Showing posts with label BR. Show all posts
Showing posts with label BR. Show all posts

Tuesday, December 6, 2016

More From the Road: Tilted Every Which Way?

I stopped while driving through the Virgin River Gorge in northwest Arizona to take this picture of some of the dipping sed rocks that are common through the greater Colorado Plateau area. (This area, lying barely within the Basin-and-Range province, is just outside the Colorado Plateau proper, but the rocks here are correlative to those throughout the plateau region, and they have been subjected to some of the same tectonic forces.)
It looks like the sedimentary layers are dipping every which way!
This second photo zooms in just a bit, focusing on the far hill, which shows a slight bend in some of the layers.
I've drawn in a few of the beds, as before, and point out a dip slope formed on the top of the reddish layer.
This Google Earth image of the area shows the photo location in purple.
I decided to see whether the beds were really dipping every which way. I used beds I could identify in Google Earth, picked out two points along the beds that were at the same elevations, and drew strike and dip symbols from these two points (method described here). The dip slope labeled above is the small lens-shaped hill beneath the central strike-dip symbol. It became apparent from looking at Google Earth that the primary reason the dips in the photos look cattywampus is because the rocks in the foreground are dipping toward the photographer (to the WNW), and most of the other beds are dipping in a more northerly direction (NW, N, or NE).
The same Google Earth image with some hypothetical strike-dip symbols.
So, how did I do on the strikes and dips? And is there anything else going on in the area? Well, okay (ish) and yes.
Map I-2165 (Bohannon et al, 1991) courtesy USGS, overlain on Google Earth.
The Cedar Wash high-angle reverse fault cuts right through the area, separating the strata dipping toward the west (the foreground strata in our photos) from strata dipping in a northerly direction. You can see, by clicking on the several images and going back and forth between them, that I did well on the strikes on the west and east, and not so well (in general) on the strikes in the center. Either that, or the strikes of beds in the center varies more than shown on the map (I'm pretty sure I did pretty well on the labeled dip slope, but I will never climb that hill to check it out!)

Read a little about the Cedar Wash fault and the general geology of the region here.

Sunday, November 27, 2016

Links: Here Are a Few, But Great, Great Basin and Great Basin Divide Links

Great Basin—Mojave Desert Region - the hydrographic, physiographic, and floristic Great Basin (GB) regions and climate; v. good map of vegetation zones, lots on flora and fauna; pretty good map of the GB itself although it goes all the way to Colorado River (!!); Fremont coined "Great Basin".

Quaternary stratigraphic, hydrologic, and climatic history of the Great Basin, with emphasis on Lakes Lahontan, Bonneville, and Tecopa - Morrison, cited in the first ref, said the area of the GB "exceeds 500,000 square kilometers" ; this source is not available online, is part of DNAG - this volume.



The Great Basin: A Natural Prehistory - Grayson, at Amazon. (and here's a Google Book preview.) A better map of the GB. Grayson discounts having the Salton Sea in the Great Basin on page 11. His map, page 12, also ends the Great Basin in Pahranagat Lake, as justified below (Witt etal, 2008):

Jonathan D.S. Witt, Doug L. Threloff, and Paul D.N. Hebert -
Genetic zoogeography of the Hyalella azteca species complex in the Great Basin: Rapid rates of molecular diversification in desert springs:
Geological Society of America Special Papers, 2008, 439, p. 103-114, doi:10.1130/2008.2439(05). Page 104 (clip from Google Books):
(Witt et al, 2008 is in GSA Special Papers 439:
Late Cenozoic Drainage History of the Southwestern Great Basin and Lower Colorado River Region: Geologic and Biotic Perspectives -
edited by Marith C. Reheis, Robert Hershler and David M. Miller).



Fishes of the Great Basin - a Google Books preview - shows the White River above the lower end of Pahranagat Valley as in Great Basin.



Google Earth image of the West with a lot of lines. The Great Basin divide according to me is in magenta, wrapping around the Great Basin. Note the two possibilities at Pahranagat Lake, and no Salton Sea.
There is a mention of the Great Basin divide (GBD) in "Ore Deposits of the Jarbidge Mining District" 1912, (Google Books preview).

The Jarbidge Mining District, 1923 - mentions the GBD.

Friday, October 21, 2016

A New Road Trip in the Making!

Well, I'll be on the road for the next 10 to 14 days, so I'll try to have a couple posts by way of phone photos, provided that I can edit them to get the phone-photo size to match my blog size. It will be an experiment.

Photo from Whitney Portal Road looking east toward the White-Into Mountains (taken in early March, 2016). Sierran granite in shadows on the right.

Tuesday, March 29, 2016

Death Valley Trip, Getting There: Walker Lake, Road Stories, A Bit about Copper, and Some Folds near Luning

MOH and I left the area where we had stopped to hike (shorelines, remember?), and we steered steadily south—south to south by east—between the steep eastern face of the Wassuk Range and Walker Lake's western shore.

It can be hard to drive by Walker Lake without stopping for photographs, though I find myself doing that more often than not. Sometimes the lighting is off, with the sun high in the sky or at the wrong angle, other times the lake and mountains are obscured by a pervasive haze. Consequently I have few good photos of the lake. I got lucky in the spring of 2008.
Between a rock and a guardrail: the steep eastern side of the Wassuk Range, looking north along Highway 95.
I've always found this precipitous range front fascinating when driving past at 40 to 60 mph (o_O)—the granitic rocks along the range front look shattered, presumably munched by the Wassuk Range fault zone—but I've rarely pulled over to examine anything closely because of unusually minimal standing room on the inboard side of the highway.
Looking south toward Hawthorne from a pullout near what is now the north end of Walker Lake.
A strangely stitched agglomeration of six photos. Notice the pronounced shorelines in the foreground and in the distance on the left.
Driving toward Hawthorne, I had hoped to skirt town by breezing through on the hazardous waste bypass road, but our gas gauge read low enough to make me wonder if we would make Tonopah. I suspected there would be no open gas stations between Hawthorne and Tonopah. (It turned out that there weren't any, open or not!)

The first station we stopped at in Hawthorne was immediately frustrating for some reason, so I went to another station. The second station seemed to be still residing in the dark ages, without usable card readers, so I went inside. "Do you want to fill up? Leave your card here," the attendant said with her hand out. I looked at her like I'd never heard of such an archaic procedure, and she relented, "Go ahead, take it with you, just be sure to pay after." I filled up and went back in to pay. She apologized for the inconvenience, but I wasn't convinced that their card readers were actually broken. I thought it was at least 50-50 that the station was just trying to get customers inside to buy a drink or a snack or two. But maybe the out-of-order signs were legit...

For some reason I found the whole having-to-stop-in-Hawthorne situation just almost too much to handle, even though the city used to make you drive into town no matter what. Now there is a bypass. Then there was a great little Shell station at the downtown corner where you turned left after stopping at the town's single red light. It was a perfect opportunity to get excellent gas.

We pulled back onto the 4-lane part of Highway 95 near the west edge of Hawthorne and turned right onto the bypass.



Two things come to mind when I go through Hawthorne. First, I'll remember a dream I had once where I took the Hawthorne bypass and drove around town, north to south, and the bypass itself seemed to be the whole point of the dream. Second, after turning east onto Highway 95 at the south end of the bypass, my mind will go into a driving reverie and take me back to a time in the late 80s. I was telling someone that if I had enough money, I would quit my work in minerals exploration and just go out and map. Here or there. I'd seen a lot of places I thought were interesting, and I loved mapping. So, I'd just go out and map. And I'd start a map publishing company.

My unnamed sidekick said that mapping should have a point. Like I shouldn't just go out and map; maybe instead I should try to figure out something in particular about the geology of the area. I disagreed. The USGS mapped tons of quads and the whole point was getting the entire area (the West? the U.S.?) mapped. My mapping would be more detailed than quad mapping, and I would just go out and do it. Maybe I'd start right there—up ahead in the volcanic rocks near the pass outside of Luning. Maybe I'd start at any of several places I'd already done some detailed mapping, part of the point being to make the mapping available to the general population of geologists working in the area, not just to one exploration company.
Volcanic rocks in the Benton Spring area of the Gabbs Valley Range, about 7 miles north of Luning.
I drive east, my mind goes into this same reverie, and I remember that time—and how, when it came down to it and I had some money and some free time, I didn't do that.



MOH and I drove into Luning, and rather than stop at the Luning Rest Area, we took a dirt road going toward the hills of Black Dyke Mountain, accidentally choosing a road that would have eventually delivered us to the Blue Ribbon Mine. It was in this area that I learned how to test for the presence of copper in black Mn-oxides by using cold, dilute HCl to plate copper onto a rock hammer. This method tests for copper wad or neotocite (a hydrated Mn-silicate sometimes containing enough Cu to be considered an ore mineral), or a few other black copper minerals such as chalcocite and tenorite.

Not too far ahead, in the low hills of Black Dyke Mountain, we spotted some folds in unknown rock formations:
Folded, contorted rocks in the hills less than 2 miles SW of Luning.
Zooming in on the folds.
And that's it for this part of the road trip! We'll continue on towards Tonopah and Beatty next time.

Location map

Related Posts (in order of posting):
Death Valley, "Super" Blooms, Turtlebacks, and Detachments
Death Valley Trip, Part 2: More of the Badwater Turtleback Fault
Death Valley Trip, Part 3: Northward, and over Daylight Pass
Death Valley Trip, Getting There: Wave Clouds beyond the Sierra
Death Valley Trip, Getting There: A Hike to Pleistocene Shorelines

Tuesday, October 27, 2015

Finding a Thesis: A Bit O' Geology in the Palmetto Mountains

My (very) rough interpretation of the Walker Lane on Google Earth.
As for the broad geology of the Palmetto Mountains area, what I knew back in the spring or early summer of 1976 was quite broad, and it probably wouldn't have filled up the trunk of my '72 Opel. The main thing I knew—besides that the region was known for its silver mining, and that the silver mines were presumably of the Betty O’Neal type (see more here; I can’t actually expound upon this much further anymore because that terminology never came into wide use)—was that I was in that confusing realm in western Nevada known as the Walker Lane (or Walker line, Walker belt, Walker Lane belt, Walker Lane strike-slip belt, and even Walker Lane mineral belt; we geologists can be overly broad and rather sweeping at times).

The Walker Lane, first named by Locke et al. (1940), is a somewhat vaguely defined, and yet locally precisely defined zone of abnormal structural trends, a zone that acts as or is the transition between the Sierra Nevada structural block and the Basin and Range province. Albers and Stewart (1972) described it thusly:
“a zone of disrupted structure at least 300 miles long and 50 to 100 miles wide that forms a transition between the northwest-trending Sierra Nevada block to the west and the north-northeast-trending ranges of the Great Basin province to the east.”
(Please note that this use of "Great Basin" may be incorrect, depending on where one terminates the Walker Lane to the north and south; i.e., the Walker Lane would be at least partly outside the Great Basin if it extends north of the Madeline Plains, and it is outside the Great Basin if it extends as far south as Las Vegas.)

(And also, by the definitions above, which reference the Sierra Nevada, the Walker Lane shouldn't continue north of about Susanville, CA; or farther south than about Las Vegas, NV, Kingman, CA, or maybe Parker, AZ.)

Different maps and figures show different boundaries for the Walker Lane, and as you can see from my interpretation on the Google Earth image, the zone gets vague to the north (or disappears) where it runs into the Cascades, and it gets vague (or meaninglessly broad) as it goes southward toward and past Vegas and the Mojave Desert. Looking at Google Earth and zooming way out, it appears that the entire Mojave could be included in this belt, and that the general trend continues southward into Mexico where the caterpillars are marching to the northwest. I don’t mean to formally extend the Walker Lane to the south like that, because as a definable and distinct structural entity it then becomes quite nebulous.

Anyway, not only was I cognizant of the existence of the Walker Lane back in '76, but I also knew that the Palmetto Mountains were located along the southern portion of the larger Silver Peak-Palmetto-Montezuma (SPPM) oroflex (Albers, 1967), a feature that is broadly part of the Walker Lane (and may have been caused by motion along Walker Lane strike-slip faults). I hypothesized (possibly fancifully; I didn't get to check it out) that an east-west structure defined by Lida Canyon on the east and Palmetto Wash on the west formed a break between the larger, well-defined SPPM oroflex to the north and a poorly formed Sylvania-Magruder oroflex to the south (which may not exist).
I've drawn the approximate trace of the Silver Peak-Palmetto-Montezuma oroflex on a Google Earth image.
Oroflex, as defined by Albers (1967, p. 145):
"a mountain range with an arcuate trend that is believed to have been inherited from tectonic bending of the crust"
Well, so much for that. Yes, we’re in the Walker Lane (and have been since before coming to the Klondyke mining district). Yes, there has been an oroflexural bending of the structures or mountain ranges of the area during formation of the Walker Lane—if that is, indeed, what really happened—sorry to be vague about this; read more at Faulds and Henry (2008) and Petronis et al. (2009). Tectonic issues can be kinda complicated!

As for Lida and the Palmettos, I would make my way back into this area a couple times in later years—and I'll probably get into these visits a little before moving on to my next thesis stop: Silver Peak.

Selected References:
Albers, J. P., 1967, Belt of sigmoidal bending and right-lateral faulting in the western Great Basin [abstract only]: Geol. Soc. America Bull, v. 78, p. 143- 156.

Albers, J.P., and Stewart, J.H., 1972, Geology and mineral deposits of Esmeralda County, Nevada [for purchase only]: Nevada Bureau of Mines and Geology Bulletin 78, 80 p., 1:250,000.

Billingsley, P., Locke, A., 1941. Structure of ore districts in the continental framework. Transactions of American Institute of Mining and Metallurgical Engineers 144, 9–59.

Faulds, J. E., Henry, C. D., and Hinz, N. H., 2005, Kinematics of the northern Walker Lane: An incipient transform fault along the Pacific–North American plate boundary [pdf]: Geology, v. 33, no. 6, p. 505-508.

Faulds, J. E., and Henry, C. D., 2008, Tectonic influences on the spatial and temporal evolution of the Walker Lane: An incipient transform fault along the evolving Pacific [pdf]: – North American plate boundary: Arizona Society Digest 22, p. 433-466.

Locke, Augustus, Billingsley, P. R., and Mayo, E. B., 1940, Sierra Nevada tectonic pattern [abstract only]: Geol. Soc. America Bull., v. 51, p. 513-539.

Petronis, M.S., Geissman, J.W., Oldow, J.S., and McIntosh, W.C., 2009, Late Miocene to Pliocene vertical-axis rotation attending development of the Silver Peak–Lone Mountain displacement transfer zone, west-central Nevada [abstract only], in Oldow, J.S., and Cashman, P.H., eds., Late Cenozoic Structure and Evolution of the Great Basin–Sierra Nevada Transition: Geol. Soc. America Special Paper 447, p. 215–253.

Stewart, J.H., 1980, Geology of Nevada: a discussion to accompany the Geologic map of Nevada: Nevada Bureau of Mines and Geology, Special Publication 4, 136 p.

Wesnousky, S. G., 2005, The San Andreas and Walker Lane fault systems, western North America: transpression, transtension, cumulative slip and the structural evolution of a major transform plate boundary: Journal of Structural Geology, v. 27, p. 1505–1512.

Previous Posts in this Series:
Thesis: Finding an Area
Finding a Thesis: Battle Mountain to Austin to Gabbs
Finding a Thesis: Pole Line Road
Finding a Thesis: Pole Line to Belmont
Finding a Thesis: Klondyke District
Finding a Thesis: A Joshua Tree Aside
Finding a Thesis: Into the Palmetto Mountains
Finding a Thesis: Farther into the Palmetto Mountains

Monday, January 20, 2014

A Bit More about Toulon Peak

It was a hazy winter day when I pulled off I-80 at the Toulon exit, thinking that I'd find a dirt road and check out some tufa mounds and domes along the same Lahontan shoreline where this mound occurs, but about nine miles away (shoreline miles).
If you pull off at Toulon, take the Ragged Top dirt road, which heads NW then WNW toward a low pass in the Trinity Range south of Toulon Peak. Don't, in this case, head toward Toulon, the moth-eaten old mill seen just right of the sign.
I drove the road up the alluvial fan, passing by the distant tufa mounds, not finding a road that would take me directly to them. I finally turned onto a side road about 1.5 miles beyond the I-80 underpass, but realized I was quite a ways past the shoreline of interest.

I decided to, once again, test blog a photo from my new mobile device, using the Blogger App for Android, which is getting quite variable reviews. A major problem for me is that the app has no option to control placement of the photo in the post or the size of the photo (without going to the web version of my Blogger Dashboard, which works quite well).
I shot this photo with my phone, looking west. Toulon Peak is the high peak.
I shot this photo with my camera. At this point, neither photo has been modified by adding contrast or color, nor has either been sharpened.
My biggest disappointment was something I noticed over the holidays while in Alaska: the Blogger App will not give very many choices for location. In Alaska, I was given the choice of a very precise (and accurate) location that would have pinpointed my mom's house within a mile or less (more precision than she would have liked), or some nearby locations such as a local park and several commercial establishments. I wanted to just use "Anchorage, AK" as the location, but the app doesn't allow entering anything not on its commercially oriented list.

Near Toulon, within two miles of I-80, the Blogger App could only give me the location of "The Americas", not nearly close enough for my purposes. I was within range of the Verizon 3G network, had no problem uploading the post and publishing it, but the app didn't offer me a way of indicating I was anywhere within the states, within Nevada, or close to Lovelock, let alone near Toulon. I'm pretty sure that the #NSA would have been able to locate me, and no doubt Google Maps knew where I was, although I didn't think to check it out -- I was in a bit of a hurry, trying to outrun the setting sun.
Here's a version of the phone photo, cropped to more closely match the camera shot, and with added contrast and slightly adjusted color.
And here's my enhanced camera shot.
The hills in the foreground, all the way back to the white hill capped by orange-brown and dark brown rock, are composed of relatively young volcanic rocks, which are generally listed on state maps as being within the 6 to 17 Ma range. The white section of rocks, called Tts on the Pershing County map, probably correlates with the Esmeralda Formation to the south and the Elko Formation way to the northeast. These are the early to more recent basin-filling sediments, often tuffaceous, sometimes diatomaceous, that began filling basins just after the start of basin-and-range faulting and basin opening. These are typically capped by young ash-flow tuffs, young andesites or basaltic andesites, and basalts. It's unclear to me what the capping dark brown and orange-brown rock is from this distance.

Toulon Peak appears to be underlain mostly by young volcanic rocks, also shown as being within the 6 to 17 Ma range, although Jurassic-Triassic sediments and metasediments of the Auld Lang Syne Group and some Cretaceous granodiorite are shown on the county and state geologic maps, mostly south (left) of Toulon Peak.
A Google Earth view of the area, as seen from the same location I stood at when taking my photos. The white section shows better in this view.
Here, I've cropped the Google Earth view to more closely match my photos. We can see more detail in this view, because Google Earth isn't plagued by inversion haze and smog.
The geology is still somewhat obscure, but it is a little clearer (especially upon examination of Google Earth) that the units in the foreground are probably the same as the units back into the middle ground, where a dark brown volcanic layer overlies a white unit, which overlies an orange-brown unit, which in turns overlies the lower white section. In some lighting, and on Google Earth, at least two dark bands show up -- these may be basaltic sills (similar to some down in the Gilbert mining district near Tonopah), or they may be vitrophyres within young ash-flow tuffs.
The volcanic section described above, as seen in Google Earth.
Of course, this is mostly speculation until field checked!

As it turns out, this is the location of the Ragged Top caldera, about which I could find very little online, but which I was just clued to by a commenter who mapped in the area in 1987. I'm listing a few references about the area below. What I found was that the caldera is about 12 million years old (Masterson, 1981). The same source lists a 23 Ma age date for an obsidian nodule on the west side of the range, indicating that some older volcanic rocks (in the 17 to 34 Ma range) occur in the area. Age dating may be complicated by hydrothermal alteration in the region.

It appears from the county map and Google Earth that the caldera is located mostly south of my photos, beginning just south (left) of the white rocks described above, in what is mapped as Twt (welded tuff) on the county map. The caldera, however, could be located in the younger Tr around Toulon Peak.

A Few References:
Harpel, G., 1980, Geology and tungsten mineralization of a portion of the Ragged Top Mining District, Pershing County, Nevada [citation only]: University of Nevada, Reno, M.S. thesis.

Johnson, M.G., 1977, Geology and mineral deposits of Pershing County, Nevada [front pages only]: NBMG Bull. 89.

Masterson, W.D., IV, 1981, Epithermal gold mineralization in the Velvet District, Pershing County, Nevada [entire pdf]: University of Texas at Austin, M.A. thesis.

Thole, J.T., 1991, Ragged Top Caldera; geology and geochemistry of a Miocene volcanic center, Pershing County, Nevada [citation only]: Washington State University, M.S. thesis.

Thursday, October 25, 2012

Wave Clouds

Some classic wave clouds, or lenticulars, from the front that went through a couple days ago.
The wave clouds in this photo indicate that winds aloft are blowing swiftly to the east (left). Note the iridescence in the brightest and thinnest parts of the clouds in the upper left. Also note the low rotor clouds below the wave, dark and scud-like, especially the one on the right, which may show hints of the rotation typical of these clouds, and which shows a classic ragged form. When conditions are right—when the wave is strong and the rotor is hitting the ground—winds on the ground will move opposite to the winds aloft, typically back to the west in Nevada (right in the photo). These "backwards" ground winds can be strong, erratic, and turbulent, and can cause unexpected damage to street signs and the like. In Nevada, when the rotor is blowing, it's a good idea to keep an eye out for flying sheet metal.

Lenticulars—which are sometimes described as unique, or even rare—are fairly common in Nevada, in the lee of the Sierra Nevada and the many mountain ranges of the Basin and Range.

Understanding lenticular clouds and mountains waves

Lenticular cloud with irisation (cloud iridescence) at Atmospheric Optics

Lenticular clouds at APOD


Photo taken 23Oct2012, Sparks, NV, from the Sheels parking lot.

Thursday, January 19, 2012

The Geographic Center

While returning from a recent recon trip out in the middle of nowhere, driving back to Highway 50 on another endless Nevada dirt road — in this case the Monitor Valley Road, AKA the Old Belmont or Belmont Road — MOH and I came across this sign marking the approximate location of the Geographic Center of Nevada.
I say approximate because several different lat-lon locations can be found here and there on the web, with two USGS locations being about 0.75 to 1.5 miles northeast of the sign.
The sign is at the junction of the Monitor Valley Road and a side road going east into Wallace Canyon in the Monitor Range.
Points on Google Earth: Geographic Center (the sign), USGS 1 (located in 1962, and USGS 2 (located in 2003); click to enlarge.

The Monitor Valley or Belmont Road cuts northeastward across the Google Earth view, with the dirt road to Wallace Canyon heading east (right) from the point marking the location of Geographic Center of Nevada sign. Highway 50 is off in the distance to the north, cutting east-west beyond low hills of the northern Monitor and Toquima Ranges.

USGS 1: the 1962 USGS point for the center of Nevada is at N39° 19' 11.7" and W116° 38' 13.3".

USGS 2: the 2003 USGS point for the center of Nevada is at N39° 19' 48.0" and W116° 37' 56.0".

The sign on the side of the Monitor Valley or Belmont Road is at N39° 18' 44.5" and W116° 38' 52.9".

The two USGS points are marked on the ground with rebar and a notice, and a point about half way in between is marked with orange cones, as shown here and here. To arrive at the site, you can drive Highway 50 east from Austin, NV, for about 26 miles, until you come to a sign for "Belmont Road." Turn right on that wide dirt road, and go south. About 14 miles of driving will bring you to the sign and the fairly main side road to Wallace Canyon. A half mile before that, a smaller dirt road cuts east toward the Monitor Range; that road will bring you closer to the actual geographic center, with the 1962 location being about half a mile east of the main road and about 500 feet north of the side road. The 2003 location is about 3900 feet northeast of that.

It was quite cold while MOH and I were there — we thought it might have been 10°F or lower about an hour earlier — and the sun was going down. We didn't try to find the actual center of Nevada; we instead took pictures of each other standing in front of the sign and called it good enough.
Geographic center of Nevada on Google Earth; click to enlarge. All three points show up as one at this scale.
After getting back in the truck, we rolled north, making it to Highway 50 just as the sun was setting.

Read More:
Nevada's Geographic Center at Backyard Traveler by Rich Moreno

Journey to Nevada's Center at Nevada Landmarks

The Geographic Center of Nevada at CmdrMark.com

Tuesday, November 15, 2011

A Wintry Trip North

Over the weekend, thinking that it wasn't really wintry enough already, we took off to the north...
...eventually heading directly into the fast-moving storm that was just clipping the northeast part of the state, not leaving a lot of snow in it's wake, but blowing like crazy.
Light and dark patches northeast of Highway 93: the storm moves across Clover Valley south of Wells, Nevada.
Sunlight comes through light snow showers on the west side of Spruce Mountain Ridge, a narrow basin-and-range ridge east of the East Humboldt Range.
Still south of Wells, somewhwere near the turnoff to Ruby Mountain Brewery, we drove by a small herd of elk grazing on the other side of the right-of-way fence.
Over the last couple years, NDOT has installed a couple wildlife overpasses between Wells and Jackpot. This is the one at HD Summit (MSRMaps location).

At this point, Highway 93 is still inside the Great Basin, within the watershed of miles-long Thousand Springs Creek, which eventually leaves Nevada for Utah and the Great Salt Lake Desert northeast of the small town of Montello.

About 10 miles north of HD Summit, Highway 93 enters the drainage of the Snake River after crossing an unimpressive drainage divide atop a small set of east-west hills, south of the "93" on the MSRMaps image below, and here looking north on Google Street View. I couldn't quite locate this major drainage divide while we were driving south, but instead probably thought it was in the small hills just north of the "93" on the MSRMaps view.
MSRMaps image courtesy of the USGS. One mile is shown by the black section line running east-west between the red, north-south township border to the left of Highway 93 and the black, north-south line to the right of Highway 93.

At this seemingly insignificant drainage divide, the internally draining Great Basin ends. The Basin and Range Province, which overlaps the smaller Great Basin, continues a ways to the north, merging gradually with the plateau country on the southern edge of the Snake River Plain.
Scenes like this always make me want to drive off road, but we didn't. Instead, the pavement continued north, and so did we...

Wednesday, March 16, 2011

Where it All Began, Part II

Continued from Where It All Began, which ended:
That, anyway, is one way to make a geologist, although I’m sure there are also other ways. One thing that geologists are sure of is the existence and viability of other ways — this idea is technically referred to as “multiple working hypotheses,” and it’s sometimes stated as, “if ten geologists mapped the same area, you’d end up with at least ten different maps."


Half Dome

The western U.S. — from the subduction-bounded and transform-faulted Pacific coast to the uplifted and locally hog-backed eastern border of the Rocky Mountains — is a tectonically active region. This activity is revealed in the Mesozoic intrusion, cooling, and crystallization of the great Sierra Nevada batholith (65 to 210 million years ago), in the Holocene to Miocene faulting of the San Andreas fault system (0 to 35 million years ago), and in the Pleistocene to Pliocene uplift of the Sierra Nevada Mountains as a block (1 to 3 million years ago especially, with some uplift still continuing). The west coast has been an active continental margin for a long time — back, way back into the early Paleozoic and perhaps beyond into the Precambrian. I was born and grew up in this active geologic area.

When I was almost eleven, my family and I left the west coast semi-permanently and moved to the mostly inactive, even passive, continental margin of the east coast. The east coast — as geologists learned when the theories of continental drift and plate tectonics came together in the 60s and 70s — has been, for the most part, tectonically inactive since the Paleozoic era, with a smattering of activity in the Mesozoic, and even less activity since then (though not entirely zero). It took geologists years to figure out how plate tectonic theory could apply to such a long dead area (geologic history here and here). It’s now known to be a passive margin.

I never felt truly at home there: the mountains were not mountains, the coastlines were not coastlines — unless we drove all the way to Maine — and no huge masses of granite stuck out anywhere to provide a feeling of solidity or to remind me of home. Eventually, I found pieces of home in the granite quarry of Mt. Airy, North Carolina, and in unakite outcrops hidden somewhere amongst the creeping, overgrown underbrush of the Blue Ridge Mountains (unakite = altered granite). I was also rather partial to the kyanite of Willis Mountain, and enjoyed looking for twinned staurolite crystals. These, and other rocks and minerals, are reminders of the the Appalachians' earlier, more tectonically active heydey, but I was not introduced to them until relatively late in my east coast stage of life. I was a geologic orphan.



When I returned to the west in 1975, I bypassed all known modes of geologic transportation — continental drift, wind and river transport, landslide, fault creep, thrust faulting, and valley rifting — and, instead, traveled across the continent in my ‘72 Opel, with everything I owned fitting inside except my full length mirror. I deposited myself like a graded bed on the east side of the Sierra Nevada and once again drew renewed strength from its high prominences and great length.

I was now in the province of the intermountain west, an area of complex and still unfolding geology, an area of tension and extension that formed, and still form, the quite obvious elevation extremes of basins and ranges that reach from the Sierra Nevada to the Wasatch Range. (Reno, Nevada, and Salt Lake City, Utah, are moving away from each other at a rate of about ½ inch per year.) The topography is simple and seemingly endless: up and down, up and down, up and down: corrugated or not corrugated, depending on how you like to characterize things. Dutton (1886) described our western ranges as looking like "an army of caterpillars crawling northward" — ranges of the Basin and Range province crawl northwestward across Arizona toward Nevada, and crawl northeastward across Nevada toward the Snake River plain.

I was also in a region shaped by tectonic processes more subtle than those that created the definitive horst-graben topography of the Basin and Range, processes that were active long before the land now known as California even existed — before magma arose from the melting zone deep beneath the west coast’s subducting plate to form a batholith that is intermittently present from at least Mexico to the northern reaches of Canada, and even into Alaska. First, sedimentary layers and volcanic flows had accumulated in former oceans and basins; then, as part of repeated accretionary events beginning in the Paleozoic, western siliceous cherts, siltstones, and pillows had been pushed over eastern carbonates along a thrust fault hundreds of miles long: the Roberts Mountains Thrust.
Carlin Unconformity

I was in a land of slammed-together accreted terranes, of compression and obduction, of province-wide, low-angle reverse faults. I was also in a land of thin and hot crust, a land whose huge-caldera volcanism and volcanic pyrotechnics in the Tertiary could easily make the eruptions of Mt. St. Helens, Mt. Mazama, Mt. Pelé, and Krakatoa look puny. In short, I was in the Great Basin — a region that overlaps with the Basin and Range province but is by no means identical to it — where all rivers, creeks, and dry washes flow inward into inland lakes or dry playas, and not outward to the sea.

I was, at long last, in Nevada.

Nevada, the silver state, has long been known for its bonanza gold and silver, and has more recently been known for its no-seeum, low-grade, disseminated gold (not so low-grade anymore, but that's another story). After moving here, I expanded my horizons: Carlin-type gold deposits in 1976, eastern Nevada in 1980, and the Mojave desert in 1981. Because of my own expansion, I gradually came to know that I was in the land of detachment faulting: a land where extreme extension and tectonic denudation have exposed the tortoise-shell–shaped cores of metamorphic core complexes that cut through the North American Cordillera in a band running from north-central Mexico into British Columbia. Detachment faults — large, low-angle normal faults of regional extent — separate the ductilely deformed cores from the broken and faulted rock formations lying tilted and detached above.

I moved here in 1975 and have been extended, disseminated, and detached ever since.

Some References:
Cathro, R.J., 2010, Nevada-type gold deposits (Part 4): CIM Magazine, v. 5, no. 7, p. 88-90.

Dutton, C.E., 1886, Mount Taylor and the Zuni Plateau, p. 105-198 in Volume III of Report of the Secretary of the Interior; being part of the Message and Documents Communicated to the Two Houses of Congress at the Beginning of the First Session of the Forty Ninth Congress in Five Volumes: Washington, Government Printing Office.

Gilbert, G.K., 1890, Lake Bonneville: U.S. Geological Survey Monograph 1, 438 pp.

McPhee, John, 1981, Basin and Range: Farrar; Straus & Giroux, New York.

Troxel, B.W., and Wright, L.A., 1987, Tertiary extensional features, Death Valley region, eastern California: Geological Society of America Centennial Field Guide-Cordilleran Section, 1987, p. 123-132.

Monday, February 14, 2011

Happy Valentine's Day from the central Basin and Range

Thanks to a combination of faults and linears along 1) the Walker Lane, 2) some ENE-trending structures in northwest Nevada that parallel the main trend of the Snake River Plain, 3) the Northern Nevada Rift (the north-central, NNE-trending magnetic linear on this map), 4) some northeasterly features in north-central Nevada that trend toward the Snake River Plain, 5) the Wasatch Fault, and 6) other Basin and Range structures near Las Vegas (going clockwise from the west), I've managed to outline a large heart-shaped feature in the central part of the Basin and Range.
That's what I see every time I look at the Nevada-Utah part of the Basin and Range on Google Earth. (Enlarge both images, then click back and forth to see where I've drawn the lines.)

Happy Valentine's Day!

Friday, January 21, 2011

Friday Fault Photo: Fairview Peak, NV, Fault Line

I captured this Google Earth image of the east face of Fairview Peak, with north to the right and the scale bar on the left showing 4112 feet, and then set about drawing the fault scarp created by the 1954 Fairview Peak–Dixie Valley earthquake. The location of the fault line (in magenta) is somewhat approximate in places, and I've left gaps where the trace is unclear. Identifying the fault line on Google Earth is complicated by the fact that two or more scarps occur in some areas. The line, as drawn, has not been field checked.
An example of the scarp, as seen in an oblique Google Earth image.

The scarp angles across the hill above the loop road near the center, and above the linear road to the left.

Images below are broken into two halves and shown with north to the right (first two images), and then with north up (second two images). These images enlarge fairly well, with the horizontal (north=right) images being best in enlargement and the vertical images (north=up) being best on the blog.
North half of the Fairview Peak strip with north to the right.
South half of the Fairview Peak strip with north to the right.
Two images: north and south half of the Fairview Peak strip with north up.

Can't really say why I did this. I was just fascinated by the fact that you can take Google Earth, rotate the eye view to oblique and — especially after a visit to the area (early December) — can easily identify the fault scarp(s) in most places.

Related Posts:
Where in the West - March
Fairview Peak, Nevada
Friday Fault Photos #6