Showing posts with label Astronomy. Show all posts
Showing posts with label Astronomy. Show all posts

Tuesday, November 26, 2019

Ohio University Professor Believes Bugs Are on Mars, is a Conspiracy Trying to Silence Him?

conspiracy to silence bugs on mars theory
Is this a tiny Martian?
Could there be life on Mars in the form of insects and could a government conspiracy be afoot to suppress it? At a November 19 meeting of the Entomological Society of America, William Romoser, emeritus professor of medical entomology at Ohio University, went so far to say that, based upon his findings, “there has been and still is life on Mars” based on pictures snapped from NASA's Mars rovers that seemed to show insect-like forms.

The overwhelming response, not surprisingly, was harsh and the official retraction quick, perhaps too quick. First, though, some background.


In science, reputation is no protection against criticism. Romoser's credentials are impressive. Having earned his doctorate in 1964, Romoser served at Ohio State University along with the Universities of Florida and Georgia for short stints before joining the Army's Medical Research Institute for Infectious Diseases, where he worked for 20 years before joining Ohio University as an emeritus professor of medical entomology. In that time, he published dozens of peer-reviewed papers and even wrote a textbook (since updated several times) on the subject.

As for the criticism from his peers, there is a common thread: pareidolia. What is pareidolia? It is the act of perceiving things that don't really exist. Common examples include seeing a face in the Moon and shapes in clouds. Yes, we all know that there is no Man in the Moon and that there really isn't a tree (or whatever else) in the clouds but, as we all know, we sure do perceive these things as being there. The most famous case of Martian pareidolia (among many) is the 'Face' on Mars, which was first seen during the Viking missions in the mid 1970s but that was later shown via higher resolution photographs to be nothing more than just the average hill hit with a convenient angle of sunlight. As for Romoser, many critics think that what he is seeing on Mars is nothing more than bits of rock that look like insects, which would be easy for him to notice after 50+ years spent looking at insects here on Earth.

As for NASA, the space agency has issued its own rebuttal to Rosomer's claims but says that its upcoming rover, set to land in February, 2021, will be equipped to look for evidence of ancient Martian life. Others even went so far to say that Romoser's idea could damage the search for alien life.


While the criticism was to be expected, an unexpected development (according to some) has also followed: many references to the story have disappeared from the Internet.

Many web pages about this story are now gone. The web page on Ohio University's website detailing Romoser's presentation has been removed, with the University later adding through its media relations department that Romoser no longer wishes to engage with the press. Additionally, an announcement on Eureka Alert, a press release platform operated by the American Association for the Advancement of Science, was also deleted “at the request of the submitter.” Phys Org also removed a web page dealing with the topic. Now for the kicker: Romoser's own website is now offline and listed as private.

So, could a conspiracy be afoot to suppress the idea that there are insects on Mars? Hardly.

Retractions in the scientific community are nothing new. There is now even an online database of retracted scientific papers. So far, there are over 18,000 unpublished papers now online and counting. When considering this whole series of events, one must remember that, at its core, science is a process of asking questions and drawing conclusions, which may or may not be correct. This is how science has operated since Ancient Greece and is how it will continue to (hopefully) operate centuries into the future. The real difference now is the advent of the Internet and now social media, which has allowed anyone to post anything without review, instantaneously.


Romoser's claim was sensational, no doubt. As a result, once it was initially picked up online, it spread like wildfire around online media, where both career scientists and the general public read about it. The observation of 'insects' on Mars being almost certainly wrong but explainable by other means (pareidolia), criticism was sure to come, which it did from both. In years past, the criticism would have come as a trickle as (mostly) scientists would have written personally to Romoser, Ohio University, or even the Entomological Society of America in order to question the findings in a professional manner.

Come 2019, things couldn't be more different. Now, instead of picking up a paper and pen, hand-writing a letter at a table/desk, and then putting it in a stamped (the horror of having to buy a stamp!) envelope, anyone can pick up their phone, tap out a message, and send it to its intended target electronically and instantaneously. These messages can come by way of email, social media, and even the comments sections of news outlets that have the function. Not having access to associated parties' email accounts and wanting to stay out of the sewer that is social media, I can only view the public comments sections on online news sites, many of which were pretty ugly and often of personal, not professional, nature when it came to Romoser himself.

In the end, it probably wasn't some conspiracy by NASA/the government that caused Romoser and Ohio University to backtrack in surprising haste. In all probability it was the social media lynch mob, which in itself can be dangerous to the very concept of a free society, that probably caused the quick retraction as Romoser and Ohio University were probably deluged with a tsunami of hate mail that neither wanted to deal with. This is ironic because the internet was supposed to encourage, not suppress, the willingness to speak openly.



Like What You Read?

Why not check out other great stuff about photography, astronomy, associated gear, and how to use it.

Think someone else would find this informative (or at least entertaining)? Use the buttons below to share!

Tuesday, February 14, 2012

Valentine's Day, Planet George, and why You Can't Name a Star for Your Sweetheart



William Herschel: it's his fault you can't name a star for your sweetie.

Today is Valentine's Day, the traditional day for people in love to celebrate each other's company with gifts like flowers, candy, and other things that have no place on a family-friendly website! In recent years, though, one new phenomenon has come about: pay some money and you can get a star named just for your special someone. While it may seem like a cosmically-cool way to say “I love you,” it is nothing more than a scam of astronomical proportions.

Why is this? It all started with the Planet George fiasco in 1781.



When it comes to naming heavenly bodies, the International Astronomical Union (IAU) is the only body who's opinion matters. In the past, naming things in space was a kind of Wild West if you will. At one time, any body or feature on a body was named by whoever discovered it. Usually, the names were respectable and most in the astronomical community went along with them. However, a turning point came in 1781 when British astronomer William Herschel discovered a planet beyond Saturn.

Being a patriotic Englishman, for Herschel, it was only natural to name the new planet after then-king George III. If Herschel was trying to gain the king's favor in hopes of financial assistance, it worked as George III became Herschel's patron after the discovery. Herschel's proposed name for the planet: Georgium Sidus (the Georgian star). However, for people of other nationalities, especially the French, a rival nation's king wasn't someone they wanted associated with the 7th planet in the solar system.. 
Not surprisingly, astronomers of other nations didn't adopt Herschel's king-honoring name, opting to call the planet 'Herschel' instead. In time, though, in keeping with tradition, the 7th planet was named Uranus, the Latinized version of the Greek sky god's name, Ouranos. Why Uranus? Simple. Saturn (6th planet) was the father of Jupiter (5th planet). So, in keeping with this father-son trend, it was only natural that the 7th planet should be named for the father of the 6th, which, by default, would be Ouranos (Uranus), who was the father of Saturn.

By 1850, Uranus was finally the universally (or at least Earth-wide) accepted as the name for the 7th planet (8th planet Neptune being discovered two years previously).

So, after the decades-long Planet George fiasco, the rules for naming things in space became more clearly defined and the international community decided as a whole that the names for bodies in the cosmos should not reflect national chauvinism on Earth. In time, these unwritten rules would evolve into the formal procedures of today where only the IAU, not late-night advertisers, can approve the name for any cosmic body.
In conclusion, next time you hear an ad where, for a fee, you can name a star after your special someone, don't only ignore the ad, but then warn your friends of such scams. As for the “certificate” you'll get in the mail, it isn't worth the paper it's printed on.

As a final message, here are some final Valentine's Day thoughts:
Box of chocolate: $10
A dozen roses: $30
Fancy dinner: $50
Not being an idiot by “naming” a star: priceless


For More Historical astronomy

The Planet of Bethlehem?
A History of Cosmology: Prehistory to Present
Galileo's Fingers Go on Display.
Renaissance Astronomy: Part 1
Renaissance Astronomy: Part 2
Renaissance Astronomy: Part 3
The Equinox and a Magic Show from the Maya
Ancient America: the Moundbuilders
Ancient America: the Southwest
Ancient Egypt
Classical Greece
The Summer Solstice Sun and the Size of the Earth

The 1833 Leonids: History's Greatest Meteor Storm

The 10 Brightest Comets of All Time
Ben Franklin and the Truth About Daylight Savings Time



Like What You Read?

Why not check out other great stuff about photography, astronomy, associated gear, and how to use it.

Think someone else would find this informative (or at least entertaining)? Use the buttons below to share!

Thursday, October 21, 2010

Astronomy in Ancient Egypt

Think 'Egypt' and most people think of pyramids, not astronomy.
When one thinks of Ancient Egypt, pyramids, hieroglyphs, and mummies come to mind, not astronomy. However, unbeknownst to many who are more conscious of the more popularized aspects of Ancient Egypt, the Ancient Egyptians left quite as astronomical legacy, too.

Trying to trace the history of Ancient Egypt is difficult as Egypt (along with the Fertile Crescent) can be considered the birthplace of civilization. By 7,500 B.C., the first permanent settlements were already in existence in the Nile Valley. By 3,500 B.C., two distinct kingdoms, Upper Egypt in the South and Lower Egypt in the Nile Delta, had emerged. In the centuries that followed, Upper would conquer Lower Egypt, thus unifying the country and establishing Egypt of the Pharaohs. This unification took place under a king named Narmer (alternately given as Menes) in around 3,100 B.C.

When compared to the Fertile Crescent, Egypt was much better suited to breed a great civilization and all of the things that come with it, including: literature, religion, medicine, art, music, and science. While the Fertile Crescent was located on a flat floodplain between two irregular rivers (Tigris and Euphrates), Egypt was nestled in a valley bordered by deserts and bisected by a river that behaved like clockwork with its annual flood. With a reliable water source and protection from invaders on 3 sides, Egypt was the perfect location for history's first great civilization.

Now, onto the astronomy.

Even before the kingdom of Egypt was unified under Narmer, Egypt was a nation of farmers. Every year, snow in the Ethiopean highlands (where the Nile originates) causes the world's longest river to swell. In time, the flood reaches Egypt and inundates the land with water. While many would consider this a disaster, the Egyptians did not. Along with the water, the Nile flood also brought large deposits of nutrient-rich Nile mud. When the water receeded, the land would be covered with soil that was perfect for planting. Unlike other areas where there was always the risk of exhausting the soil, this problem was nonexistent in Egypt as the Nile would bring a fresh later of rich Nile mud each year. With this lucky chance, farming flourished in Egypt as it could nowhere else in terms of both productivity and yearly security.


'Nilometers' were used for measuring the height of the annual flood.
So, with this national reliance on farming, telling time was a most important business.

As far as we know, the Ancient Egyptians were the first people to recognize the 365 day year. For the Egyptians, a calendar allowed them to predict the time the Nile would flood. This way, the growing season could be determined from year to year. Besides the calendar, the Egyptians also noticed another astronomical portent of the seasons: every July, the Dog Star, Sirius, would appear to rise just ahead of the Sun. The helical rising of Sirius is where we get our “dog days of summer,” which mark the hottest period of the year.

On a more day-to-day scale, the Egyptians also developed a system for dividing up smaller units of time. The Egyptians divided the 365 day year into 12 lunar months of 30 days each. Also, the day was divided into 36 weeks of 10 days. Unfortunately for the Egyptian working man, the weekend was still only 2 days! Like other civilizations obsessed with even numbers, the last 5 days of the year were troublesome for the Egyptians. Unlike other cultures, the optimistic Egyptians took the last 5 days as a cause for celebration. Considered independent from the rest of the year, the extra 5 days were marked by festivals, feasting, and general revelry as the Egyptians celebrated the gods' birthdays at this time.

Unfortunately, as smart as the Egyptians were, they never picked up on (or did anything about) the fact that the solar year is actually 365 ¼ days long. As a result, after 4 years, the calendar would be a day off of what is was supposed to be. In longer time spans, the difference would become dramatic. In 100 years, the calendar would be almost a month off of where it should be. In all, it would take 1460 years for the calendar to cycle back to where it needed to be. So, with the calendar essentially useless most of the time, how could one go about telling the time of year?

Enter the Dog Star.

By an amazing coincidence, the helical rising of Sirius not only marked the start of the hottest days of summer, but also heralded the soon to come Nile flood. At its origin, the Nile would flood in spring. However, it would take several months for the flood to reach Egypt, with the delta over 4,100 miles downstream. So, come July, just like clockwork, the Nile would flood just as Sirius reemerged on the other side of the Sun as a morning star. With this lucky chance, the Egyptians were still able to tell time regardless of their flawed calendar. Because of this new cycle of flooding, planting, and harvesting, the Egyptians considered the first appearance of Sirius in the morning as the start of a new year. In Egyptian mythology, Sirius became associated with the goddess Isis, who is credited with creating the first mummy after she restored her slain husband, Osiris, to life after he was killed by his evil, envious brother, Seth. A more appropriate choice of stellar association was not possible as, just as Isis restored Osiris to life, the Nile flood, announced by Sirius, would restore Egypt to life via the life-giving waters.

Although it was only one star, the gods-stars association would grow much stronger as time progressed.

For the Ancient Egyptian, the greatest concern in this life was preparing for the afterlife. Although there were many different theologies in the early days of Egypt, they eventually coalesced together into a uniform religion that, at its start, was very stellar in nature.

The central idea of Egyptian religion was that, to guarantee an afterlife, the body needed to be preserved. Again, no one is sure where this idea came from but one idea is that, after burying the dead in the sand, the sand would dry out the body before bacteria could cause it to decay, thus preserving a shriveled, but very recognizable human form. In essence, these were naturally made mummies. In time, the sand would shift, revealing these preserved corpses. The living, upon seeing the bodies, may have assumed that, since the remains looked so life-like, that the individuals cheated death. What started as accidental preservation soon became an obsession and a central idea of Egyptian religion.

However, some people could see to that they were better prepared for the afterlife than being buried in the sand and hoping for the best. The pharaohs, considered living gods, had the wealth of Egypt at their disposal in order to ensure eternal life. With all the resources commanded, the pharaohs commanded elaborate tombs be built and techniques developed for the purpose of preserving the body. By the Fourth Dynasty in around 2,600 B.C., the art of mummification was essentially perfected and the tomb had evolved from a large pit in the sand lined with bricks and roofed over into the massive pyramids that people all over the world associate with Egypt to this very day.

For the pharaohs, all of this preparation still wasn't enough.

By the time of the pharaoh Khufu, the religious beliefs of the Egyptians, especially in regards to what happened to the king after he died, were very complex. For the pharaoh, there was no rest after death. By day, it was believed that the spirit of the king would join the sun god, Ra, in a solar boat that bore the Sun through the sky. With this association, the pharaoh's spirit would conquer death every day when
the Sun rose in the morning. After the Sun set, it was believed that the king would join the god Osiris, associated with the constellation Orion, in the night sky before being reborn with Ra in the morning. It was for this reason that two boats were buried with the pharaoh Khufu beside his Great Pyramid. However, the always prepared Egyptians had a backup plan in place just in case something went wrong somewhere.

An undeniable feat of engineering, the Great Pyramid is home to what have been termed “air shafts,” even though they don't all (at least today) extend to the exterior of the Great Pyramid. In the Great Pyramid, there are four such shafts, two extending from the king's chamber where Khufu was buried and two more from the incorrectly-named “queen's chamber,” which sits almost directly below the king's chamber. Ever since the pyramids were examined by historians, the purpose of these shafts remained an utter mystery, at least until the last few decades.

It was long known that the Ancient Egyptians placed a lot of emphasis in the stars in the battle to overcome death. However, it was not until 1960s that Alexander Badawy and Virginia Trimble  first postulated the idea that the air shafts in the Great Pyramid could have some stellar connection. The angle of the shafts known, the experiment was simply this: extend a line up to the sky and see if the shafts pointed at any stars that were important to the ancients. When this was done, no matches were found. However, thanks to computers, the sky's motion can be traced back through time and the phenomenon of precession to the point in time when the Great Pyramid was built. Result: each of the shafts was pointing at a star venerated by the Ancient Egyptians.

The South-facing shaft in the King's chamber was pointed at Alnitak, the lowest star in Orion's belt. As stated already, Orion was associated with Osiris, Egyptian god of the dead. The choice of this particular star could also be of more significance later.

The Southern shaft in the Queen's Chamber was pointed at Sirius, which was associated with Isis, goddess of among other things, rebirth.


The Great Pyramid's astronomical alignments.
The North-facing shafts were directed at alpha Draco/Thuban (King's chamber) and beta \Ursa Minor/Kocheb (Queen's Chamber). For the Ancient Egyptians, the circumpolar stars were known as the immortals for the simple reason that they never set and therefore, never “die” as they don't dip below the horizon. It was only natural that the immortality-desiring pharaohs would want to be associated with them. However, with these two particular stars, the Egyptians sought to do better for their King than merely send him in the right direction.

At the time the Great Pyramid was built, there was no North Star. Instead, all the stars seemed to revolve around an empty patch of sky located between, guess what, Thuban and Kocheb. Aa a result, the Egyptians pointed the air shafts at the two brightest stars near the location for the North celestial pole as it was at the time of construction. In addition,a the point of night when Thuban and Kocheb were directly vertical of each other, true North was indicated. Perhaps this is how the Egyptians orientated their pyramids so close to true North, with the Great Pyramid being less than 1/20th degree from perfection.

As good as this was, incorporating stellar alignments into the Pyramid's design, the whole Giza complex itself may have been modeled on the heavens.


Coincidence or design?Popularized by Robert Bauval in the 1994 book The Orion Mystery, one notion is that the Ancient Egyptians tried to copy the heavens on Earth via their pyramids. Whether this was intended or not is unknown (and probably never will be), but the coincidence is stunning. The Giza pyramids, three of them, consist of two large pyramids in a straight line with a smaller one slightly offset. Lookinga t the belt of Orion, the two lowest stars are of the same brightness but the highest one is dimmer and slightly out of line. While Bauvall and often co-writer Graham Hancock have taken their theories in a distinctly alternative history vein, the initial idea that the Giza pyramids were meant to copy the belt of Orion found supporters in the Egyptological community, including that of Egyptology legend I.E.S. Edwards, a former chief keeper of antiquities at the British Museum. Whether by coincidence or design, the theory does explain why the perfection-obsessed Egyptians would have made such a huge “error” in the layout of the Giza complex.

However, just after the Great Pyramid was built, the stellar orientation of the Egyptian religion started to wane. Yes, the stars were still important and astronomical scenes often decorated kings' burial chambers but the Egyptians would never go to the length they did with the Great Pyramid to incorporate the stars into the structure's design. Evidence for this fact comes in the names of Khufu's successors: Jedafra, Khafra, and Menkura. Notice all the kings' names end in “Ra” for the sun god, which the later kings would increasingly seek to associate themselves with.


The burial chamber of 5th dynasty pharaoh Unas.
As a last bit of pyramid-astronomy, consider the pyramid shape itself. Sure, when building in stone with the technology of the time, the only way to build extremely tall was with the pyramid shape as the design spreads the weight of every block onto the four below it, thus preventing collapse. However, why build perfectly, geometric pyramids at all? The first pyramids were stepped versions, simulating a staircase to heaven. So why spend time and effort building a true pyramid, which gives virtually no room for error? One theory is that the Egyptians saw the Zodiacal Light and thought of it as a light ramp to heaven for the king and thus wanted to replicate this launching pad on Earth.


Was the Zodiacal Light the inspiration for the pyramids?
After the Old Kingdom, which saw the construction of the Great Pyramid, collapsed in around 2,100 B.C., the stellar associations in Egyptian religion would decline as the Sun became ever more important. By the time of the New Kingdom (1550-1070B.C.), giant obelisks would populate the Egyptian skyline. According to some theories, the obelisks were built to simulate sun pillars in stone. However, at this time, the astronomical ceilings that adorned the burial chambers of the royals (and sometimes non-royals) reached their highest level of sophistication.


The burial chamber in the tomb of Seti I.

Obelisks: sun pillars in stone?
In 1279 B.C., the pharaoh of the pharaohs came to power in Ramesses II, better known as Ramesses the Great. Under his reign, it is widely regarded that Ancient Egypt reached the high-water mark of its 3000 year history. As befitting the greatest Egyptian, Ramesses created what can be considered the most spectacular architectural work (rivaling the pyramids, but in a different way): the Temples of Abu Simbel, located a the Southern border of Ancient Egypt.


The temple of Ramesses II at Abu Simbel
The inspiration for Mt. Rushmore, the facade of the larger of the two temples features four statues of Ramesses seated on his throne, each nearly 70 feet high. If that wasn't enough, the temple then extends nearly 200 feet into the mountain, revealing more chambers, colossal statues, and corridors before terminating in an inner chamber featuring the statues of four of Egypt's most important gods: Amun, Ra, Ptah, and Ramesses himself. However, on two days and two days only (February and October 20), the light from the rising Sun will penetrate all the way into the temple and illuminate three of the divinities, leaving the god of shadows, Ptah, out of the direct sunlight. Obviously, whatever the Egyptians were doing was being done with a purpose. According to legend, one of these dates marked the coronation day of Ramesses the Great.

However, the story of Abu Simbel wasn't done: in the 1960s with the building of the Aswan High Dam, the temples at Abu Simbel were soon to find themselves underwater if nothing was done to stop the rising water that was quickly becoming Lake Nasser. In a concerted effort sponsored by nations all over the world, UNESCO descended on the site, cut the temples (carved into the mountain) into blocks, and then moved the pieces up and out of the lake's reach before reassembling them like a giant puzzle. Through all this destruction and reconstruction, the alignment was preserved. In all, the project cost $80 billion in 1960s dollars.


The temples then and now

Despite all the moving, the alignment was preserved.
In summary, the Ancient Egyptian civilization fits the general pattern of ancient cultures that become interested in astronomy in that the initial motivation is practical (timekeeping to ensure successful farming) but the final product involves religion as supernatural powers increasingly find themselves assigned to the stars and the starts eventually find themselves transformed into deities. In all, the Egyptians have left us an incredible astronomical legacy in stone, that is, if you know what to look for.


A final word and warning . . .

When dealing with works about Ancient Egypt, especially those of a speculative nature, it is important to keep oneself firmly grounded in the facts. Yes, it is good to speculate on ancient mysteries and such speculation can often lead to truth, but, when it comes to Ancient Egypt in particular, authors have a thing for taking a perfectly plausible unknown and transforming it into something completely unrecognizable and highly implausible. Example: the Orion Mystery, which takes a perfectly logical idea supported by facts (the air shafts in the Great Pyramid being for religious purposes and even the idea that the Giza complex was built to simulate Orion's Belt), but then ruins it with assertions (the complex was built in 10,000 B.C. by survivors or a superior, lost civilization, probably Atlantis), both of which are without any solid evidence whatsoever.


As another example, consider that the pyramids have been:

1. Ancient mathematics coded in stone (play with numbers enough and you'll 'find' anything you want to find)
2. Repositories for lost ancient knowledge Iaparrently, someone checked out the entire library and forgot to bring it back)
3. The Biblical grain storehouses built by Joseph (never mind the fact that there is little internal space in the pyramids)
4. Prophecies in stone (prophecy is bunk in itself)
5. Built by survivors of Atlantis (pyramids have been dated to Ancient Egypt)
6. Built by aliens (there are quarry workers' notes on some on the blocks)
7. Power plants (if we're so confident of this 'fact,' why can't we fire it up again?)
8. Weapons of mass destruction (I'm not making this up!)

Yeah, right!





 
Like What You Just Read?

Why not check out other great stuff about photography, astronomy, associated gear, and how to use it.

Think someone else would find this informative (or at least entertaining)? Use the buttons below to share!


Thursday, October 7, 2010

Stunning Astrophoto-Op Tonight: Comet Hartley and the Double Cluster

Comet Hartley and the Double Cluster this morning. Canon 30D, 2 minute exposure at ISO 400 with a Tokina 80-200 2.8 lens (review coming!) set to 100mm and f4. Image uncropped.

Throughout October, Comet Hartley will grace the sky for astronomers living in the Northern Hemisphere. Starting the month in Cassiopeia, the comet will move down through Perseus and Auriga by the time the month ends. During the course of October, the Comet is expected to brighten to around 4th magnitude, within the realm of naked-eye visibility, given the sky is dark.

While the comet will be hanging around all month, tonight and tonight only, it will be putting on a spectacular show the both observational and photographic astronomers will be able to savor when irt comes just within a degree of the Perseus Double Cluster?

Hint: get all your gear ready to go!

The great news about the comet is that it is well-placed in that it will be a virtually all-night object. So, whether you like to observe/shoot in the early evening before you go to bed or in the early morning just after you get up, the comet will be there.

Above is an Comet Hartley's approach to the Double Cluster this morning, which simulates where it will be tomorrow night, but on the opposite side of the cluster. By looking at the size of the comet right now, it is not out of the realm of possibility that the gas cloud will get into the Double Cluster itself, making for a truly stunning sight/photograph .

Clear skies and good luck!



Humble requests:

If you found this informative (or at least entertaining), help me pay my bills and check out my Examiner pages for photography and astronomy for more great stuff.

Think this was cool? Why not tell a friend?

For something even better, become a follower.

Tuesday, October 5, 2010

August 2010 Astrophotography

Yes, over a month after shooting wrapped, here are my astrophotos for August, which feature both late summer and early fall deep sky objects. Enjoy.


The Trifid Nebula and M21 open cluster. Between equipment problems, unexpected clouds, work, and the Moon, this one took a total of 4 nights over the course of the month to get an hour and a half's worth time.



M33, the Triangulum Galaxy



The spectacular Double Cluster in Perseus



Orion through the clouds at dawn, hand-held to boot!



The Moon and Jupiter in the morning



Cassiopeia, a favorite fall constellation. Note the Double Cluster below and the Great Andromeda Galaxy to the right of the constellation.



Another fall favorite, Perseus. Again, the Double Cluster is present above Perseus' head and the Pleiades are in the bottom right, note the slight nebulosity in the 5 minute exposure.



Awesome sunbeam



Thin crescent in the morning



The next day and an even thinner crescent



Full Moon


                                        
Venus at dusk.


Venus over a highway. If you want to see the planet, don't wait around, this is essentially the last week you'll be able to see it.


Humble requests:

If you found this informative (or at least entertaining), help me pay my bills and check out my Examiner pages for photography and astronomy for more great stuff.

Think this was cool? Why not tell a friend?

For something even better, become a follower.

Thursday, September 23, 2010

Seize The Night!

Okay Northern Hemisphere astronomers, rejoice! The Autumnal Equinox has arrived and the Sun has crossed into the Southern Celestial Hemisphere, which means that, for the next six months, the nights will be longer than the days, which means more time for stargazing. However, there is more good news to report, too:

Shortening Days “Freeze” The Sky
Around the equinoxes, the shortening/lengthening of the days is at its most extreme. While this is a bad thing in the spring as the later sunsets will lead the winter constellations to disappear very quickly, come fall, the earlier sunsets freeze the sky to summer, but only to a point. Because the Sun sets earlier each night, the summer constellations will hang around for an extended period of time as the sky will get darker each night. In fact, it is still possible to observe the Teapot into November if you have a really good Southern horizon.

Standard Time Returns
In about 6 weeks, standard time will be making a return in the United States. While the fact that the Sun sets a few minutes earlier each night helps the stars of summer stick around well into fall, turning the clock back an hour on the first Sunday of November will give observers one last time to look at the summer constellations before they inevitably disappear until next season.

For more on the Equinox:
The equinox and a magic show courtesy of the Maya
“Super Harvest Moon”
Year-long photo shoot, anyone?
It's the equinox, stand an egg on end and take a picture!
All about the Autumnal Equinox



Humble requests:

If you found this informative (or at least entertaining), help me pay my bills and check out my Examiner pages for photography and astronomy for more great stuff.

Think this was cool? Why not tell a friend?

For something even better, become a follower.

Thursday, September 16, 2010

Easy Polar Alignment In The Daytime

For any non-astrophotographer who has stopped by this website and taken a look at my astrophoto galleries, one big question may come to mind: "how does he do that?"

Well, a lot goes into capturing those stunning astrophotos and I'll probably touch on these factors at some point in the future. Today, I'll talk about the most crucial aspect of getting good astrophotos through a telescope: good polar alignment (aligning the mount to astronomical North).

Everyone knows that the Earth spins on its axis once a day, that's why the Sun, Moon, and stars appear to rise and set. So, with the celestial objects moving across the sky, it is absolutely crucial to accurately track them to compensate for the Earth's rotation. Any tracking inaccuracy will result in streaked, not perfectly round stars.

So, how does one go about this?

Traditionally, one gets accurate polar alignment through use of a polar scope (pain in the neck) or by using the latest computer-equipped telescope mounts (expensive). At the time I got started, a go-to mount was out of the budget and Polaris was (and still is) blocked by trees.

There had to be another way, and there was.


Step 1: Find Local Noon
Noon isn't noon (unless you live right on a time zone border), sorry. To find when the Sun is directly due South, just google it. To make things easier, here is a place where you can find your local noon:

timeanddate.com


Step 2: Get Prepared
Time of local noon found, wait for it to come, but in the meantime, find something that stands up straight. For me, this stool worked just fine. You'll also need a yardstick and something to write on the ground with.

how to do easy polar alignment of telescope astrophotography

Step 3: Mark the North-South Line
When local noon arrives, set up your object and trace the line of its shadow on the ground



Step 4: Extend the Line
Chances are, the line you draw on the ground won't be long enough to set up a telescope mount, so take the yardstick and extend the line so that it is big enough to cover the spread of your tripod's legs.



Step 5: Setup (in real life, do this at night)

Dark having arrived, haul out your scope and set the North leg of the tripod directly on the line. Next, spread the back legs so that they are about an even distance from the line.




Step 6: Measure

To get accurate alignment, be sure to measure so that the back legs are the exact same distance from the North-South line.

Step 7: Level
Don't forget to check that you are level. An off-level mount will offset perfect polar alignment every time. If you're lucky, your mount will have a built-in level(s) like my Meade LXD-55.




While You're At It . . .
You've made it this far, so why not learn how to attach your camera to a telescope, too?

And For That Matter . . .
If you attach your camera to a telescope, you can also use it as a regular photographic lens!


Step 8: Test
All set up, it's now time to test. Set your camera for 30 seconds and take a few practice shots with the self-timer engaged or with a remote control as vibrations from touching the camera/scope rig can look just like star trailing caused from bad polar alignment.



Author's Note:
I know this isn't the most advanced (it dates from the Stone Age!). method to get accurate polar alignment. However, for people using short focal length scopes (my Orion ED80 is 600mm long) and who are looking to stack short exposures in the realm of 30 seconds to a minute, this method should work every time as it has done for me going on four years now.

Good luck!



Like What You Just Read?

Why not check out other great stuff about photography, astronomy, associated gear, and how to use it.

Think someone else would find this informative (or at least entertaining)? Use the buttons below to share!


Friday, August 13, 2010

July 2010 Astrophotos

Here they are: July's astrophotos. The early part of the month was pretty much a bonanza of clear nights without an interfering Moon, good times! I may be adding a few more to this gallery, who knows what's still on my little Olympus. . .

Anyway, enjoy!

The Dumbbell Nebula (M27)


The Wild Duck Cluster (M11)

M52 open cluster in Cassiopeia


M56 globular cluster in Lyra


Aquila and the mid Milky Way, not bad for a semi-humid summer night!


Jupiter and moons through the ED80.


M15 glibular cluster in Pegasus


Venus with the little Olympus



Humble requests:

If you found this informative (or at least entertaining), help me pay my bills and check out my Examiner pages for photography and astronomy for more great stuff.

Think this was cool? Why not tell a friend?

For something even better, become a follower.

Wednesday, August 4, 2010

Aurora Season Is Coming!

For reasons scientists still do not fully understand, spring and fall are the best time for viewing auroras. However, despite still being only mid summer, aurora season kicked off dramatically last night with a stunning, far South reaching display of the Northern Lights.

For anyone living at mid Northern latitudes, keep an eye on the sky tonight, too.

The lights are caused by high-energy particles from the Sun coming into contact with Earth's upper atmosphere. The energy released by the colliding atoms/molecules releases photons of light, which we see as aurora. Why are aurora so many different colors? Simple, each different element gives off a different color when it reacts with the solar particles.

Oxygen: red aurora at high altitudes, yellow to green at mid
Nitrogen: red, often seen at bases of auroral curtains
Hydrogen: blue/purple
Helium: blue/purple

For an added bit of fun, if you are lucky enough to see aurora, why not try and photograph them? Who knows, you may make the front page of Spaceweather like I did with my Young Moon shot.



Humble requests:

If you found this informative (or at least entertaining), help me pay my bills and check out my Examiner pages for photography and astronomy for more great stuff.

Think this was cool? Why not tell a friend?

For something even better, become a follower.

Friday, July 16, 2010

June 2010 Astrophotography

Here are June's astrophotos. Not much in terms of quantity, but more than adequate in terms of quality. The bad news is that June was pretty much a cloud-out in the thin, fickle type. Clear one minute, cloudy the next, no time for an all-night shoot. The good news was that it was clear for two bg events: the Lagoon Nebula-Ceres transit (2 of 3 here) and the start of a lunar eclipse.

In terms of quantity, July is so far looking to be a lot better for deep sky.

Enjoy these in the meantime.


Ceres on June 2.
Ceres on June 4.


Sunbeams at dawn.



M92, the last of the great spring globulars (M13, 5, and 3 are the others).



Start of a lunar eclipse, note how the top of the Moon is darker than the bottom.



Gibbeous Moon



Sun pillar at dusk.




Double rainbow at dusk


Humble requests:

If you found this informative (or at least entertaining), help me pay my bills and check out my Examiner pages for photography and astronomy for more great stuff.

Thought this was cool? Why not tell your friends?

For something even better, become a follower.