Article by Jason Rhian here at Spaceflight Insider: http://www.spaceflightinsider.com/editorial/opinion-newspace-needs-nasa-know/
First inaccuracy:
"Despite Boozer’s claims, NewSpace needs NASA"
Fact:
I never said NewSpace doesn't need NASA and have never believed that.
Another whopper:
"... would be wise to tamp down the “defund NASA” rhetoric"
????
Where did he get the nutty idea that I want to defund NASA? I have made it plain numerous times over the years that what I and most other anti-SLS advocates really want is for NASA to not be milked by pork-barrel politicians. Defunding of NASA is the last thing I want.
"The refrain employed by Boozer that
NASA didn’t “want” SLS – bears little resemblance with what these
officials have stated repeatedly."
OK, I did say NASA didn't want SLS. It is Rihan's long standing claim that this is not so which is patently false. An article by me with links embedded in its text that lead to documents backing up my assertion can be found here: http://www.thespacereview.com/article/2532/1
Rhian states, "NASA should serve as a pathfinder, with commercial companies taking over operations that NASA has left behind."
A true statement, but not in the way he means. As I have always stated, NASA indeed should be the pathfinder developing new cutting edge technologies with the commercial companies doing the stuff that has been tried-and-true for so long that it is beneath what NASA should be doing. The trouble is that SLS is NOT new cutting edge tech and it costs more than it should, as explained in the article by me to which I supplied the link above.
There are many other misrepresentations in Rhian's piece that I do not have time to address. It is starting to really bother me because this B.S. article now comes up on the first page of results from search engines when they are queried about my name.
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Showing posts with label Rick Boozer. Show all posts
Showing posts with label Rick Boozer. Show all posts
Friday, July 31, 2015
Wednesday, January 2, 2013
Ender's Game to be released in cinemas
For those of you who are Orson Scott Card fans, his classic "coming of age" science fiction novel Ender's Game is to be released November 1, 2013. Here's a brief description for those who aren't familiar with the saga.
A group of child geniuses from all over the Earth are assembled at an orbital Battle School. This gathering of young mentally unbiased talent is a desperate effort to figure out a way of defeating an alien insect-like race called the Formics, after said aliens execute an unprovoked attack on Earth.
I hope there is not the usual Hollywood botch up job (as was done with Heinlein's Star Ship Troopers), because I and other fan's have been waiting for this one for decades. I think the odds of getting a great movie are good because Card himself is writing the screenplay and is one of the producers. If they do it right, it will be great to see Ender (a child prodigy who is both intelligent and mature beyond his years), his loving older sister Valentine, and his sociopathic older brother Peter come to life, as well as the diminutive but unconquerable Bean. Bean will figure prominently, as the film is said to contain significant elements of both the books Ender's Game and Ender's Shadow.
It is slated to have a star studded cast with Asa Butterfield (who had the title role in Hugo) as Ender, Ben Kingsley as Fleet Commander Mazer Rackam and Harrison Ford as Colonel Graf -- to name a few. For more details look here (but I warn you first -- there are spoilers!): http://en.wikipedia.org/wiki/Ender%27s_Game_%28film%29
A group of child geniuses from all over the Earth are assembled at an orbital Battle School. This gathering of young mentally unbiased talent is a desperate effort to figure out a way of defeating an alien insect-like race called the Formics, after said aliens execute an unprovoked attack on Earth.
I hope there is not the usual Hollywood botch up job (as was done with Heinlein's Star Ship Troopers), because I and other fan's have been waiting for this one for decades. I think the odds of getting a great movie are good because Card himself is writing the screenplay and is one of the producers. If they do it right, it will be great to see Ender (a child prodigy who is both intelligent and mature beyond his years), his loving older sister Valentine, and his sociopathic older brother Peter come to life, as well as the diminutive but unconquerable Bean. Bean will figure prominently, as the film is said to contain significant elements of both the books Ender's Game and Ender's Shadow.
It is slated to have a star studded cast with Asa Butterfield (who had the title role in Hugo) as Ender, Ben Kingsley as Fleet Commander Mazer Rackam and Harrison Ford as Colonel Graf -- to name a few. For more details look here (but I warn you first -- there are spoilers!): http://en.wikipedia.org/wiki/Ender%27s_Game_%28film%29
Labels:
Astro Maven,
Ender's Game,
Orson Scott Card,
Rick Boozer
Saturday, December 1, 2012
Centre of Astronomy is officially moving
The Centre of Astronomy is moving from James Cook University to the University of Southern Queensland. Master of Astronomy, Doctor of Astronomy and PhD research students will be able to transfer to USQ and the time they have already completed in their research degree will be recognized by USQ, as will any milestones that have been completed such as their Confirmation of Candidature.
Friday, November 9, 2012
Review of Homer Hickam’s book: Crater
During my adolescent years, some of the most fascinating
books I read were what were then referred to as the “Heinlein Juveniles”. These were imaginative “space operas” written
by Robert Heinlein with such a solid underpinning of real science to them that
the young reader would not only get excited about the possibilities of space
exploration, but also pick up some of the fascinating science associated with
space flight. They inspired many of my
generation to dream of adventures in space while contemplating the interesting
science behind it, and also led many of us to pursue careers in science and
engineering.
Nowadays, novels for that age group are known as “Young Adult” fiction. It has been my hope to find some modern day novels that might inspire the current generation of youth, then recommend any worthy books to parents and teachers. Specifically I am looking for books with a sound scientific basis that will also excite young people similar to the way the above mentioned Heinlein books did for people of my generation. Indeed, I have encountered some really good recent science fiction yarns for young people. James Patterson’s Maximum Ride series comes to mind, as well as Harry Turtledove’s Crosstime Traffic series. Other books of more mass appeal such as the Hunger Games series are really good and thought provoking science fiction stories, but no books of the grand space opera variety were evident in my searches.
Enter Homer Hickam’s new young adult novel Crater. Many of you may recognize Homer as the author of the inspirational autobiographical book The Rocket Boys. The Rocket Boys was the basis for a popular movie in the late 1990s known as October Sky. In fact, I would recommend both the book and the movie to readers and movie watchers of all ages. I will never forget the reaction of my mother to seeing a trailer for October Sky on TV. That promotional footage showed boys launching their homemade rockets and also contained a heated argument about space between the young protagonist and his father. Such scenes were witnessed in real life by my mother decades before, prompting her to ask me, “Did someone make a movie about your life?”
But back to Crater. I won’t write enough detail to spoil reading it for anyone. The story takes place on the future colonized Moon. Our heroes are an orphaned teenage boy named Crater Trueblood and Maria, who is the slightly younger granddaughter of a powerful owner of a helium 3 mine. They undertake a long journey on an important mission that involves travelling across the inhospitable lunar surface. Crater must avoid enslavement by outcast genetically modified misfits, while also escaping death at the hands of very malevolent and grotesque cyborg commandoes who are intent on making sure our young heroes never reach their destination. I will only tell you this much more: two of my favorite characters are Gillie who is kind of an intelligent iPhone made of living organic goo, and Pegasus – a real live horse who Crater finds in the lunar wastelands. For those who find the latter character as incredulous as I did at first, Hickam presents Pegasus’ existence in at least a passably realistic and scientifically plausible way.
I thoroughly enjoyed the book. It contained high adventure peppered with cool scientific principles, such as: solving the world’s energy problems by mining the Moon’s massive quantities of helium 3 and shipping it back to Earth for use in nonpolluting fusion reactors that produce enormous amounts of electricity from just small amounts of helium 3. There are also spacecraft which follow “cycler” orbits that minimize the fuel and expense required for deep space flight. I could list more.
OK now, I get to the uncomfortable part. Though most of the science in the book is very sound, I found some scientific inaccuracies that prompted me to contact Homer to see if he would object to my publishing a review that would include their mention. After reading my short list of scientific flaws, he graciously informed me that he had no problem with my covering them. So here goes …
1) On
pages 29-30, the beginnings of Earth rise from the vicinity of the Apennine
Valley is mentioned. As is typical of
locations on the near side of the Moon, the Earth would never rise nor set, but
essentially maintain a relatively fixed position in the sky that would only
vary a little from stationary (this wobbling effect is called lunar libration) because of the
Moon’s elliptical or oval shaped orbit.
The only times the Apollo astronauts saw Earth rise was when they were
in orbit around the moon, since it was their orbital motion that caused the
Moon to rise and set. There is one thin
strip on the Moon where rising and setting of Earth could occur and that is at
the extreme edges of the lunar hemisphere visible from Earth where libration
would occasionally cause the Earth to rise a little above the horizon and then
shortly thereafter set where it rose.
2) On
page 245-246, the heroes travel up to an altitude of 60 miles on a space
elevator extending up from the lunar surface and once that height had been
achieved, they were in a condition of microgravity. The only way microgravity conditions can
exist at that altitude above the lunar surface would be for objects travelling
at the orbital speed for that altitude.
The part of the elevator at 60 miles high would not be travelling at
orbital speed. In fact the weight of
objects in the elevator at that altitude would be (by my calculations) about
93% of what it would be on the lunar surface.
3) The
most viable place for a shuttle to rendezvous with a space elevator is at the
lunar equivalent of geosynchronous orbit (that is, selenosynchronous orbit) and
that is also the place where microgravity conditions exist. Of course, the elevator’s counterweight would
be even farther out. The shuttle craft
(that was to take our heroes to the cycler ship Elon Musk) would not have been docking at 60 miles altitude because
the part of the elevator at that altitude would be far below orbital
speed. Going at the elevator’s low lateral
speed at that altitude, the ship would drop like the proverbial rock. The only way a shuttle could pick people up from
an elevator at that altitude would be for it to do a rocket powered landing on
a platform attached to the elevator, then take off under rocket power.
4) On
page 289, it is stated when Crater extracts water from the lunar soil, “water …
filled the resulting hole. Before the
pool could evaporate, Crater used a hand pump to fill a collapsible container
…”. Liquefied water exposed to high
vacuum evaporates vigorously fast (almost explosively). It would dissipate as fast as it formed. As a teenager I experimentally exposed a cup
of water to vacuum and saw this happen first hand.
I might also add that there are a few references to centrifugal force that should properly be termed centrifugal effect. This is the apparent pseudo-force that seems to pull outward on a massive object moving in a circle that is held in its path by an inward pulling true centripetal force. Instead of being a true force, centrifugal effect is merely a side effect of the object trying to travel in a straight line which the centripetal force does not permit. For instance, if someone in a circular rotating space station “drops” a ball, it appears to fall to the floor in a slightly curved path and seems to be pulled down toward the floor by a force causing the ball to flee in an opposite direction from the center of the station. That appearance of being pulled away from a center is the very source of the term centrifugal, from the Latin words “centrum” for center and “fugit” meaning “to flee” or “run away from”, as opposed to centripetal with “petal” derived from ”petus” meaning “seeking”; thus, a centripetal force tries to pull things toward the center of a circle.
However, someone standing outside the space station (assuming the station has transparent walls) will see that the apparently falling ball is really traveling in a straight line path that is tangent to the circular surface of the space station (due to the ball’s inertia because of Newton’s first law of motion) until the ball hits the floor; whereupon, it takes on the circular motion of the floor of the space station but appears to be sitting still to someone standing inside of the rotating space station. The ball will appear to have weight seemingly because it is being pressed against the floor by a centrifugal force, but in reality it is just the ball’s inertia trying to move it in a straight line in a direction that is tangent to the rotating motion of the station. Thus, it is actually being held in place by the true centripetal force imparted by the structural strength of the space station’s “floor”. In short, there is no such thing as centrifugal force; instead, what we call centrifugal force is just an observed effect caused by the centripetal force.
I heartily recommend Crater, regardless of those few objections. Judging from its subtitle, "a helium 3 novel", it appears that Crater may possibly be a first novel in the "helium 3" series of books and thus could offer readers something to anticipate as far as future adventures for Crater and Maria. Regardless, Crater was a fun tale in which the main characters seemed real enough to care about with a plot of high interest to keep my attention until the end. Give it to a young person in your life who likes a good read.
Labels:
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Friday, November 2, 2012
Binocular Astronomy for November
You don't need a telescope to see some really cool stuff in the sky. To see what's available this month for people in the northern hemisphere above 30 degrees latitude, check out this excellent British online publication that is complete with both text descriptions and sky maps.
Binocular Sky Newsletter, November 2012
Labels:
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Monday, September 17, 2012
I won the Brian May "A Kind of Magic" contest from Astronomy magazine
I have been informed that my essay titled “A Different
Kind of Magic” was one of two winners of the Brian May “A Kind of Magic”
contest sponsored by Astronomy
magazine.
As most of you probably know, Brian May is the former lead
guitarist of the renowned rock band Queen. Brian stopped his research for his
astrophysics PhD in the early 1970s to begin his decades-long stint with the
band, but a few years ago went back and finished his doctorate in 2007 at the
age of 60. The publishers of Astronomy
were inspired by his accomplishment of a lifelong dream so many decades after
he had started it. Thus, they created
the contest in his honor and named it after one of Queen's hit songs. Each entry
was to be a short essay on what the writer would do if he or she could
“magically” go back to school to become an astrophysicist as Bryan had
done. In my essay, I told the story of
how I have been doing exactly that, with the unswerving support of my lovely wife,
Julie. The prize awarded is a signed
autographed copy of Brian’s PhD thesis: A
Survey of Radial Velocities in the Zodiacal Dust Cloud.
You can now see the essays from both myself and my co-winner
on Astronomy’s website: http://www.astronomy.com/akindofmagic
I am very proud to say that my co-winner is 11 year
old Jay Mosley. The story of his ambition to
obtain a PhD in the study of hazardous asteroids is sure to be as inspiring to
others as it was for me when I read it.
This young man is bright and motivated with a long productive future
ahead of him as an astrophysics researcher.
Congratulations, Jay, and I envy you!
Friday, August 17, 2012
Seldom Seen Mercury
My wife Julie and I have been walking for exercise in the early morning from about 5:50AM to about 6:45AM. The last couple of mornings (August 17 and 18) we have been enjoying a triple line up from the horizon to about 10 degrees from the zenith of Mercury, Venus and Jupiter. All of them about equally spaced from each other. Had it not been cloudy for the couple of mornings prior, we would have glimpsed it before our first sighting. Mercury will no longer be easily visible by the finish of the week ending August 25, though the other two planets will still be prominent for some weeks to morning observers.
Mercury is the most elusive of all of the naked eye planets since it moves faster in its orbit than any other planet and during must of its orbit appears too close to the Sun to be observed because it is the closest planet to the Sun. It also appears very low to the horizon so that even distant trees and buildings can hide it, so there will be few places where one can have an unobstructed view. But for a few days every few months it appears far enough from the Sun to be easily seen given no obstructions: sometimes in the very early morning and at other times in the late afternoon.
Because of the transient nature of Mercury's appearance in the sky, many amateur astronomers have never seen it. Johannes Kepler (the first person to show that the planets travel in ellipses around the Sun and also the first to precisely figure their orbits) never saw Mercury his entire life! He figured the details of Mercury's orbit from the observations of Tycho Brahe. I myself have only personally glimpsed Mercury a few times prior to my latest viewing.
So if you didn't get a chance to see it this time in the morning, late afternoon opportunities will be available in early October of this year. Another morning apparition will occur a few months after that. It will keep alternating from morning to afternoon to morning as the year wears on.
Try to spot this fast moving messenger of the classical gods. If you do you will be in the ranks of the few people who have spotted it. Then you won't suffer the fate of poor Kepler!
Update: My thanks to Shawn Carlson, Executive Director of Labrats Science Education Program, for his kind compliment of this article.
Mercury is the most elusive of all of the naked eye planets since it moves faster in its orbit than any other planet and during must of its orbit appears too close to the Sun to be observed because it is the closest planet to the Sun. It also appears very low to the horizon so that even distant trees and buildings can hide it, so there will be few places where one can have an unobstructed view. But for a few days every few months it appears far enough from the Sun to be easily seen given no obstructions: sometimes in the very early morning and at other times in the late afternoon.
Because of the transient nature of Mercury's appearance in the sky, many amateur astronomers have never seen it. Johannes Kepler (the first person to show that the planets travel in ellipses around the Sun and also the first to precisely figure their orbits) never saw Mercury his entire life! He figured the details of Mercury's orbit from the observations of Tycho Brahe. I myself have only personally glimpsed Mercury a few times prior to my latest viewing.
So if you didn't get a chance to see it this time in the morning, late afternoon opportunities will be available in early October of this year. Another morning apparition will occur a few months after that. It will keep alternating from morning to afternoon to morning as the year wears on.
Try to spot this fast moving messenger of the classical gods. If you do you will be in the ranks of the few people who have spotted it. Then you won't suffer the fate of poor Kepler!
Update: My thanks to Shawn Carlson, Executive Director of Labrats Science Education Program, for his kind compliment of this article.
Thursday, August 16, 2012
Key Note Presentation at Starfest 2012
I will be a key note speaker for Starfest 2012 on Saturday, October 13, 2012 at Bays Mountain Park and Planetarium near Kingsport, Tennessee. My presentation will start at 10:30 AM and is called "The Magellanic Clouds: What nobody knew until now." Be prepared to be amazed at the latest astonishing discoveries concerning our Milky Way's two most prominent satellite galaxies. These discoveries include many findings that have yet to be published in either Astronomy or Sky and Telescope. This talk and slide show has been very enthusiastically received on prior occasions.
Labels:
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astronomy,
R.D. Boozer,
Rick Boozer
Wednesday, May 23, 2012
A Public Astronomy Presentation in Columbia, SC
I will be giving the presentation "The Magellanic Clouds: What nobody knew until now." at the June 7th meeting of the Midlands Astronomy Club in Columbia, SC.
UPDATE
I had an enthusiastic reception for my Magellanic Clouds presentation at Midlands Astronomy Club. There were some very intelligent questions asked by the audience at the end. I picked up a number of Twitter followers and Facebook friend requests from this one. Several told me afterwards that they particularly enjoyed learning about things they had never heard of.
UPDATE
I had an enthusiastic reception for my Magellanic Clouds presentation at Midlands Astronomy Club. There were some very intelligent questions asked by the audience at the end. I picked up a number of Twitter followers and Facebook friend requests from this one. Several told me afterwards that they particularly enjoyed learning about things they had never heard of.
Labels:
Astro Maven,
astronomy,
R.D. Boozer,
Rick Boozer
Friday, January 27, 2012
Measuring the Sun’s Diameter with a Cardboard Rug Tube
Copyright 2012 Rick Boozer
This project uses a long cardboard tube that comes with a linoleum rug with no lenses or mirrors, to measure the diameter of the Sun with fairly high accuracy! For maximum accuracy, it also requires the use of a digital camera, a computer and some free software. As I promised in my earlier article on how to make a camera obscura, this follow-on project uses the hole projection principle mentioned in that earlier article. Sorry for the delay in getting this project completed and up on this blog, but finishing the Completion of Candidature phase toward my PhD took precedence.
The General Principle of the Experiment
A hole at one end of the tube will be used to project an image of the Sun at the other end, just as the hole at one end of a camera obscura could project an image of an object on its opposite end. Such a device for measuring the properties of the Sun is called a heliometer, from the Greek word helios for the Sun, whilst meter means measure. Thus, a heliometer is an instrument for measuring the Sun. Please refer to my article A Camera Obscura from an Oatmeal Box for an explanation of the scientific principles behind the hole projection method upon which both projects are based.
Though the project is not highly complex or excessively time consuming, it is important to note that completion of the project requires skills, tools and material beyond those available to most children. I put close-up photos at the end of this article for those who want to see how I assembled the mount and other parts. But you should know that a jig saw and a drill are required for assembly of the mount. Thus, children should only participate in this project with careful adult supervision. Given these facts, I am writing this article at an adult reading level assuming that a grownup will supervise the construction of the instrument.
Figure 1: The assembled heliometer
In Figure 1 you see the completed heliometer. To prevent this article from being excessively long, I will merely explain how the instrument works instead of talking about how to assemble it. The tube is essentially a long camera obscura with a small hole on one end (through which sunlight will pass) and a translucent viewing screen on the other end, as pictured in Figure 2. The illustration is, of course, not drawn to scale.
Figure 2: Image of the Sun projected on the rear of the heliometer. Note: a circular cross-section of the spherical Sun is depicted on the left.
I actually used the oatmeal box from the earlier camera obscura project. I cut off the round bottom of the box, enlarged the pinhole and affixed it to the front of the tube. We need a fairly large hole so that a bright image can be formed on the screen, in this case around 4 to 5 mm across. You want the hole in the front to be as perfectly round as you can get it. I found that using a pencil soldering iron to burn through the cardboard makes a very smooth round hole. Just don’t keep the iron in contact with the cardboard for too long as you don’t want it to catch fire! Again, I used the translucent lid of the oatmeal box as the screen onto which the image is projected.
The triangles formed by the light cone from the Sun to the hole and from the pinhole to the image screen are proportional. However, the light rays at the hole do not cross at a perfect geometric point because the hole has a diameter of around 4 mm. Thus, the resulting image will be bigger than if the hole was a point. Look at the illustration in Figure 3 of the Camera Obscura article to get an idea of what I mean. The light beams from the Sun cross each other both before and after the hole. Intuitively, one might think that the final projected image will be wider than an ideal image theoretically generated from a perfect point and that it would be wider by an amount equal to the hole’s diameter. Using the aforementioned illustration, I came up with a geometric proof (which I will not detail here for the sake of brevity) that showed the image should indeed be larger by that amount.
Making Photos to Obtain Data for the Calculation
The following Figure 3 shows an actual image of the Sun projected on the translucent plastic screen that was shot with a digital camera. If your camera has a “macro mode”, you can set it to that mode to take perfectly focused photos at a distance of half a meter (about 1.6 feet) or less from the plastic screen: the closer the better. Please note that, for reasons to be explained later, the camera should be set up to put a time stamp on each image before you shoot.
Figure 3: Actual projected image of the Sun.
Many of you who are amateur astronomers may be familiar with the fact that any image of the Sun will exhibit limb darkening, which is a gradual darkening of the Sun’s image towards the outer edge of the solar disk. An explanation of why limb darkening occurs would cause us to stray too far afield. Instead, we’ll just talk about compensating for it because the true edge of the Sun is so darkened that it is not plainly visible. At this time we apply one of the advantages of digitally recorded images; that is, we can increase the visibility of certain things by heightening contrast and/or brightness with a fine level of control. In the next illustration, I heighten the contrast to maximum then adjust the brightness to give a stark white solar image disk with fairly sharp edges. The disk should appear larger because even the areas of the disk with previously invisible sunlight become detectible to the eye. Please note that the washed out areas above and below the disk are a reflection from my hand that was holding the camera and smears into part of the bottom of the solar image. That doesn’t matter since most of the disk edge is fairly sharp. Notice that the solar disk image is indeed slightly larger than it was in the unmodified image.
Figure 4: Solar disk adjusted to maximum diameter.
Extracting Data from the Photos
Before we measure the size of the solar image, it is important to find the scale of the image; which is the number of pixels per millimeter. So all I needed to do was measure the diameter of the plastic lid in pixels, then divide that by the actual diameter of the lid in millimeters. Most photo computer applications will show you the pixel position of the mouse cursor. It was easy to get the diameter of the lid in pixels by moving the cursor to the outer left edge of the lid and reading the smallest horizontal pixel position, then reading the largest horizontal pixel position directly on the other side of the lid across its diameter. Of course the actual diameter in pixels came from subtracting the position of the rightmost value from the leftmost. In my case the diameter of the lid was 2160 pixels. Since I had earlier measured the lid with a ruler as being 105 mm in diameter, the scale was 2160 pixels / 105 mm equals 20.57 pixels per mm.
Now is the time to measure the size of the solar image. We measure the diameter of the Sun’s image in pixels the same way as described for the lid. It was 824 pixels across, which led to 824 pixels / 20.57 pixels per millimeter equals 40.06 mm for the diameter of the solar image.
But remember, this image is too large by the diameter of the hole at the front of the tube; therefore, it is very important to measure the hole precisely. In order to do that I snapped an image of the piece of cardboard that contained the hole with a ruler below it. I used the ruler appearing in the photo to determine the scale of the image by noting 100 mm spanned 949 pixels, which meant that the scale was 9.49 pixels per millimeter. I then measured the diameter of the hole to be 44 pixels. So the actual diameter of the hole was 44/9.49 or 4.63 mm.
Figure 5: Measuring the hole at the front of the tube.
So the ideal size of my solar image was 40.06 - 4.63 equals 35.43 mm.
Figuring the Diameter of the Sun
Now we can get down to actually calculating the diameter of the Sun. First we need to figure the constant of proportionality for the two triangles shown in Figure 2. We do this by remembering that not just the sides and the angles of the triangle are proportional, but also the bases and the heights of the triangle. If we let the base of the bigger triangle be the true diameter of the Sun and let the altitude of that triangle be the distance between the Sun and the Earth, the same proportion will hold true for the second triangle whose altitude is the length of the tube and whose base is the diameter of Sun’s image. The length of my tube was 3789 mm. Dividing that by the diameter of the solar image, we find that the tube is approximately 106.943 times longer than the diameter of the image. That means that the distance to the Sun should be that many solar diameters. So if we divide the distance to the Sun by 106.943, we should have the diameter of the Sun!
But we want the most precise distance to the Sun that we can get, in order to maximize the accuracy of our answer. I did this by using the free planetarium software called Stellarium. In order for the application to give me accurate answers, I had to set it up for my latitude and longitude and my correct time zone. Once I had done that, I set Stellarium’s time and date to the value indicated by the image’s time stamp. At that point Stellarium showed the Sun as it appeared in the sky at the time the photo was shot. When I clicked the sun on my computer screen, it gave me the distance to the Sun as 0.98383515 AU. Expressed in kilometers, this distance would be 0.98383515 times 149,597,871 kilometers per AU. The product of those numbers is approximately 147,180,000 km. I then divided that number by 106.943 to get the Sun’s diameter as about 1,376,240 km.
The formally established diameter of the Sun to 6 decimal places is 1,391,020 km. The answer I got was too low only by 1.06% of the formally established value. Not bad for a cardboard tube! It may be possible to get it to even better accuracy if a PVC tube is used instead of a cardboard tube. The occasional light wind kept gradually bending my cardboard tube into a slight bow shape from which it would not straighten back out; therefore, I had to measure the direct length from the front to the back to compensate for the slight bow that developed. That shouldn’t happen with a PVC pipe.
What I would like to do (if I can get the time) is redo the experiment with a PVC pipe, take more than one measurement and average my results to maximize accuracy. Even though I took many exposures with this experiment, I only got one image well centered on the screen that was good enough for measurement. This was because of slightly windy conditions causing the tube to move on its mount. Furthermore, I had to keep re-measuring the length from front-to-back in order to compensate for the slight bowing of the tube by the wind. In other words, the rug store gave the cardboard tube to me for free, but I paid a price in other ways.
I hope some of you will try this experiment yourself. For me it was a fun break from work involving more advanced math and higher level physics. As for my next project, please be patient because it may be a few months. My PhD related research must take precedence, but my next project posted on this blog will be something amazing if it works!
Tuesday, May 24, 2011
Commercial Spaceflight Will Keep the U.S. Competitive
Yahoo! News has published another spaceflight related article written by me.
United States Will Beat China in New Space Race
United States Will Beat China in New Space Race
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Tuesday, March 22, 2011
I have been a human spaceflight enthusiast since childhood, over 50 years. For America to prosper in the future she must be a leader in, not just space exploration, but space exploitation. However, there are some politicians who are putting that future in peril in order to insure that pork flows to their constituents. If you are as concerned about this issue as much as I am, click the following link to read an article I have written on the subject.
Senators Crippling NASA - Associated content from Yahoo!
Senators Crippling NASA - Associated content from Yahoo!
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Friday, February 4, 2011
QSOs: Faraway Objects with Local Relevance
Copyright 2011 Rick Boozer
In my earlier article about the experience of earning my Masters degree, I mentioned that, “I learned so many fascinating new things that I never suspected, nor had I ever seen them mentioned in any popular astronomy publication. For instance, in certain unusual cases, there is a way to use radio signals from quasars to give image resolutions of less than a microarcsecond. That’s much finer than the Hubble Space Telescope’s best resolution and even better than from the widest baseline radio interferometer with dishes on opposite sides of the world!”
After some reflection, I thought it might be a good idea for me to share some of the cutting edge information about quasars with fellow astronomy enthusiasts. Indeed, as shall be shown, astronomical discoveries may have unexpected practical applications. Thus I wrote this article. However, before I cover the new stuff, some background information may be in order.
In astronomy it is not unusual that a strange new discovery is considered too far away to have practical uses, but later reveals a useful application beyond anything that came to mind when it was first detected. For instance, helium was discovered from its absorption lines in the Sun’s spectrum long before it was physically identified on Earth. This observation sparked a worldwide search until it was found in certain oil wells in the U.S. Of course, this discovery brought the myriad industrial and scientific applications for which helium is now used. No wonder the name of this gas is derived from the Greek word Helios meaning Sun.
In this article I present information about a very strange and incredibly remote type of object that at first glance may appear to have little significance to our understanding of local phenomena or our everyday lives. However, these objects offer surprising new investigatory directions into the understanding of interstellar conditions within our own small section of the Milky Way galaxy, while also yielding at least one “down to Earth” practical application and a possible utility that future interstellar travelers may want to use.
Quasi-stellar Objects or QSOs are some of the brightest known objects in the universe seen in gamma rays, X-rays, ultraviolet and visible light. It is not unusual for a QSO to shine at a level millions of times greater than the entire radiant output of our galaxy! QSOs appear extremely faint because of their cosmically extreme lookback [1] distances of anywhere between nearly a billion to around 13 billion light-years. Though they are not stars, they are usually seen as a star-like point of light and so are called quasi-stellar. Of course, even members of the general public have heard the name for a special type of QSO that emits very strongly in radio frequencies: quasar for quasi-stellar radio object. Somewhat confusingly, it is not uncommon nowadays for scientists to call a QSO a “quasar” even when referring to a QSO that does not appear as a strong radio emitter.
The Nature of the Beast
Residing at the very center of a host galaxy, the source of the QSO’s immense radiant power is an Active Galactic Nucleus AKA an AGN. An AGN consists of an enormous black hole massing the equivalent of hundreds of millions or even billions of Suns along with a surrounding accretion disk of swirling matter that is pulled inward by the black hole’s gravitational field.
It is the accretion disk that is the source of the intense radiation. Heat induced by the compression of continually in-falling gases piling up within the accretion disk brings the disk to incandescent brilliance.
The intense magnetic field produced by the rotating black hole attracts some of the accretion disk’s matter away from the disk. Matter siphoned off in this manner then gets shot out in two opposing continuous jets of plasma near the black hole’s north and south magnetic poles. In some instances, the strength of the black hole’s magnetic field is so strong that the plasma is ejected at speeds approaching that of light! This plasma may emit magnetically induced radio emission that is highly polarized, known as synchrotron radio waves. A classical quasar’s strong radio signature is the result of this synchrotron radiation.
The tiny star-like appearance of a QSO is not only due to its enormous distance, but also its relatively compact physical size. Shortly after their initial discovery in the 1960’s, it was observed that the optical brightness of an entire QSO would sometimes vary drastically over time periods as small as several days. Because nothing can travel faster than light, these short pulses in increased brightness would imply that the AGN could be no bigger than the distance light could travel from one side of the QSO to the opposite side during the fluctuation period. Thus it was deduced that the size of the emitting part of a QSO could be no more than mere light-days to light-months across: a distance much smaller than the typical separation of stars in the tightest packed part of a normal galaxy. Indeed, the radiation equivalent of billions of Sun’s can be confined to a region within the AGN that is roughly on the scale of our own Solar System’s diameter! As the reader will see, sophisticated observational techniques developed in later decades confirmed the relatively small size for a QSO’s AGN and even allowed a highly accurate direct measurement of its diameter.
The short-term optical variation is normally the result of processes occurring within the QSO itself. A description of what is known of these processes would fill a long article all by itself; therefore, coverage of this topic is not appropriate for this short written piece and would also deflect our attention from other interesting features of QSOs. From this point on, our focus will be on observed variations in a QSO’s radio emission and some surprising discoveries associated with these observations.
The Mystery of Rapid Radio Signal Variations
One perplexing problem presented itself when radio intensity variations measured in hours were seen. It was calculated that for these fluctuations to be in the QSO itself, that the QSO’s temperature would have to be at least 1019 Kelvin! This temperature seemed absurdly high. Quantum mechanics dictates that any body with a temperature greater than about 1012 K should emit copious amounts of a special type gamma ray known as inverse Compton radiation. (Savolainen and Koralev 2008) It then seemed unlikely that the QSO was actually causing the radio fluctuations when no inverse Compton radiation was detected. (Tsang and Kirk 2006) Clearly some mechanism external to the QSO must be in play.
Observed radiation fluctuations, whether they are in visible light, radio or any other part of the electromagnetic spectrum are called scintillation. All of us have seen scintillation of visible light with our own eyes as the twinkling of stars in the night sky and an explanation of this twinkling may give some insight into its radio counterpart.
In the case of visible star scintillation, turbulence in the upper atmosphere causes changes in the optical properties of a high level layer of air to make the starlight seen by an observer appear to either vary rapidly in brightness or cause equally fast apparent shifts in the star’s position. Astute sky gazers may notice that even when the stars twinkle noticeably, any planets that are visible at the same time will shine with an unvaryingly steady light.
Why is there a marked difference in the perception of these two types of objects when light from each is passing through turbulent cells of air? The farther away from an observer that an object of a given physical size is, the smaller it appears to be. Expressed differently, the object’s apparent size measured as an angle will be smaller with increasing distance. Turbulent air cells generally measure but a fraction of an arcsecond across. Though a star’s physical size is much greater than a planet’s physical size and much greater still than any air cell’s physical size, the immense distance of the star is so great that its apparent angular size is much smaller than the apparent angular size of the invisible cells of air turbulence that are causing the twinkling; therefore, any changes in the foreground turbulence will greatly affect the appearance of the star. Though the apparent angular diameter of a planet may be so small that an earthbound observer will perceive it as a point, it is still proportionately much closer to the observer than would be any star. In other words, the ratio of a planet’s physical diameter to its distance is enormously larger than the ratio of a star’s physical diameter to its distance. Since a planet’s apparent angular diameter is also usually much larger than the apparent angular diameter of any cell of air turbulence, the light from the planet will appear not to vary. The following illustration depicts this principle and is, of course, not drawn to scale.
The observer’s location is marked with X and both turbulent air cells are of identical absolute physical size and of equal absolute distance from the observer. Though the star is physically much larger than the planet, the planet is much closer. Thus the apparent angular diameter, α, of the star is smaller than the apparent angular diameter, β, of the planet. The cell in front of the star has a wider apparent angular diameter than the star; therefore, the star twinkles. The same size cell in front of the planet has a smaller apparent angular diameter than the apparent angular diameter of the planet, so that the planet does not twinkle.
Getting back to radio variations of QSOs, the question being asked was, “Were the observed rapid fluctuations being induced into the signal as the QSO’s radio waves traveled through some turbulent cell of material on their way toward Earth?” The first clue that this situation might be the case came in 1998 when two radio telescopes located extremely far apart (one in Australia and one in New Mexico) made simultaneous observations of a QSO designated PKS 0405-385. When a particular intensity fluctuation pattern appeared at the Australian radio telescope, the same variation would show up approximately two minutes later at the New Mexico instrument. This situation was very strange because if the variation was intrinsic to the QSO, the same variation should have shown up on the New Mexico instrument only milliseconds later, that is, after the time it takes light to travel the distance between the two instruments. (Jauncey et al. 2002; Bignall et al. 2007; Savolainen and Koralev 2008) Soon, simultaneous observations of other QSOs revealed delay times that were often much longer.
The extremely tenuous gas and dust spread throughout the space between the stars within our galaxy is called the Interstellar Medium or ISM. Most of it contains only a few hydrogen atoms per cubic meter and is thus a better vacuum than the best that science has ever achieved, though randomly interspersed throughout the ISM are occasional denser clouds of dust and gas. As all amateur astronomers know, some of these nebulae can be seen in visible light. In other words, the nebulae may shine by reflecting the light of nearby stars or their constituent atoms may absorb ultraviolet radiation from local stars and re-emit the absorbed energy as visible light. Conversely, a cloud may be dense enough that the dust within it absorbs the light of the stars behind it, producing what appears to be a black void within the sky that is commonly referred to as a coal sack. Another alternative may also occur where such a cloud is so extremely thin that it may be transparent enough as to be nearly or completely optically invisible.
After the observations were made by the Australians and Americans, astrophysicists were strongly suspecting that QSO radio scintillation could be the result of turbulent cells as the radio waves from the QSO pass through the last type of cloud described in the immediately preceding paragraph. That would explain the excessively long difference in arrival times seen at the widely separated radio receivers. In other words, a particular turbulent cell might induce a characteristic fluctuation pattern at the Australian radio telescope, but that same cell might have to travel a few minutes before it was in a position to cause the same fluctuation to appear at the American radio telescope. Other corroborating evidence was needed to clinch this conclusion, but that confirmation was not long in coming.
Something very strange began to be seen in very short-term radio intensity variations in QSOs that went up then down over time spans ranging from minutes to several days. A gradual orderly change in these short-term scintillation patterns showed up over the course of a year and the same cycle of change repeated again on following years. (Jauncey et al. 2002; Linsky et. al 2007; Savolainen and Kovalev 2008) As any scientifically literate person knows, a year is the time it takes the Earth to complete one orbit around the Sun. It was soon realized that this was the clincher as far as proving that scintillation was being induced by material in the ISM relatively close to us. The speed of the Earth’s orbit around the Sun is around 30 km s-1; however, the speed of the material in the local ISM is also close to 30 km s-1. (Jauncey et al. 2002) When the motion of the Earth is approximately parallel to the velocity of the ISM, they have a low relative speed and the variation of the scintillation pattern is slow. But six months later, when their motions are in opposite directions, they have a high relative speed and the variations are observed to be much faster. Thus, we are given conclusive proof of two facts: 1) that the variations are turbulence induced scintillation and 2) that the Earth indeed orbits around the Sun a la Copernicus! (Jauncey et al. 2002; Savolainen and Kovalev 2008) After this conclusive evidence was obtained, short-term variations of QSO radio intensity were christened Interstellar Scintillation or ISS for short. Any turbulent interstellar cloud inducing radio variation is called a screen.
But the evidence got even better. When computer models were constructed using the fluctuation times as input data, the theoretical predicted distance and position for each screen was almost a perfect match for a known “local” thin interstellar cloud that was at least barely detectable in either visible light or ultraviolet light! (Linsky et al. 2007) All of the evidence put together was about as close to a smoking gun as one ever gets in science.
Super Sharp Seeing in the Radio Spectrum
But here is the exciting part. Those same radio variations can be used to reveal fine details of the structure of a QSO in far greater resolution than any ground-based or orbiting telescope is capable of accomplishing! For decades the finest resolutions astronomers attained were achieved using a technique called Very Long Baseline Interferometry or VLBI. VLBI involves multiple radio telescopes observing the same object at the same time but separated by thousands of kilometers to give them the same resolution as a single stupendous radio telescope with a dish as wide as the distance between the two most widely separated radio telescopes. However, the scintillation technique even out-performs VLBI. The previously introduced analogy of visible atmospheric scintillation when stars twinkle may be extended to illustrate how such incredibly fine resolution is obtained.
Remember that if an object located behind a turbulent cell of air (from the point of view of the observer) has a smaller apparent angular diameter than the cell, the object will appear to scintillate. But if the object has a bigger apparent angular diameter than the cell, no twinkling is seen.
What if an observer was able to somehow detect a turbulent air cell and measure its apparent angular diameter? During the course of a night, a number of different turbulent air cells of varying diameters might come between the observer and an observed object. The observer would then be able to notice the maximum apparent angular diameter of a cell that caused twinkling and a minimum apparent angular diameter for a cell that did not cause twinkling. He/she would then know that the apparent angular diameter of the observed object would have to be an angle with a size between the diameters of the former and the latter.
As mentioned before, turbulent cells within an interstellar screen cause the radio scintillations that are equivalent to atmospheric twinkling. The method described in the immediately preceding paragraph has been used to measure the extremely tiny angular diameter of various QSOs. In fact, the resolution obtained is so fine, that astronomers have even resolved structures within the AGNs of some of the closer QSOs!
Angular resolutions on the order of 1 micro-arcsecond can be achieved. In comparison, this resolution is around 1000 times finer than that of the Hubble Space Telescope at its shortest usable wavelength! (Jauncey et al. 2002) And since the distance to a QSO can be determined from the amount of cosmological redshift observed in its emitted light [2] (grist for another entire article), the actual physical size of the QSO can be calculated from its apparent angular diameter. In this case, even assuming a QSO is halfway across the observable universe at a lookback distance of about 6.8 billion light-years, a structure of a mere three light-months in physical diameter can be measured. (Jauncey et al. 2002)
Clues of What’s Closer to Home
But just as radio scintillation can be used to gather information about a QSO, it can also be employed to investigate the properties of interstellar space in our neighborhood. This convenient situation is the result of the fact that the screening clouds have to be relatively close to our solar system. How do we know this? There is a maximum distance away from us that a turbulent cell of a particular physical size can be and still induce scintillation in a QSO. This distance is where the apparent angular diameter of the cell equals the apparent angular diameter of the QSO. Any farther away would lead to a situation in which the angular diameter of the QSO would be greater than the angular diameter of the turbulent cell and thus no scintillation would occur. (Bignall et al. 2007)
So the fraction of material capable of producing fast variability is restricted to the ISM in the Sun’s vicinity. Furthermore, the scarcity of detected screens relative to the overall number of QSOs observed indicates that such clouds of scattering material are few and far between in our immediate section of the galaxy. (Bignall et al. 2007) ISS observations indicate that there are on average 1.7 screens along any line of sight, with a typical line of sight usually having between only 1 and 3 screens (Linsky et. al 2007)
One may wonder what produces the turbulence in the interstellar cloud material. It is thought that areas of the highest scintillation-causing turbulence occur at places where the outer edges of two or more of these clouds come in contact with their different speeds of motion and travel direction. The slightly different velocities of the two clouds produce turbulence where they interact. (Linsky et. al 2007) Because they are on the outside of the cloud, these border edges lack shielding from ionizing radiation put out by one giant blue-white star that is relatively near our Solar System and several local white dwarf stars. The result is a much larger than normal number of fast freely moving electrons that increase turbulence to an even higher level, making these interacting areas hot beds for the production of scintillation. (Linsky et. al 2007)
Finding Our Way Around the Earth with QSOs
Everyone nowadays is familiar with the Global Positioning System that employs a fleet of special navigational satellites in Earth orbit. GPS has pretty much totally supplanted celestial navigation for ship and airplane travel. Even more immediate to people’s everyday lives is the fact that the technology has trickled down to the individual level in the form of automobile navigation systems and emergency location in life or death situations.
But to figure locations anywhere on the face of the Earth within an accuracy of mere meters requires exacting determination of satellite positions at ultra-precise times. Constantly occurring variations in the tilt of Earth’s axis have to be continually taken into account for the system to function with pinpoint accuracy. The tilt variations are detected by referencing the locations of QSOs because their distances are so immense that their motion is not detectable as a change in the object’s position and thus they “stay put” in their apparent relative places all over the sky. VLBI measurements have been used to obtain precise positions of a number of QSOs and have been compiled into a catalog to serve as base navigational references. The catalog is called the International Celestial Reference Frame abbreviated ICRF. (Ma et al. 1998)
Beyond Terrestrial Navigation
Finally, it would stand to reason that QSOs might eventually be used as a natural “galactic” GPS in the event that humanity ever achieves the capability to travel multiple light-year distances. Extremely miniscule changes in observed relative positions of QSOs in relation to each other would be attributable to a traveler’s change in position within the galaxy and thus could be used for navigation purposes. Assuming measurement capabilities continue to progress as they have heretofore, it is not unreasonable to expect that equipment to measure such incredibly minute deviations may be achievable by any future civilization technically advanced enough for interstellar travel.
Who knows what other uses we’ll find for these exotic objects as time goes on?
For that matter, what as-yet-to-be-conceived applications may follow once we know more about the nature of what we now call dark matter and dark energy? After all, those two vaguely descriptive names were chosen because we couldn’t choose better ones since we don’t really know what those properties physically represent!
In short, judging by the past history of scientific discovery, it would seem unwise for anyone to say that any particular realm of scientific knowledge will always only be of purely academic interest.
References
Bignall, H.E, D. L. Jauncey, J. E. J. Lovell, A. K. Tzioumi, J-P. Macquart, and L. Kedziora-Chudczer “Observations of Intrahour Variable Quasars: Scattering in our Galactic Neighbourhood” Astronomical and Astrophysical Transactions, 26 (2007) 567 - 573
Jauncey, David, Hayley Bignall, Jim Lovell, Tasso Tzioumis, Lucyna Kedziora-Chudczer, J-P Macquart, Steven Tingay, Dave Rayner and Roger Clay, “Interstellar Scintillation and PKS 1257-326” ATNF News (October 2002)
Linsky, Jeffrey L., Barney J. Rickett, and Seth Redfield “The Origin of Radio Scintillation In the Local Interstellar Medium”, The Astrophysical Journal, 675 (2008) 413-419
Ma, C, E. F. Arias, T. M. Eubanks, A. L. Fey, A.-M. Gontier, C. S. Jacobs, O. J. Sovers, B. A. Archinal and P. Charlot, “The International Celestial Reference Frame as Realized by Very Long Baseline Interferometry”, The Astronomical Journal, 116 (1998) 516-546
Savolainen,T. and Y. Y. Kovalev. “Serendipitous VLBI Detection of Rapid, Large-amplitude, Intraday Variability in QSO 1156+295” Astronomy and Astrophysics 489 (2008) L33-L36
Tsang, O. and J. G. Kirk “The Inverse Compton Catastrophe and High Brightness Temperature Radio Sources” Astronomy and Astrophysics 463 (2007) 145-152
Footnotes
[1] The lookback distance is how far the light traveled from an object to reach the Earth. In the case of the farthest detectable QSOs, this distance is about half of the true present-day distance between the Earth and the QSO – called the comoving distance. The reason why is that the universe was continually expanding while the light was en route, causing the Earth and the QSO to become further and further apart during the transit time as the space between them was stretched wider by the expansion.
[2] A wave of light is lengthened (i.e., cosmologically redshifted) because the space it is traveling through is stretched by the continual expansion of the Universe; which in turn, stretches the wave of light. Some inaccurately term it as a cosmological Doppler shift. But the relative motion of a light emitting object, not the Universe’s expansion, causes a true Doppler shift!
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