46.8534 AU is the distance from Earth to the New Horizons probe, and sin (θ) is the factor that takes into account the geometry of the observation.

We obtained the following distance for Wolf star:

distEarth-Wolf359 = 7,576 ± 1,559 light-years.

Conclusions:
This result corresponds to the recent determinations reported by the Gaia space mission and presented in the introduction. Our measurement has a lower degree of accuracy due to the low resolution of the LORRI (Long Range Reconnaissance Imager) camera with which the images from the New Horizons probe were recorded. This camera has a resolution of 4.09 ”/ pixel which means that a one-pixel position measurement error is a 10-20% parallax error (depending on the star). The approximations made in this calculation are insignificant in relation to the error in determining the position.

NASA's #NHParallax project to measure parallax by performing tandem observations on Wolf 359 and Proxima Centauri stars with the New Horizons spacecraft was purely educational, with NASA encouraging amateur astronomers around the world to make observations with their instruments at the same time as the space probe.

More details about this project can be found on the official website of the New Horizons mission:

http://pluto.jhuapl.edu/Learn/Get-Involved.php#NHparallax

The FITS files from the New Horizon space probe can be downloaded here:

http://pluto.jhuapl.edu/Learn/Parallax/Parallax-Images.php

The movement of the two stars is very difficult to visualize in the frames recorded on Earth, six months away because the parallax angle is extremely small compared to the star profile caused of the atmospheric disturbance recorded by the best observatories. The present project has managed to clearly illustrate this effect.

Authors Affiliation: 
Daniel Bertesteanu - Bucharest Astroclub
Marcel Popescu - Astronomical Institute of the Romanian Academy
Marian Naiman - Bucharest Astroclub
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Tuesday, June 23, 2020

ATEO-1 Nightly Rentals Now Available!

Insight Observatory's 16" f/3.7 astrograph reflector remote telescope is now available for full nightly rentals at discounted rates.

Astronomical Telescope for Educational Outreach (ATEO-1) is now available for full nightly rentals.
Astronomical Telescope for Educational Outreach (ATEO-1) is now available for full nightly rentals.

This 16" f/3.7 astrograph reflector remote telescope, designated the Astronomical Telescope for Educational Outreach (ATEO-1), is hosted at SkyPi Remote Observatory located at an elevation of 7,778 ft in the dark skies of New Mexico. This telescope went online back in August 2017 and is accessible remotely via the internet for students, amateur astronomers, and astrophotographers to conduct astronomical research and deep-sky imaging.

M81 and M82 - Bode's and Cigar Galaxies  (upper left),  M13 - Globular cluster in Hercules (lower left), and M63 - The Sunflower Galaxy in Canes Venatici (right). All image data acquired on ATEO-1 and processed by Utkarsh Mishra.
M81 and M82 - Bode's and Cigar Galaxies  (upper left),  M13 - Globular cluster in Hercules (lower left), and M63 - The Sunflower Galaxy in Canes Venatici (right). All image data acquired on ATEO-1 and processed by Utkarsh Mishra.

You may now rent a full night on this remote imaging system to gather image data in addition or as an alternative to purchasing imaging credits. Nightly rental use of the telescope can be for conducting research and deep-sky imaging for a flat discounted rental rate. These rental rates are depended upon the time of year the telescope is reserved. Discounted nightly rental rates cannot be applied with other running discounts and promotions.

If bad weather becomes a factor for your reserved night, you will be contacted either to reschedule or cancel without penalty. If your nightly imaging rental encounters unforeseen weather during the imaging run, we would then continue the imaging run the following night to complete the equivalent of a full nights worth of imaging hours.

Available slots are limited, so please Contact Us today for more information on pricing and details!
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