Showing posts with label arkose sandstone. Show all posts
Showing posts with label arkose sandstone. Show all posts

Monday, October 16, 2023

Anatomy of a Mountain Range 2: The geological spectacle of Red Rocks


I made these recordings at the Phillips 66 in Morrison at the start of my hike. The weather is holding steady but it's warming up. My sweater has long ago gone into my backpack. The altitude is actually below that of the light rail station at Broadway. That's not surprising since the train station is up above the South Platte River. Morrison is nestled down in the Bear Creek Canyon. I'll be hiking up a lot for awhile.

To the right is the valley cut out by Bear and Mount Vernon Creeks. They flood occasionally so it's a fairly broad area. To the left is the rise to the Rocky Mountains. Here, that would be Mount Morrison and Mount Falcon.
These huge chunks of Fountain formation rock are arkose sandstone. What makes them "arkose" is the large amount of feldspar still in them. What gets eroded out of mountains is usually the constituents of granite - quartz, feldspar, mica, amphiboles, pyroxenes. And small amounts of other stuff. The stuff washed out of the Ancestral Rockies obviously had a lot of dark, iron-bearing minerals such as biotite mica and amphiboles. That's where the red rust comes from when they fall apart chemically. But the feldspar usually goes to clay and quickly gets washed downstream. For there to be feldspar left, the sediments must have been washed out very quickly, deposited close to their source, and buried so that the process of consolidation can begin sooner than later.

There's something else you can see here. Those pockmarks in the rock are called "tafoni" or "honey comb weathering". They're fairly common in desert environments. In really wet places, water just grinds away at rock faces willy-nilly and wears them down large scale. Here, water seeps into the permeable rock and finds weak spots. That's where it starts chemically weathering the stone...in spots.

The sandstone particles are tough because they're cemented together with calcite, but calcite is soluble in acids, and dew and occasional rain is weakly acid from the carbon dioxide it has dissolved. That's how caves form in limestone, which is primarily calcite. In sandstone, the quartz particles (sand) just fall out to form these little holes and horizontal and vertical joints.

The wind and moisture isn't in any hurry to do widespread damage so they can be artistic, carving out these spectacular rock sculptures.
There are a couple of streams in the neighborhood. Bear Creek is a picturesque mountain stream draining the area around Mount Blue Sky. It comes in crashing in from the west having cut out it's canyon. Mount Vernon Creek is a smaller, lazier stream that pours in from the north skirting the edge of the hogback. Most of the streams in Red Rocks Park are like the one shown above...dry until it rains. They're called "draws". This landscape would fit right in with any John Ford western.

Typically, the Fountain formation show up as "standing stones". They look like they were arranged by some giant child marching off into the horizon. Now you know why. They're the shell of the Rocky Mountains, cracked open as the present Rockies were born. Most of the red sandstone on top have long ago been weathered to nothing but there are still some places in the mountains where there are remnants such as Red Rocks Campground, near Woodland Park, west of Pike's Peak.

This is a view south on the Trading Post Trail that runs from a parking lot near the South Entrance to the park to the Trading Post/Rock and Roll Hall of Fame Museum at the base of the amphitheatre.

The lower part of the trail is loose rock and sand deposited by present streams, mostly flooding by Bear Creek, but near the amphitheatre, the flat rock is Fountain formation, giving the hiker an opportunity to see Red Rocks closeup. These ripples are cause by the same weathering that creaked the tefoni in the standing stones.

That's part of the amphitheatre peeking out from behind the little tree. I followed the Trading Post Trail up and around to the grueling stairs up the side of Red Rocks Amphitheatre called the Funicular Trail, which leads to the upper parking lot.

When Red Rocks Park was first built, there was a funicular railroad that carried visitors to the summit of Mount Morrison for a grand view of ...well, everything....mountains, canyon, plains, Red Rocks. To get up there now, you have to hike, but the stairs will get you part way if your knees and lungs hold out.

At the upper parking lot is this...
This is the mystery I promised you at the end of the last blog. At the breadth of a finger is a gap of over a billion years!

It's called the Great Unconformity. The red Rocks on top are the 300 million year old Fountain formation. They sit directly on top of 1.7 billion years old rock of the Idaho Springs formation. What happened in between?

The grayish rock at the bottom is metamorphic gneiss and it's older than the land that would become Colorado. Over a billion years ago a chain of volcanic island crashed into the North American plate and stuck. Rocks like this were lifted with the rest of the Rockies during the Laramie orogeny to become the core of the mountains. 

But what happened to the geologic history of over a billion years? Nobody knows for sure but the most popular answer I find reading about the Great Unconformity is erosion. Something scraped all that accumulated debris off the core rock 400 million years ago. 

Of course, the erosion that formed the Fountain formation razed the Ancestral Rockies to level plains. The sediments above the metamorphic and igneous core of those ancient hills simply washed to the sea. As the hills came down and their slopes leveled out, the sediments were deposited closer and closer (gentler slopes meant slower water currents) until the erosion met granite and gneiss and the sand was laid down right there in what would become Red Rocks Park.

But some geologists find even that to be a weak explanation for the elimination of a billion years of strata.

A tantalizing theory is that the great eraser, glaciers, did it. About that time is when some geologists speculate that Ice covered the Earth, a time they call "the snowball Earth."
West Alameda Parkway begins in Aurora (East Denver Metro) at the Buckley Space Force Base, runs through Denver (one of my favorite shopping areas is around Alameda and Broadway) and ends at the top parking lot of Red Rocks Amphitheatre. In fact, Dinosaur Ridge is a closed off section of Alameda. It passes through a tunnel in a big chunk of the Fountain formation and, not long after, the Plains View Road splits off to the left and leads to the Geological Overlook Trailhead. That looked inviting so I took the bait. It wasn't long before I realized that, if I wanted to make it to Golden before night, I needed to turn back, but before I did, I took a few shorts from a high point (the trail climbs up about a third the distance to the summit of Mount Morrison.) The photo above is one of them.

The two hills in the distance is the mouth of Bear Creek Canyon and just beyond is Bear Creek Lake and Mount Carbon.
This is a view back down to the amphitheatre and Mount Falcon beyond.
Here's some more of that chemical weathering. It gets pretty extensive in some of the areas in Red Rock Park.


A little further north on Alameda Parkway I find the other end of the Geological Overlook Trail and realize that the overlook itself is just off the road, so I take another picture. There's a big sign there that tells you what you're looking at but it was crowded and I try not to get recognizable pictures of people without their permission, so I just got a panorama from the side.

A little more roadwork brought me to Dinosaur Ridge, and that will be the main subject of the next section of Anatomy of a Mountain Range.

Monday, March 28, 2022

The Dawson formation - and a bit about safety

Still looking for an outcropping of the Dawson formation, I headed down to the Englewood Reservoir. The geologic map of the area showed that the bedrock of a couple of sites there was Dawson sandstone. Here's the Rockd map I was looking at.


Those darker beige splotches at either end of the dam embankment are Dawson formation bedrock. The satellite image looks like this.

Geologic maps are the primary tool of the field geologist. It's not always obvious what's beneath your feet but, when you hold a geologic map, you hold the collected knowledge of the geology of an area. Add a satellite image and a topographic map and you're set...well, assuming you know how to read them.

For instance, it doesn't take much imagination to see that, before the dam was built, Willow Creek had carved a valley right through the Dawson sandstone. The surrounding materials are much more recent stuff laid down by local streams...the colluvium I've been talking about.

The dam changed the face of the area. Again, it would be difficult to tell how much of this material was moved in, and how much was just rearranged dirt from the site. The plaque above tells a lot about the dam. It's purpose is flood control. At flood stage, Willow Creek changes from it's current swampy state to a small lake  the embankment is 55 feet high and the reservoir can store 652 million gallons of storm runoff. After the devastating floods early in Denver's history, the city really took flood control to heart. Other examples in the area are the Holly Reservoir, Bear Creek Lake and the Mount Carbon dam, and Strontian Springs dam in Waterton Canyon.

Englewood Reservoir dam

The sandy colored ridge in the distance is underlain by the arkose sandstone of the Dawson formation. Most sandstone is composed almost entirely of quartz sand, laid down in the past by erosion and deposition by water or wind. The parent stone was often granite or gneiss but quartz is the only thing left after the feldspar, mica, and other materials are weathered away. Arkose sandstone isn't rare. About 15% of the sandstone you see will be arkosic.

The stuff washed out of the Colorado plateau to form the Rocky Mountains was dumped quickly onto the plains and buried so that the feldspar didn't have the chance to decompose into clay. Arkose sandstone is the result. Here's a stream tumbled piece that I found on the site.

The broken face doesn't have any tool marks, so this is not likely an artifact. There was probably a weak plane between the granules that make up the rock and it just broke apart. Microphotographs show that the mineral grains are still pretty much intact.

You can see clear quartz, white feldspar, and black amphibolite. Sandstone with more than 25% feldspar is considered arkosic. This specimen is loaded with feldspar.

I use a clip-on microscope with my smartphone for the photomicrographs in this blog.

This is the hill on the west side of the dam where the Dawson formation reemerges. A formation is a group of rocks that consistently appear together and can be distinguished from neighboring rocks. The Dawson formation underlies most of the Denver area and is composed mostly of arkose sandstone with some mudstone (shale) thrown in.

This is the ridge on the eastern side of the dam over the Dawson sandstone. If the dam were not maintained, it would wear away, so grasses and other plants with deep roots are encouraged to grow there. The top soil they create is why the bedrock isn't visible and it would be rude (and illegal) for me to dig around in it. But it is interesting to see how the hard sandstone under the surface influences the surface features of the land.

The clay's here expand when they get wet and when they dry out, they contract and crack. I saw these cracks with something growing in them. Looks like writing, doesn't it?

From a distance, the plants looked like they might be a moss so I got on my belly to take some photomicrographs and, turns out they're grass seedlings.

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I've talked about safety and disaster preparedness on this blog before.

I think there are several reasons that many people are unconcerned about what they would do in an emergency. It's likely that they have never had a major disaster happen to them...yet, so it's not in front of their minds. Also, familiar surroundings don't feel dangerous.

But can you think of anyplace in your home that would be hard to escape from in the event of a fire? I bet you could. Do you even know how you would get out of your bedroom if you awoke one night to the smell of smoke?

Can you list all the dangerous events that could occur in your area and would you know how to survive them? Are they the same hazards you might encounter In your favorite vacation spot?

Blake Kelly is a Boy Scout that's interested in safety and disaster preparedness. I thank him for sharing the following link.


Take a look. It might save your life one day.