Showing posts with label New Mexico. Show all posts
Showing posts with label New Mexico. Show all posts

Thursday, November 09, 2023

Geology of the National Parks in Pictures - White Sands National Park

 My next post about the Geology of the National Parks Through Pictures is from when I had lived in Texas during the early 2000's. 

You can find more Geology of the National Parks Through Pictures as well as my Geological State Symbols Across America series at my website Dinojim.com.

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On a separate trip from our trip to Carlsbad Caverns, we hit up White Sands National Park back in 2004. It is hard to not have geologically themed photographs here since the entire park is a geology wonderland.  
When you think of "sand", you often think of the gritty, rough grains you find on a beach or in the desert. Sand is actually a size determination. The definition of sand is that it is particles that are from 0.05 to 2.0 mm in diameter. Size of particles go from mud/clay, silt, sand, and gravel. These can further be broken down but that is the general gist of it. 

Most beach and desert sands are made of the mineral quartz (SiO2). This is because quartz is a very, very abundant mineral on the surface of the Earth, and it also has some special features that allows it to remain around long enough to become sand. For one, it is a very hard mineral (a 7 out of 10 on the Mohs Hardness Scale below). 

Mohs Hardness Scale showing the relative hardness, or ability to be scratched, of minerals. Minerals shown are the reference minerals and don't cover every mineral on Earth. Image courtesy of the NPS

Another mineral property that quartz does not have is called cleavage, meaning that the mineral breaks along planes of weakness. Both of these combine means that quartz has a tendency to erode slowly and into tiny little smooth balls, hence sand grains. But these sand grains are also typically gritty feeling because of the hardness of quartz. And even though quartz grains at that scale are clear, tiny amounts of rust (or hematite) dust color the sand grains a pale orange/yellow color. 

As is sometimes the case, not all beach and/or desert sands are made of quartz. White Sands is one of those special types of places where the sand dunes are = made up of a completely different mineral. The mineral here is called gypsum (CaSO4.2H2O). As can be seen in Mohs Hardness Scale above, gypsum is by far softer than quartz. So soft in fact that the mineral itself is softer than your fingernails (meaning you can scratch a gypsum crystal with your nail). This creates sand dunes that are very, very soft and quite fun to play in.  


Gypsum is an evaporite mineral, meaning that it is often left behind in areas where water evaporation are high. Places like the Great Salt Lake are evaporation basins, where as the water evaporates it leaves behind the salt that had been gathered from the surrounding environment. Depending on the chemistry of the surrounding rocks different evaporative minerals would be left behind in different evaporite basins. 

Horst and graben. Image courtesy of the NPS

The gypsum from which these sand dunes originated first formed back in the Permian (280 to 250 million years ago), when a large shallow sea known as the Permian Sea covered the region. Rising and falling levels produced a large amount of evaporite deposits of the gypsum. These gypsum deposits were then buried over time. 

Around 70 million years ago mountain building events, known as the Laramide Orogeny, started to push up the Rocky Mountains, including this region of New Mexico. Around 30 to 10 million years ago the region then started to pull apart. This pull apart created a horst and graben structure, which is where a valley drops down along two sets of faults on either side (pictured above).  

The graben here is known as the Tularosa Basin, and is where White Sands NP currently resides. The horsts are the mountain ranges that run along the eastern, the Sacramento Mountains, and western, San Andres mountains (seen here), edges of the basin. These are the bounding mountains which create an enclosed, or end, basin that has no outlet for water. So all water and minerals that get washed into the valley off of the neighboring mountains eventually evaporates away, leaving behind the mineral deposits. 

Winds then aid in the transportation of the gypsum across the valley. Since gypsum is a lighter and softer mineral than quartz, lower wind speeds are needed to produce the sand dunes. Ripples, as are seen here, are produced at lower wind speeds with every increasing speeds moving the sand grains up the sides of the dunes, aiding in their movement across the desert.  

Illustration of how a sand dune moves. Image courtesy of the NPS

Sand dunes actually move as well. Sand is pushed up one side of the dune, known as the stoss or windward side. And the grains will then drop down the steeper leeward, or slipface, of the dune. As more and more sand grains are moved from the windward side to the slipface side, the dune will appear to migrate in the direct the wind is blowing. 


As the dunes move they can actually cross roads, meaning that the roads need to constantly maintained in the park otherwise they would quickly become inundated with sand. The wind's direction during major sandstorms will also rotate steadily clockwise starting from the western direction and dying out as it reverses directions to be from the east.

Types of sand dunes found at White Sands NP. Image courtesy of New Mexico Magazine

Depending on the amount of sand, the local vegetation, topography, and the consistency of wind direction, different types of sand dunes can be produced. The primary types produced in the park are barchan, dome, transverse, and parabolic dunes, as seen in the image above. The shifting wind direction would also shift the direction that the dunes tended to migrate as well. 

References

Wednesday, November 08, 2023

Geology of the National Parks in Pictures - Carlsbad Caverns National Park

My next post about the Geology of the National Parks Through Pictures is from when I had lived in Texas during the early 2000's. 

You can find more Geology of the National Parks Through Pictures as well as my Geological State Symbols Across America series at my website Dinojim.com.

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This is another park that we had visited a long time ago (2003) and I don't have the most geologically themed photos as compared to some of the newer parks that we have visited however the geology is obvious at this park.

Our standard entrance photo shot, even way back then. 


View of the surrounding grounds from near the cave entrance. The modern environment sort of mimics the ancient environment in which the limestone was initially formed. The cave system itself was formed mostly within a formation known as the Capitan Limestone. The Capitan Limestone formed back in the Permian (~276 million years ago) as a reef along the edge of the Delaware Basin, which contained the Delaware Sea, to the east. 

Map of the Delaware Basin. Carlsbad Caverns are "CB" on the map. Image courtesy of Stafford et el., 2009

Following deposition of the Permian Reef, the area was eventually uplifted into the Guadalupe Mountains starting 80 million years ago and accelerating 20-30 million years ago as faulting exposed the once buried reef eventually forming the mountains as we see them today. 


While the dissolution of the caverns started prior to the uplifting of the Guadalupe Mountains, it was the faulting and uplift that prompted the major episodes of cave formation. 

Carlsbad Caverns postcard depicting a map of the caves. Image courtesy of Visit Carlsbad

Cave systems are typically formed by the slow dissolution of limestone by a weak carbonic acid. The calcium carbonate (CaCO3) that forms the limestone reacts with the weak acid (H2CO3) that forms when rain water reacts with carbon dioxide. This acid will then slowly dissolve the limestone as rain water percolates through the limestone along cracks and fissures working it's way to the underground water table. 


This is somewhat different than what happened at Carlsbad Caverns. Here a "very aggressive sulfuric acid bath" played a prominent role in cave formation, dissolving the limestone from the water table upwards. The hydrogen sulfide was the result of the regional petroleum reserves that started leaking into the area an estimated 12 million years ago. These sulfuric acid baths are what created the enormous caverns that are a hallmark of the Carlsbad Cavern system.


The natural entrance to the caves then formed once the sulfuric acid baths had retreated ~one million years ago and erosion and gravity force the the ground surface to start to collapse in. At this point "normal" cave development took place with the formation of typical speleothems occurring 

References

Thursday, February 25, 2021

Geological Destination - Ship Rock

Nearby to Four Corners Monument, and actually used during the original survey of the monument, is the monumental geological feature of Ship Rock. It is located in northwestern New Mexico, near the town of Ship Rock on the Navajo Nation. It is also known as Tsé Bit'a'í, or "the winged rock" in the native Navajo language.

View of Ship Rock from the south

Ship Rock is the volcanic remnant, or volcanic neck, of a prehistoric volcano that erupted ~30 million years ago. Ship Rock intruded within the much older Mancos Shale, a Cretaceous age (~90 million years old) formation made up of mostly claystone and siltstone with minimal amounts of sandstone and limestone that formed on the bottom of the Interior Cretaceous Seaway that once dominated the central portion of North America.

Geological map of Ship Rock, NM. Image courtesy of the NGMDB.

Part of the Navajo Volcanic Field, Ship Rock formed as what is known as a diatreme, a volcanic vent or pipe that was forced through flat-lying sedimentary rocks producing an expanded vent through explosive energy. The main portion of Ship Rock is composed of volcanic breccia, made up of a type of potassium-rich volcanic rock called "minette", which is thought to be formed from melting of the mantle. Ship Rock itself is ~1,600 feet wide at its widest and ~1,600 feet tall. When the volcano intruded into the Mancos Shale, it is thought that the current visible features were solidified ~2,500 to 3,300 feet below the surface of the Earth. However, the extreme weakness of the Mancos Shale has allowed extensive erosion to occur, carrying away the shale while leaving behind the much harder volcanic rock. 

View of Ship Rock from the south and the southern dike.

One of the more notable features of Ship Rock are the radiating features that emanate from the pinnacle itself. These were formed as volcanic features known as dikes. Dikes are vertical intrusions of magma into a surrounding bedrock. The vertical intrusion then hardens, leaving behind sheets of lava rock. Radiating outward from Ship Rock are six different dikes. These dikes can be seen on the geologic map above as red lines. However, due to the size of the southern dike and the distance to Ship Rock, I was only able to get a picture of the main southern dike.

View of the southern Ship Rock dike facing towards the south, away from Ship Rock.

View of the southern dike, facing towards the north, at Ship Rock

Closer up view of the southern dike.

It should be noted that Ship Rock is considered sacred to the Navajo, and while viewing the rock is allowed, climbing and hiking on the rock are prohibited.

A bit more of a distant view of Ship Rock. The two points on the right side of the photo are remnants of two of the smaller dikes that radiate out towards the northeast from Ship Rock.

On a recent trip to Canyon de Chelly National Monument, in the gift shop there was some additional information about Ship Rock and its Native origin story.

The story reads:
"Shiprock" 
(Naayee, Tse'bi taahi') 
Shiprock was once a Monster in our Navajo culture. Rock with wings (Naayee, tse'bi taahi') it was one of the most feared monsters of 10 different monsters in our Navajo Lure. If you look at it, a big piece of rock over 1000 feet was how tall the monster was. The Monster Shiprock would pick up people and drop them below into the jagged rocks and eat them. The Dine People feared him and the people wondered how these Monsters came to be. 
As the story goes, during this terrible time, the people (men and women) separated from each other causing conflict over who was going to be the leader. From there, they all went their separate ways. The men had problems without the help from the women and the women became promiscuous which resulted in deformed babies. They were ashamed of it, so they hid their babies. The deformed babies became Monsters. 
Changing Woman came to the rescue of the Dine. She too had babies (twins), one born for water and the other born for the sun. The twins asked their mother who their father was, finally she told them. And they began their plan to visit their father Sun, who helped them by forming them into humans. 
The Sun tested them to see if they were his real kids. Luckily, they passed all the tests given. As the end approached, their father asked why they came. The twins told him that there are many Monsters killing the Dine and they had come for weapons to kill the Monsters. 
The father Sun was worried and gave each twin a weapon and they came back down on a rainbow. The twins killed all the Monsters including the one Monster which is known today as Shiprock.


Drawing of the Monster which became Shiprock.


Wednesday, February 24, 2021

Geological Destination - Four Corners Monument

Being located at the junction of four states, Four Corners Monument might just as well be considered a political park. However, geology is everywhere and therefore this is a perfect example of a geological park as well. The Four Corners Monument is a Navajo Tribal Park that designates the boundaries between the states of Utah, Arizona, Colorado, and New Mexico. It also designates the boundaries between the Navajo Nation and the Ute Mountain Ute Tribe Reservation. We visited the park on my birthday back in March of 2019. 

Me, laying across all four states at the monument. 

It has been said, by many people, that this point does not actually represent the point of intersection of the four states. These people are wrong. As noted by NOAA:
"... the Four Corners monument was established at the point he [surveyor Chandler Robbins] determined, to the very best of his ability and using the available technology, to be the prescribed location of 109 degrees 03 minutes West longitude and 37 degrees North latitude."
This precise location, however may be off by ~1,800 feet to the west of the monument. However, since this point was surveyed as the junction of the four states, and approved by the governments of the four states as well as the federal government, it IS the location of the junction, regardless of what the original intention of the surveyor may, or may not, have been.

It should also be noted that acclaimed geological landmark, nearby Ship Rock, was used as one of the marker locations for the designation of the Four Corners Monument. My next post will be on Ship Rock.

A closer look at the geodetic survey marker, designating the actual Four Corners point.

The Four Corners Monument sits within the Colorado Plateau. An area that is being forced upwards by the subducted Farallon Plate. 
Location of the Colorado Plateau. Image courtesy of Woodward, 1973.

Starting ~100 million years ago, along the west coast of North America was a subduction zone. This is where one plate goes beneath another plate. In this instance the Farallon Plate subducted, or went beneath, the North American Plate.

Graphic of the Farallon Subduction. Image courtesy of the NPS.

Over time the majority of the Farallon Plate was completely subducted, including the mid-ocean ridge (aka spreading center), leaving behind a new type of plate boundary along the coast of California. Instead of a subduction zone, there now was left a transform plate boundary, where one plate slides passed another one. This plate boundary is better known as the San Andreas Fault. Remnants of the Farallon Subduction Zone still exist along the coasts of northern California, Oregon, and Washington. 

Over the past ~10 million years, the subducted Farallon Plate was still a very hot plate, and therefore wanted to rise up underneath the North American Plate. Because of this, the Farallon Plate started to push upwards on North America, creating a region of the continent that is rising vertically upwards compared to the surrounding regions. This is the Colorado Plateau.

The geological features of the Colorado Plateau surrounding the Four Corners Monument. Image courtesy of Woodward, 1973.

The Colorado Plateau is made up of many of the world's most beautiful landscapes because of these geological forces playing around in the region. Looking specifically at the Four Corners region, anyone who has been to the Four Corners Monument will also notice that this area is a relatively flat, mountainless plain. This region is known as the Four Corners Platform. The platform is a relatively flat region that sits as an intermediary between adjacent basins and uplifts. In an area surrounded by mountains and canyons (and several anticlines (A-shaped bends in the rocks)) this region just happens to be in the middle of it all forming a flat surface. 

Geological Map of the Four Corners Monument. Image courtesy of NGMDB.

Looking at the rock units that cover the Four Corners Monument, they are represented on the map above by the symbols Jmw and Jmb, These are both members of the Upper Jurassic Age (~585 million years old) Morrison Formation. The Brushy Basin Member (Jmb), which covers the actual monument, is an interbedded green, purple, and grey mudstone and siltstone with grey and tan sandstone and conglomeratic sandstones. Known for its dinosaur fossils, the Brushy Basin Member was deposited from prehistoric rivers (fluvial) and lakes (lacustrine). The underlying Westwater Canyon Member (Jmw), is a yellowish-grey sandstone containing conglomeratic lenses and dark-reddish-brown siltstone. The Westwater Canyon Member is also a fluvial (river) deposited unit.

References