Thursday, November 12, 2020

Geology of the National Parks in Pictures - Grant-Kohrs Ranch NHS

My next series of posts about the Geology of the National Parks Through Pictures is from a trip we took over the summer of 2017 up to Canada and back down through Montana to hit a bunch of the glacial parks in the area. These include two Canadian National Parks.   


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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Working our way south from Glacier NP we were able to hit up a couple more of the more isolated national parks in Montana. The first up was a neat little park that preserves one of the larger pioneer open-range cattle ranches in the west. 

Many of my entrance shot pics were taken by my wife and then got deleted in a picture purge without them being sent to me, luckily I do still have some of them.

There are few obvious geological aspects to parks like this one, which focus more on the people than the land. However, the land is a primary reason why these people were out here. Here is a view of the main ranch house. The ranch was first developed by John Francis Grant in 1862, then sold to Conrad Kohrs in 1866 who vastly expanded the ranch. Eventually the ranch reached 10 million acres, however the National Park only preserves 1,618 acres of that property. 

The ranch sits in the Deer Lodge Valley of the Clark Fork River within the greater Northern Rocky Mountains. To the west of the Deer Lodge Valley are the Anaconda and Flint Creek Ranges (seen here in the background). These mountains are composed of Proterozoic, Paleozoic, and Mesozoic sedimentary rocks intruded by Cretaceous and Eocene intrusive and extrusive (volcanic) igneous rocks. Directly at the foot of these mountain ranges is the Anaconda detachment fault. The detachment fault separates the mountains to the west from the Deer Lodge Valley which merges into the mountains to the east. 

Geological cross section of the Deer Lodge Valley. The red arrow denotes the approximate location of ranch. Image courtesy of Foster et al., 2010. 

The eastern mountains are composed of the Boulder Batholith, which is also the rock that underlies most of the sediment within the valley itself.  The Boulder Batholith is a small batholith on the scale of batholiths, but a major gold producer. In general, a batholith is a very large rock that formed from a magma body deep within the Earth. The Boulder Batholith, named after the boulders that occur as the rock breaks down on the surface, is a large granite body that formed from an igneous intrusion 76 million years ago. The intrusion of the magma produced a hydrothermal system, heating up the groundwater and melting the metallic minerals within the area rocks, including the nearby granite. These metallic minerals, now mobile within the water, were then reprecipitated within the older sedimentary and metamorphic rocks of the area surrounding the granite, producing rick metallic ore veins in conjunction with quartz veins. Not only are these Boulder Batholith related rocks rich in gold, but nearby Butte has one of the richest copper producing zones in the world. Mine run off is actually one of the major concerns for the ranch with toxic chemical polluting nearby rivers and streams.

The valley was formed from similar circumstances as the Basin and Range province to the south and southwest of here. Off the western coast of the US, there was a plate that was subducting (going beneath) North America. That produced compression on the plate and formed the Rocky Mountains. Following the almost complete subduction of the plate the compressional forces on North America were mostly relieved, allowing for the North American plate to expand outwards like a compressed sponge slowly allowed to expand. This expansion process was most noticeable in the Basin and Range province where there are linear mountain ranges alternating with valleys. 

While most of the extensional activity was fairly recent in the Basin and Range province, extensional along the Anaconda Detachment Fault was much older, taking place from 53 to 39 million years ago. This extensional activity forced the Boulder Batholith downwards, while the adjacent mountain ranges moved upwards (in relation). After the downward movement of the valley, sediment started to pile up on the downward block, forming the fertile valley that is present today.

References

Wednesday, November 11, 2020

Geology of the National Parks in Pictures - Glacier National Park

My next series of posts about the Geology of the National Parks Through Pictures is from a trip we took over the summer of 2017 up to Canada and back down through Montana to hit a bunch of the glacial parks in the area. These include two Canadian National Parks.   



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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After coming south from Banff, we hit up one of my Bucket List parks, Glacier. This had long been on my must do list and with climate change increasing the earth's temperature the amount of actual glaciers in Glacier are rapidly diminishing. However, it should be noted that the park was not necessarily named for the active glaciers within the park, but more for the landscape that previous glaciers left behind. The park provides some of the best examples of a glacial landscape that I had ever seen.

We opted to do one of the Red Bus tours in order to get the full Glacier NP experience and it was the best idea ever. Not only didn't I have to worry about driving in traffic but the busses were great and we could just sit back and enjoy the scenery. We did the Big Sky Circle Tour, which is the most inclusive tour of the park, driving around the entire park then through the middle from west to east, up the world famous Going-to-the-Sun Road. One of the first stops on the tour was this geological mountain view along the southern edge of the park. Here you can see the Little Dog Mountain (the left peak) and Summit Mountain (the right peak) as well as the Lewis Overthrust Fault through the middle of the mountain which is a low angle fault. It runs left to right at about the elevation where the green vegetation stops. This thrust fault ended up placing the rocks "out of order". Normally when rocks are deposited the oldest is on the bottom and the youngest is on top. However here, the rocks on top are Precambrian in age (~1,600 to 800 million years old), and are mostly sedimentary rocks with a few igneous intrusions.  These older Precambrian rocks were thrusted ~65-70 million years ago on top of the much younger Cretaceous age rocks (~70 to 100 million years old). The Cretaceous rocks are mainly comprised of shales from a marine environment. Most of the rocks within the park are the much older Precambrian rocks.

After driving around the southern edge of the park we stopped at one of the major lakes on the trip, Lake McDonald. Here is a view of the lake from the southernmost extent. Lake McDonald is a moraine dammed lake, where a previous glacier estimated to have been 2,000 feet thick came through and eroded down the valley. Afterwards, at the foot of the glacier a moraine was built. This is a feature where the glacier acts like a conveyor belt, transporting sediment along in the ice and at the end where the glacier is melting deposits all of that eroded material (called till) into this giant pile of debris. In this case the giant pile of debris, aka the moraine, was deposited right on top of McDonald Creek, allowing the water to build up behind it in the already carved out lake.   

We continued along the road, stopping at the Lake McDonald Lodge for lunch. Here is a view from the boat dock outside the lodge looking north at the mountains. As glaciers grind down the landscape, it pick up rocks that get embedded within the ice. These are dragged along beneath the glacier and help to erode the ground over which the glacier rides. Eventually all of the loose soil and other material is carried away and the glaciers start to grind down the bedrock. This grinding action produces powdered rock known as glacial flour. The glacial flower will then become suspended within the lakes producing the famous turquoise color that glacial lakes are so well known for. 

When you look at glacial till it is characterized of containing a wide range of grain sizes. Glaciers don't care what rocks they carry so moraines will have a mishmash of anything from sand and clay up to boulders the size of houses. They also pick up rocks from wherever the glacier starts from and can transport it many hundreds of miles away, all depending on the size and length of the glacier. Afterwards, water action starts to sort out the rocks, transporting the smaller fragments away while leaving behind the larger boulders and cobbles. Here we can see the cobbles and boulders left behind along Snyder Creek that flows into Lake McDonald. When submerged you can see the beautiful array of colors from all the various rocks that had been brought to this place.

After traveling up McDonald creek, the Going-to-the-Sun Road really lives up to it's name as we then drive upwards along the edge of the glacial valley, called the Garden Wall, until we emerge at the top rim at Logan Pass. When a valley is eroded by a river or a stream it is constantly eroded by the water at the lowest part of the valley where the water is cutting into the ground. This forms a "V" shaped valley. However, when a glacier then comes into the valley, the ice of the glacier often fills the valley. This means that the glacier will then erode in all directions carving out a smoother walled valley in the shape of a "U". Here I am looking back down across the McDonald Creek valley towards where we came from to the west. You can see a textbook example of the U-shaped valley. McDonald Creek comes from the north before making this turn to the west. You can see the upstream portion of McDonald creek in the right of the photo. The Going-to-the-Sun Road follows McDonald Creek then turns to travel up the Logan Creek valley at that bend in the McDonald Creek. 

As we traveled up the rim of the valley along the Going-to-the-Sun Road, not only could we see over the valley that we were leaving behind but also the walls of the valley had many geological wonders. Since glaciers fill up the valleys, they don't erode the valleys in the same logical pattern that rivers would. Sometimes deeper valleys are cut where larger glacier are and are intercepted by much smaller glaciers. When these glaciers melt away the much smaller glacier wouldn't have cut nearly as deep as the larger glacier leaving what is called a "hanging valley" where the streams exiting out of the hanging valley would often form some sort of waterfall. Here is the Weeping Wall, coming down off the aptly named Garden Wall of Logan Creek valley. The rocks that the stream are traveling down is known as the Siyeh Limestone, a 1.1 billion year old (Proterozoic) limestone rich with early fossils such as stromatolites (algal mounds from a tidal environment).

View of the nearby Mount Oberlin from the Going-to-the-Sun Road. You can see the remnants of the glaciers up among the peaks, however as far as I am aware these are not active glaciers but snowfields. A snowfield remains during the entire year, while a glacier is a snowfield that slowly compacts into ice and eventually flows down the side of the mountain. As a glacier melts away, this process happens in reverse, where the glacier eventually turns into a snowfield. 

Here is a view from near the top of Logan Creek looking west down the upper Logan Creek U-shaped valley. 

Here is the upper part of Oberlin Falls, aka Bird Woman Falls, which is part of the upper reaches of Logan Creek, falling down the Proterozoic Siyeh Limestone. These falls come from Oberlin Mountain up over the edge here, fall down this cliff face from the hanging valley, then continue on as seen in the picture above in the Logan Creek valley.  
 
View of Reynolds Mountain in the distance at the Hidden Lake Nature Trail at the summit of the Going-to-the-Sun Road at Logan Pass. 

A view back towards the Garden Wall at its peak from Logan Pass. More of the Siyah Limestone is represented here. 

After coming over Logan Pass we are back to descending through the park towards the east. Here is another textbook U-shaped valley, the Reynolds Creek valley. Most of the rocks are still the Siyeh Limestone. The Going-to-the-Sun Mountain, the namesake of the road, is the peak standing out on the left side of the photo.  A dark band is noticeable across the upper part of the mountain, as well as across the valley. This dark band is an igneous rock known as a sill. A sill is when some magma squeezes itself between horizontal beds of rocks. This means that it ends up being younger then the surrounding rocks. This black band of rock is known as the Purcell Sill and is a diorite that is ~100 feet thick. The input of the magma 750 million years ago into the Siyeh Limestone caused the limestone immediately surrounding the sill to melt and form a thin rind of marble.  

One of the few glaciers still currently visible from the Going-to-the-Sun Road, Jackson Glacier. Within the park there were ~80 glaciers within the current park confines in 1850. That has since drastically decreased to 35 in 1966, and then down to the current number of 26 as of 2015, the last year with satellite imagery available.   

Coming down off the mountains on the eastern side of the park is Saint Mary Lake, another moraine dammed lake formed from a glacier carving out a valley and being dammed at the end by the glacial debris moraine. 

Continuing our trip back towards our starting point we come to the overlook for Lower Two Medicine Lake, another glacial moraine dammed lake. 

And the final stop along the way was as Two Medicine Lake, also a glacial moraine dammed lake. 

The rocks within Two Medicine Lake are much like the ones in McDonald lake, leaving these absolutely gorgeous array of colors when they are wet. 

References

Tuesday, November 10, 2020

Geology of the National Parks in Pictures - Canada's Jasper National Park

 My next series of posts about the Geology of the National Parks Through Pictures is from a trip we took over the summer of 2017 up to Canada and back down through Montana to hit a bunch of the glacial parks in the area. These include two Canadian National Parks.   



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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Continuing our trip north from Banff National Park, we hit the southernmost feature of Jasper National Park. Just after crossing the park boundary along the Icefields Parkway you come to the Icefield Centre where you can park and walk practically up to an active glacier, called Athabasca Glacier. There are also tours available where they take special vehicles onto the glacier, but we opted just for the hike to the base of glacier. 

Although not currently visible from the parking lot, the Athabasca Glacier at one time reached far beyond where I am currently standing. The glacier is part of the Columbia Icefield which spreads for a total of 150 square miles across both Banff and Jasper National Parks as well as neighboring Hamber Provincial Park. 

Glaciers are very sensitive indicators of climate change, whether to a colder climate or a warmer one. If the climate is consistent the glacier will balanced, where the amount of melting is equal to the amount of accumulation of snow and ice. For a consistent climate the glacier will not change in size but slowly act like a conveyor belt carrying the rocks and debris it picks up towards the melting end of a glacier. At the toe of the glacier all of that debris (called till) is deposited into a pile called a moraine. If the climate is cooling, then the amount of snow and ice accumulation would be greater than the amount of melting and the glacier would grow. It will continue to grow until the end of the glacier reaches a warm enough temperature where the amount of melting will match the amount of accumulation. If the climate is warming, the opposite will take place with the amount of melting exceeding the amount of accumulation. The glacier with then shrink until either it finds a new balance point or completely melts away. 

With the current climate change crisis, the climate is warming at an incredible speed and the glaciers are recording this event, to their detriment. Many stewards for the glaciers across the globe, especially the more accessible ones, have been putting up signs to indicate how quickly the current glaciers are slowly sliding away. Unfortunately for Athabasca Glacier these signs had more often than not been destroyed by visitors but at least this one for 1982 still existed when we had visited in July of 2017. The first picture above represents where the glacier was in ~1977.

Upon coming over the hill of rock we are finally able to see the glacier. Where I am standing is approximately the place that the glacier extended to ~1992, and is the one of the closest spots I could get to the glacier from this direction. Up on the top of the glacier you can see the edge of the Columbia Icefield as the snow falls over the edge into the Athabasca Glacier at the top of the valley. You can actively see the glacial meltwater coming off the glacier and forming a river that flows down into the valley. 

When glaciers travel over the ground the bottom ice of the glacier is constantly freezing and thawing. In the process rocks, sands, powdered rock, and other things all get trapped in the ice. Then as the glacier slowly slides forward, all of the debris on the base of the glacier is dragged across the soil and rocks that are there. Eventually anything that can easily be moved is eroded away and all that is left is bedrock, which the rocks are then dragged across as well. This produces scratches across the rocks known as glacial striations, as seen here. If the glacier was no longer around, scientists can still use the striations to identify if there was a glacier there at one point in time and the direction that the glacier traveled by using these lines as a compass. As seen here, all of the lines point straight back to the glacier.

References

Monday, November 09, 2020

Geology of the National Parks in Pictures - Canada's Banff National Park

My next series of posts about the Geology of the National Parks Through Pictures is from a trip we took over the summer of 2017 up to Canada and back down through Montana to hit a bunch of the glacial parks in the area. These include two Canadian National Parks.   



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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I had never been to a Canadian National Park and I wasn't sure exactly what to expect. I'm still not entirely sure how they compare to the US National Parks. Our first park of the trip was to Banff just west of Calgary. There is an entire town within the National Park boundaries that seems to be part of the park, unlike in the US where towns are generally not considered as part of the park, even when located within the park. I would say that overall, this is an absolutely gorgeous park that I wouldn't hesitate a moment to return to. The amount of geology within the park is truly astounding so my plan is to only hit a couple of the geological highlights along our trip, going from south to north through the park.

Our first stop within the park was to the Banff Upper Hot Springs, which is a pool that uses water from the local hot springs. The water initially seeps into the ground in Mount Rundle's high western slopes (seen in the background), then works its way down into the ground through the sedimentary rock layers were it is slowly heated, pressurized, and enriched with local dissolved minerals (including sulphates, calcium, bicarbonate, magnesium, and sodium). After hundreds of years it then rises up towards the surface along the Sulphur Mountain Thrust Fault until it reaches the surface at one of the several outlets, including this one at the Upper Hot Springs. 

View of Cascade Mountain from the town of Banff. Cascade Mountain is made up of Devonian and Mississippian age rocks. Banff National Park is Canada's oldest national park and the third oldest park in the world. It is known mainly for its glacial landscape which includes more than 300 glaciers, however that number is quickly shrinking as the planet quickly heats up from climate change.

Geology of Cascade Mountain. Image courtesy of the Geological Survey of Canada.

Starting at the base of the mountain (at least as far down as we can see) is the Palliser Limestone. The Palliser limestone (aka Palliser Formation) is a Late Devonian (~360 million years old) that was deposited along a warm, coastal shelf environment, very similar to the Bahama Banks today. Then above that along the more eroded slopes is the Banff Shale. The Banff Shale (aka Banff Formation) is also a Late Devonian age deposit that was deposited in a sediment rich marine environment. And the top of the mountain is capped with the resistant Rundle limestone. The Rundle Limestone (aka the Rundle Group) is a Mississippian age (~340 million year old) limestone deposited in a marine environment. 


Moving our way north from Banff, we stopped at the Lake Louise area. We were able to take a hike outside the visitors center and up along the Bow River. Here we have a view off to the south west looking at the Canadian Rockies. The amount of glacial features within the park is simply astounding. Glaciers are giant blocks of ice that don't melt during the summer. Over time they build up from snow that eventually gets so big that it starts to flow down the side of a mountain within the previously existing river valleys. As it flows it erodes away the ground that it is flowing over. Here you can just glimpse one of the glaciers located between the mountains as well as the harshly carved mountains typical of glacial terrains. 

One of the goals of the trip was to do some paddle boarding on Moraine Lake, the lake in the valley neighboring Lake Louise. Despite the heavy traffic to the lake we were able to plan to come back during the evening hours and made it up to an almost solitary part of the lake where we could spend the evening with just us. Moraine Lake is a moraine dammed lake. The valley was carved out by glaciers initially. You can tell a glacial carved valley from a stream carved valley because a stream carved valley will typically have a "V" profile from the stream constantly eroding straight down at the point of the water contact. However, since a glacier often fills most, if not all, of the valley it will erode on all sides equally creating a "U" shaped valley. Glaciers also carry the sediment that they erode out within the ice. Eventually the ice melts when it reaches an elevation or a climate that is too warm for it. At this point the glacier acts like a conveyor belt, dropping all of the sediment it had been carrying along the way into one big pile called a moraine. That is what happened here. A glacier carved out the valley and as it was melting away it deposited a pile of sediment (glacial sediment is called till) at the end of the valley forming a dam for the lake to sit behind. 

Glaciers also have a tendency to rub along the ground with the rocks and sediments embedded within them grinding down the rocks to a fine flour. This is called glacial flour and it is actually what gives the lake its lovely turquoise color when the light reflects off of it (suspended sediments in the water). Here is another view of Moraine Lake, facing west off into the valley. 

Despite the constantly warming climate which we are faced with in todays world, there are still some glaciers that are present and easily visible within the park. Moving our way a little further north the glaciers have a tendency to get a bit bigger and more noticeable. We are now traveling along the Icefields Parkway, making a at Bow Lake. 

There are a couple of glaciers visible at Bow Lake including this one, Crowfoot Glacier along the southwestern edge of the lake. The glaciers visible in the park have a tendency to only be a small outlet from a much larger icefield further up the mountains that generally aren't visible from the road. The glaciers along Bow Lake are all part of the Wapta Icefield to the west. 

Even in July, these waters are COLD. You can see Bow Glacier in the back of the photo here at the foot of Bow Lake. Bow Lake is another moraine dammed lake, like Lake Louise. The mountains seen here in the distance are made up of Cambrian quartzites and shales (~530 million years old) overlain by Middle Cambrian Limestones (~510 million years old). 

There are several types of river systems that are possible depending on the environment in which they are found. Within this region you get a lot of braided rivers. The North Saskatchewan River is a prime example of this type of river system. A braided river is where at times the river has a ton of water and energy, specifically around the spring melt. This enables the river to transport large amounts of sediment, but only during this time. At other times of the year the amount of water isn't enough to transport all the sediment in the river, causing it to dump the sediment as the water levels decrease to a trickle of what they once were. What is left is a series of river channels that weave in and out of each other within the river bed around the piles of dropped sediment, like a braid. 

At the northern most limits of Banff National Park along the Icefields Parkway the road takes a sharp, hairpin turn that at that top of gives a fantastic view off to the south. Here you can look down the North Saskatchewan River valley and you can see the beautiful "U" shaped glacial valley right in the center with the smooth sweeping valley walls characteristic of glacial terrains. 

References

Sunday, November 08, 2020

What are...Groups, Formations, and Members

For the next entry into my What are ...? series, I am looking at what exactly do geologists mean when they use terms like Group, Formation, and Members. Although the term "Formation" is used as the primary formal unit of classification, there are many different terms used to identify different bodies of rocks, and they can get a little confusing if you aren't used to it. Rock units can be broken down or combined together into varying degrees of resolution. How closely are you looking at the rocks and how closely related had they been formed will influence how a geologist groups them together. To help illustrate my point I put together this graphic.

When naming rock units, geologists look at the environments that the beds were formed in, the time period in which they formed, how long it took to form the beds, and how different are each of the units compared to those around them. All of the above provide different resolutions of rock units.

Lithostratigraphic Unit (AKA, rock unit) - A body of rock that consists dominantly of a certain lithologic type or combination of types, or has other unifying lithologic features. It may be igneous, sedimentary, or metamorphic, and it may or may not be consolidated. 

Lithostratigraphic units start at the formation level and can be broken down into smaller units, such as members or beds, or can be combined together into larger units, such as groups or supergroups.

Bed - The smallest lithostratigraphic unit, commonly ranging in thickness from a centimeter to a meter or two and distinguishable from the beds above and below. They are rarely given individual names unless they are distinctive for some reason, such as a dated ash layer. 

Member - A lithostratigraphic unit comprising of some specially developed part of a formation. It may be formally defined and named, informally named, or unnamed. A member does not necessarily need to be mappable. A formation also does not need to be divided up into members, or could even have only parts of it seperated out into members, specifically if it is useful to do so.

Formation - The fundamental lithostratigraphic unit that consists dominantly of a certain lithologic type or combination of types. A formation is a lithologically distinct, mappable body of rocks. Being lithologically distinct means that there must be a notable and identifiable contrast between the units of rocks to justify their division into two different formations. There is no limit to how thick, thin, or widespread a formation needs to be. 

Group - A stratigraphic unit that includes two or more associated formations that are usually contiguous or associated and contain significant features in common. Formations though do not need to aggregated into groups unless there is a useful reason to do so. 

Supergroup - The highest degree of lithologic unit grouping, which consists of an assemblage of related groups, or formations and groups, that have significant lithological features in common. Formations and groups only need to be aggregated into a supergroup if there is a useful reason to do so.