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Saturday, July 10, 2010

Craters of the Moon NM: A Quick Trip

A couple weekends ago, I drove up to Craters of the Moon National Monument. It was a nice trip, though a vague out-of-sorts feeling and a late departure led to a fairly short trip.

I’m not too worried about scheduling a return trip, however, since it’s closer than the grocery store. For serious.

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On the drive up, I was really impressed by the erosion of the nearby hills, and the really nice alluvial fan beneath them.

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On the other side of the road was this really nice tumulus.

When I first arrived, I took a short, quarter-mile walk along the North Crater Flow Trail.

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These large blocks are pieces of the North Crater that broke apart, and were rafted along in the lava flow. This may look like a really flat expanse of lava, but it’s much more textured in other areas.

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This is some ropy pahoehoe lava from that same area. This forms when the lava has a very low resistance to flow and is also flowing relatively quickly, usually near the beginning of the flow. The skin that forms on top the flow gets pushed forward by the onset of more lava, much like when you stir cold hot chocolate. (My advice: pull that off. Nasty.)

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Do you see the extrustion of lava flowing towards you here, across the top of a flatter section of lava? This is called a squeeze up, and occurs when the pressure inside a flow forces lava through the thick crust above it. In this case, it occurred at a pressure ridge – a section where the pressure inside a flow built up, and created a ridge.

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After that, it was time for the ranger-led tour of Indian Tunnel, a lava tube. My first experience with lava tubes was here, so I was intrigued to see if it measured up to my remembrances. When I was 13, it was the coolest thing ever – I took notes the whole way, complete with sketches. (For serious.)

I’ll be honest, since I have more lava cave experience now, it wasn’t overly impressive – there are much cooler caves elsewhere on the Monument/Preserve, including some of the best lava caving I’ve done.

However, Indian Tunnel definitely is a good one for kids – the cave segments aren’t long enough for natural light to disappear, and it’s an easy walk. The children on my tour seemed totally excited, especially two boys who made Good Photo-Ops For Mommy a goal. (“Get a picture of me up here, Mom!” “Come take it from over there!”)

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The cave is in a part of the Blue Dragon flow, named because it has this crazy blue sheen to it – it’s much brighter in person. It’s rather strange looking, and apparently scientists don’t know why it occurs.

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This is about the longest section of darkness, and the end of the tour. You travel along the flat floor of the tube up to this point, where crossing some breakdown is necessary at a skylight.

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This is a small example of a bench at the skylight. This occurs as the tube curves, and the inside edge slows down enough to cool somewhat. They can be much more dramatic than this, but this also showcases some nice lichen formation – that green stuff on the wall.

(The white sections are either secondary mineral deposits – probably calcite – or pigeon poop. Here’s something I learned on this tour: pigeons aren’t native to Idaho – they were brought in by the US Calvary, as carrier pigeons. If I ever meet a US Calvary man from that era, there are a few choice words I’d like to say to him.)

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This is an example of the ceiling in Indian Tunnel. You can see the white calcite deposits on the ceiling here, which made the ceiling look like meringue to me as a child. The floor was much more brownie-like. (I might have been hungry…)

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This is looking back at the skylight, after crossing the small pile of breakdown. Skylights are places where the tube’s roof has collapsed, which can occur in a variety of ways. If it occurs after the roof has cooled, but while the lava is still flowing, the breakdown can be rafted away from the entrance. If it occurs after the roof has cooled and the lava has stopped flowing, it creates this pile of breakdown, which is a joy and a pleasure to clamber over.

After you cross beneath the skylight, you enter another short period of cave, and then climb out another skylight. Viola! The cave is over.

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Your reward for making it to the end is a short hike across a barren lava field, where you can admire some more flow features.

All in all, it was an enjoyable trip. Next time, I’m planning on leaving earlier, so I can hike some of the longer trails, check out some other caves, and get a better look at the spatter cones and tree molds.




Note: I'm trying Windows Live Writer out. I'm hoping it will enable me to draft posts off-line, and then quickly post them when I can get on-line. That's why the pictures are small in this post.

Wednesday, June 23, 2010

Road Trip Photos: Painted Hills, John Day Fossil Beds, OR

The contents of my apartment, minus one Jeep-ful. Where did this all come from?

Replica of Stonehenge on the banks of the Columbia River, near Maryville. (Vaguely, in the distance, lie the Columbia River flood basalts.)

The Painted Hills section of the John Day Fossil Beds. This lame picture really doesn't do the colors justice. Now one of my favorite places, this was totally worth the long drive. (Old car + lots of stuff + mountain passes = 25mph.)

The Painted Hills are a layers of volcanic tuff that were protected by basalt flows. Eventually, they were tilted and uplifted to expose these red/tan/yellow/green/pink layers. (Seriously. It's awesome.)
Is the Jeep for scale, or just to show it off? You decide.


After visiting the Painted Hills, I was pressed for time, and discovered that said Jeep can go 70mph without disaster, or photographic evidence.
But, suffice it to say: I made it to my internship, and it is beautiful out here - lots of basalt flows and sagebrush. Today was a really laid-back first day, just checking out files on the nearby caves, which look awesome. I'm really looking forward to visiting them this summer.

Tuesday, June 15, 2010

Columbia River Flood Basalts: A Few Pictures

I've been on two trips to the Columbia River Flood Basalts recently, including a really awesome one looking at structure/stratigraphy of the basalts, and the recent landslide there.
These are a few pictures from the other trip - I haven't been able to upload the others.

Pillow basalts that formed when the flows encountered ground water. The surrounding material is palagonite, formed when the basalt fractured into dust as it entered the water.
The Grand Coulee Dam, which supplies a lot of power for Washington, in addition to having a dramatically negative effect on salmon spawning habits. Also home to the funniest laser show ever.
An oddly Grecian structure at the dam overlook.
Porphoritic rhyolite found in a river bed, washed down from Missoula Flood deposits.
A lava flow, complete with columnar-jointed bottom layer and hackly-jointed top layer. The top layer cools most quickly, which leads to the imperfect jointing. The bottom layer is insulated, and thus cools slowly, allowing columns to form.
Dry Falls, the largest waterfall ever. During the Missoula Floods, this was about ten times larger than Niagra Falls.


My week consists of: spanish, physics, calculus, and chemistry finals, moving my entire apartment into a storage unit in one day, annnnd moving to Craters of the Moon, via the John Day Fossil Beds.
It's a tough life, but somebody's got to do it, right?

Tuesday, June 1, 2010

Favorite Geology Picture: Kings Canyon National Park

This is a late entry (and my first ever) for the Accretionary Wedge, hosted at Highly Allochthonous. I was on a geology field trip, so hopefully not too late!
Too high up to get scale - see below.

This is my favorite geology picture because it represents an "A-ha" moment.
When I took 101, I basically ignored sedimentary and metamorphic rocks. I figured I had to merely pass those sections, in order to continue learning about volcanoes and earthquakes and cool stuff. My 101 class didn't have any field trips, so this preconception wasn't really challenged. Of course I'd seen rocks of that sort before, but somehow had never paid attention, even to the Grand Canyon.
This lame attitude tapered off, but did persist for several years.
Until I drove through King's Canyon National Park in California. The rocks there were so incredible, and you could really see them: not something that happens much in tree-covered western Washington. There were quartz veins and exfoliation and uplift and craaaazy deformation.
It really opened my eyes to aspects of geology I had brushed off, and helped me realize that the importance of being receptive to learning and curious about the world (instead of being a pretentious dilettante.) It illustrated how all the processes that create rocks and shape our landscape are dynamic and fascinating and exciting, even if they aren't sexy or dramatic or catastrophic.
I don't know what kind of rock this is or how it came to be here (I couldn't stop for more than a minute.) But I look forward to learning enough to be able to discuss it!


With some bushes for scale.

Saturday, May 22, 2010

Mt. St. Helens Pictures

May 18th was the 30th anniversary of the 1980 eruption of Mt. St. Helens!
Mt. St. Helens erupted prior to my birth, and I actually only saw it once before I turned 16. But, since then, I've been trying to make up for lost time. Living within a few hours of it makes that pretty easy!
These pictures are all from within the last year.

Memorial Day Weekend:
(I can't lie - this sign is always exciting!)

Still snow-covered.

Older flows contain the majority of Washington caves, including the ever-popular Ape Cave, open to tourists in the summer, and Gueller Ice Cave, a personal favorite.

August:
Without the snow, it's much easier to see the effects of the devastation.

Immediately after the eruption, there were large chunks of the mountain's glacier interspersed with this material. When these melted, they left behind hummocks, or piles of volcanic debris, including ash and large blocks from the cryptodome (the bulge.) The orange coloration is from geothermal alerting before the eruption - as they were heated and exposed to heated water and gases, the chemistry was altered.

Here you can see two different types of lava that were being mixed together when they erupted.

Spirit Lake: Even to this day, there's a layer of logs on the surface of the lake. They float around the lake when the wind blows.

September:
The wind picking up ash on the crater.

The lava domes! The old one is in the foreground, the new one in the background. Should you decide to climb Mt. St. Helens as a tourist, you'd hike up the back side, and summit at the crater wall seen in the background.

A concentrated pyroclastic density current near the crater, with hiking staff for scale.

Gas escape pipe in another pyroclastic flow. After the eruption, the gas that was in the flow needed a way to escape, and formed these pipes to the surface.

Spirit Lake, again, as seen from the Pumic Plain

Older uplifted flows

Pumice (with frog for scale)

This is a small hole dug into the pumice plain. You can see the layer of pyroclasic flow, with the pumice that was rafted to the top. Then, immediately on top is the layer of ash deposited from the ignimbrite cloud. (A layer of very fine ash that rose from the pyroclastic flow, then fell after the flow was deposited.)

Debris avalanche deposits are visible here, seen as the triangle of rising ground in the center. On May 18th, there was a 5.1 earthquake that released the largest landslide in history. This landslide released the pressure in the cryptodome, which trigged the eruption, and the pyroclastic flow. The pyroclastic flow traveled faster than the landslide (or debris avalanche) so the debris avalanche deposits are on top of the pyroclastic flow deposits.

When the pyroclastic flow overran a small lake, the water was flash boiled, creating an explosion pit. This one has been subsequently filled by water.

This is a sample of the dacite cryptodome from the 1980 eruption.
This is obviously my favorite.


References: I learned most of this in the class I took last summer, and the brief fieldwork I did with that professor. They were both pretty awesome experiences!