Sunday, April 24, 2016

Selective serpentinization in peridotite (harzburgite), Onion Camp complex, Klamath Mountains, Oregon

Text

Peridotite (harzburgite), Onion Camp complex, Klamath Mountains, Oregon. Colored grains are olivine and orthopyroxene; black areas with white spots are serpentine. XPL  macrophotograph. Imaged area 24 mm by 42 mm. Photo by Dan Snyder.

Text

Peridotite (harzburgite), Onion Camp complex, Klamath Mountains, Grains with vivid interference colors are olivine; yellowish gray grains at bootom center and top left are orthopyroxene; dark gray areas with light gray and white polygons are serpentine. XPL  Imaged area 1.3 mm by 2 mm. Photo by Dan Snyder.

Text


Peridotite (harzburgite), Onion Camp complex, Klamath Mountains, Oregon. Colored grains are olivine; gray grain at center is orthopyroxene; dark gray areas with light gray and white polygons are serpentine. XPL  Imaged area  0.5 mm by 0.8 mm. Photo by Dan Snyder.

Sunday, August 4, 2013

Horoman peridotite (lherzolite) - serpentinization

For a general description of the Horoman peridotite body, see the post of July 2, 2013: "Horoman Peridotite ... - olivine microfabfric".

Although the Horoman ultramafic complex is usually described as an extremely fresh peridotite body with very little serpentinization, there were several small occurrences of serpentinized olivine in part of the thin section from which this image was made. The edge of this specimen was apparently adjacent to or near a fracture, as indicated by the jagged contour. Thus, it was more exposed to metasomatising fluids than other parts of the thin section.

Click on image to enlarge.          Photo © Daniel R. Snyder
This image depicts a large, partially-serpentinized olivine grain. The relict olivine shows orange interference colors, grading to red and violet due to deformation. A little yellow-green is visible on the right. The remainder of the grain has been altered to serpentine, here showing olive green interference colors. Grains in various shades of gray are pyroxene. A small symplectite nodule is at lower right. Horoman peridotite body, Hokkaido, Japan. XPL Digital mosaic. Imaged area 5.7 mm by 11.5 mm.

For an image of the full thin section, see post of July 11, 2013: "Horoman peridotite (lherzolite) - full thin section".



REFERENCES

Niida,  K., (1975), Textures and Olivine Fabrics of the Horoman Ultramafic Rocks, Japan; Jour. Japan. Assoc. Min. Petr. Econ, Geol.; 70, p. 265-285. (In English with Japanese abstract)

Niida, K., (1984), Petrology of the Horoman Ultramafic Rocks in the Hidaka Metamorphic Belt, Hokkaido, Japan, Journal of the Faculty of Science, Hokkaido University. Series 4, Geology and mineralogy, 21(2):197-250. (In English)

Thursday, July 11, 2013

Horoman peridotite (lherzolite) - full thin section

 For a general description of the Horoman peridotite body, see the post of July 2, 2013: "Horoman Peridotite ... - olivine microfabfric".

This image shows a full thin section of Horoman peridotite. The 29-mm long dimension is actually shorter than a typical thin section, which is usually between 38 mm and 42 mm. The coarse texture of the peridotite is evident in this image. For example, the large olivine grain just left of center is about 10 mm in length. Most of the olivine grains are strained, as indicated by their banded coloration (deformation banding). The pyroxene grains also show deformation banding, but much less obviously than the olivine.

FULL THIN SECTION
Click on image to enlarge.          Photo © Daniel R. Snyder
Horoman peridotite (lherzolite), Hokkaido, Japan. Full thin section, XPL macrophotograph. Brightly-colored grains are olivine; gray grains are pyroxenes. Smaller, rounded brown grains are symplectite nodules. Imaged area approximately 21 mm by 29 mm.



REFERENCES

Niida,  K., (1975), Textures and Olivine Fabrics of the Horoman Ultramafic Rocks, Japan; Jour. Japan. Assoc. Min. Petr. Econ, Geol.; 70, p. 265-285. (In English with Japanese abstract)

Niida, K., (1984), Petrology of the Horoman Ultramafic Rocks in the Hidaka Metamorphic Belt, Hokkaido, Japan, Journal of the Faculty of Science, Hokkaido University. Series 4, Geology and mineralogy, 21(2):197-250. (In English)

Niida, K.,  and Takazawa, E. (2007), Origin of Layering observed in the Horoman Peridotite Complex, Japan, Jour. Geol Soc. Japan; 113:Supplement, p. 167-184. (In Japanese except for some of the figure labels)

Sawaguchi, T., (2004), Deformation history and exhumation process of the Horoman Peridotite Complex, Hokkaido, Japan. Tectonophysics, 379, p. 109-126. (In English)

Takahashi, N., (1991), Origin of three peridotite suites from the Horoman peridotite complex, Hokkaido, Japan; Melting, melt segregation, and solidification processes in the upper mantle; Jour. Min.Petr. Econ. Geol.,  86: p. 199-215. (In English) 


Wednesday, July 10, 2013

Horoman peridotite - compositional layering

For a general description of the Horoman peridotite body, see the post of July 2, 2013: "Horoman Peridotite ... - olivine microfabfric".

As shown on the map by Niida (1974) the rocks of the Horoman peridotite body are mainly plagioclase lherzolite, lherzolite, and dunite, as well as small amounts of gabbro and pyroxenite. Interlayered plagioclase lherzolite and dunite account for almost all of the bedrock surface in the northern three-quarters of the body, from south of Mt. Apoi to north of Mt. Pinneshiri, a distance of about seven kilometers. Thus, these two rock types dominate the lithology of the body. The remaining southern one-quarter of the surface is mainly interlayered lherzolite and dunite. You can download Prof. Niida's 1984 paper, including the dramatic geological map, from: http://eprints.lib.hokudai.ac.jp/dspace/handle/2115/36729  This will take you to the abstract of Dr. Niida's paper in HUSCAP, Hokkaido University Scholarly and Academic Papers. To download the entire PDF (11.4 mb), click  the "View/Open" box. The map is on the fourth page (page 200).



Compositional layering in the upper zone of the Horoman peridotite complex.
This is the best picture of layering in the Horoman complex that I have seen. If
you have a better one, send it to me and I'll post it. If you happen to be the man
in the photograph, please let me know so I can identify you.
Photo: geomantleh1 via lherzharz1.exblog.jp


text


University students on a field trip in the Horoman peridotite complex. Layering is clearly
visible in the fallen rock at right. Photo: geomantleh1 via lherzharz1.exblog.jp



text

REFERENCES

Niida, K., (1974), Structure of the Horoman Massif of the Hidaka Metamorphic Belt, Jour. Geol Soc. Japan; 80:1, p. 31-44. (In English)

Niida, K., (1984), Petrology of the Horoman Ultramafic Rocks in the Hidaka Metamorphic Belt, Hokkaido, Japan, Journal of the Faculty of Science, Hokkaido University. Series 4, Geology and mineralogy, 21(2):197-250. (In English)

Niida, K.,  and Takazawa, E. (2007), Origin of Layering observed in the Horoman Peridotite Complex, Japan, Jour. Geol Soc. Japan; 113:Supplement, p. 167-184. (In Japanese except for some of the figure labels)

Takahashi, N., (1991), Origin of three peridotite suites from the Horoman peridotite complex, Hokkaido, Japan; Melting, melt segregation, and solidification processes in the upper mantle; Jour. Min.Petr. Econ. Geol.,  86: p. 199-215. (In English)





Tuesday, July 9, 2013

Horoman peridotite (lherzolite), Hokkaido, Japan - symplectite pseudomorphs after garnet.

For a general description of the Horoman peridotite body, see the post of July 2, 2013: "Horoman Peridotite ... - olivine microfabfric".

Symplectite nodules (intergrowths of fine-grained minerals - in this example, spinel and clinopyroxene) are abundant in some layers of the Horoman peridotite complex. Because of their mineral assemblages and bulk chemical composition, these nodules are thought to be pseudomorphs after pyrope garnet.

Click on image to enlarge.          Photo © Daniel R. Snyder
Three large symplectite nodules in the Horoman peridotite body.  Brightly-colored
grains are olivine; gray grains are pyroxenes. XPL. Imaged area 2.7 mm by 4 mm.



Below: Higher-magnification image (10x objective) of a small symplectite nodule.

Click on image to enlarge.          Photo © Daniel R. Snyder
XPL. Imaged area 0.5 mm by 0.8 mm.


text

REFERENCES

Morishita, T., 2000, Three-dimensional Microstructure of Symplectite Minerals in the Horoman Peridotite: A preliminary Analysis; Jour. Geol Soc. Japan; 106:11, p. 800-811. (In English with Japanese abstract)

Morishita, T., and Arai, S., (2003), Evolution of spinel–pyroxene symplectite in spinel–lherzolites from the Horoman Complex, Japan; Contrib. Mineral. Petrol; 144, p. 509-22. (In English)

Odashima, N., Morishita, T., Ozawa, k., Nagahara, H., Tsuchiyama, A., and Nagashima, R., (2008), Formation and deformation mechanisms of pyroxene-spinel in an ascending mantle, the Horoman peridotite complex, Japan: an EBSD (electron backscatter diffraction) study; Jour. Mineral. Petrol. Sci., 103, p. 1-15. (In English)

Tuesday, July 2, 2013

Horoman peridotite (lherzolite), Hokkaido, Japan - olivine microfabric

The Horoman peridotite complex is located in south-central Hokkaido, about 180 kilometers southeast of Sapporo, near the small coastal town of Samani (See post of April 29, 2011: "The Town that Loves Peridotites"). The layered, gently warped peridotite body crops out over an area of approximately 8 km by 10 km, with a thickness of about 3.7 km (Sawaguchi, 2004). It is the largest ultramafic body in Japan and, because it is only weakly serpentinized, it is one of the largest relatively fresh peridotite bodies exposed on land anywhere in the world.

The Horoman complex is situated at the southern extremity of the 140-km-long Hidaka metamorphic belt, following the Hidaka mountain chain, which extends southward from the Ishikari mountain massif at the center of the island of Hokkaido. Although there are six other major ultramafic complexes lying along the Hidaka metamorphic belt, they are all much smaller than the Horoman complex. Since the 1970's, the geology of the Horoman complex has been studied intensively, and there is now a substantial body of literature on the subject.

The highest peaks within the Horoman exposure area are M. Pinneshiri, at 968 meters, and Mt. Apoi (Apoi-dake), at 811 meters. The topography is rugged, and from Mt. Apoi the land surface drops to sea level in less than 3 kilometers, an average slope of 15 degrees. However, as is evident in the photograph below, slopes are much steeper toward the top of the mountain ridge.

Looking from Mt. Apoi toward Mt. Pinneshiri, along the ridge-line through the Horoman peridotite complex.
Photo by geomantleh1           via www.lherzharz1.exblog.jp/


text

Geology students from five Japanese universities at a dunite outcop along the Horoman River.
Photo by geomantleh1           via www.lherzharz1.exblog.jp/

The complex is in fault contact with a gabbro layer on the west, which separates it from unmetamorphosed sedimentary rocks. On the north, east, and south, the complex is in fault contact with schists, gneisses, and hornfels. The Horoman peridotite was initially formed in the upper mantle in the late Proterozoic, about 830 Ma. It was then exhumed to the plagioclase stability field, and later subducted to the garnet stability field in the upper mantle. A second generation of partial melting took place in the Cretaceous (~80 Ma), when a collision of two arc-trench systems created the Hidaka metamorphic belt. The body finally ascended upward again in the Miocene (~23 Ma), from the mantle to the crust, where it re-equilibrated in the spinel stability field.

At least three characteristics of the Horoman complex are somewhat unusual. First, there is  well-developed compositional layering throughout the body (Niida, 1974; Niida and Takazawa, 2007); Second, abundant spinel-plagioclase and spinel-pyroxene symplectite nodules occur in several of the peridotite layers (Morishita, 2000; Morishita and Arai, 2003); and third, there are three commingling types of olivine fabric in the peridotite (Niida, 1975). This post deals with the last-named characteristic.

The three types of olivine fabric identified by Niida (1975) are:
1. Primary olivine in large grains, often sheared or strained (image directly below).
2. Polygonal olivine grains, recrystallized (second image below).
3. Fine aggregates resulting from cataclasis and mylonitization (third image below).

Click on image to enlarge.          Photo © Daniel R. Snyder
Large primary olivine grain, recrystallized and showing deformation banding.
XPL digital mosaic. Imaged area approximately 4.8 mm by 5.5 mm.


Click on image to enlarge.          Photo © Daniel R. Snyder
"Polygonal" (subhedral) olivine inclusion in orthopyroxene. XPL.
Imaged area 1.3 mm by 1.7 mm.

t
Click on image to enlarge.          Photo © Daniel R. Snyder
Fine olivine aggregate created by cataclasis and mylonization. XPL.
Imaged area 2.7 mm by 4 mm.


REFERENCES

Morishita, T., 2000, Three-dimensional Microstructure of Symplectite Minerals in the Horoman Peridotite: A preliminary Analysis; Jour. Geol Soc. Japan; 106:11, p. 800-811. (In English with Japanese abstract)

Morishita, T., and Arai, S., (2003), Evolution of spinel–pyroxene symplectite in spinel–lherzolites from the Horoman Complex, Japan; Contrib. Mineral. Petrol; 144, p. 509-22. (In English)

Niida, K., (1974), Structure of the Horoman Massif of the Hidaka Metamorphic Belt, Jour. Geol Soc. Japan; 80:1, p. 31-44. (In English)

Niida,  K., (1975), Textures and Olivine Fabrics of the Horoman Ultramafic Rocks, Japan; Jour. Japan. Assoc. Min. Petr. Econ, Geol.; 70, p. 265-285. (In English with Japanese abstract)

Niida, K.,  and Takazawa, E. (2007), Origin of Layering observed in the Horoman Peridotite Complex, Japan, Jour. Geol Soc. Japan; 113:Supplement, p. 167-184. (In Japanese except for some of the figure labels)

Takahashi, N., (1991), Origin of three peridotite suites from the Horoman peridotite complex, Hokkaido, Japan; Melting, melt segregation, and solidification processes in the upper mantle; Jour. Min.Petr. Econ. Geol.,  86: p. 199-215. (In English)

Sawaguchi, T., (2004), Deformation history and exhumation process of the Horoman Peridotite Complex, Hokkaido, Japan. Tectonophysics, 379, p. 109-126. (In English)

Monday, December 17, 2012

Los Pinos peridotite - full thin section

Click on image to enlarge.      Specimen: Michael Davis; Photo: Dan Snyder
Rounded, partially-resorbed olivine grains and interstitial pyroxene in peridotite of the  Los Pinos pluton, San Diego County, California. Macrophotograph in XPL. Imaged area 22mm by 42mm. See post of April 9, 2012 for description of rock body and higher-magnification photomicrographs.

Many thanks to Prof. Michael Davis, of the University of California at Riverside, for the specimen.

Saturday, December 15, 2012

Montserate Mountain peridotite - full thin section.

Click on image to enlarge.          Sample: Michael Davis; Photo: Dan Snyder
Full thin section of igneous peridotite, Montserate Mountain, San Diego County, California. Macrophotograph in XPL. Imaged area 22mm by 38mm. See post of July 15, 2012 for detailed description of rock body and higher-magnification photomicrographs.

Many thanks to Prof. Michael Davis of the University of California at Riverside for the specimen. 

Saturday, July 21, 2012

Cumulate olivine and interstitial pyroxene in igneous peridotite

Click on image to enlarge.          Specimen: Michael Davis          Photo: Dan Snyder
Olivine (left and right) with interstitial pyroxene (center). Note that opaque secondary mineral(s) occupying fractures in olivine do not extend through pyroxene. Montserate Mountain, San Diego County, California. XPL. Imaged area 1.3 mm x 2 mm.

Click on image to enlarge.
 Plane-polarized light image of same area shown above. Fractures appear to end at the olivine/pyroxene border. In the center of the image, the pyroxene is colored by parallel streaks of a red material, probably iddingsite, a late magmatic alteration product of olivine.

Click on image to enlarge.
Higher-magnification (10X objective) view of center of previous image. PPL.  Imaged area 0.54 mm by 0.8 mm.

Click on image to enlarge.
Higher-magnification (40X objective) view of center of previous image. PPL. Imaged area 0.13 mm by 0.2 mm.

Click on image to enlarge.
Optical Scan of remnants of hand specimen after removing material for billet for thin section. Imaged area 54 mm by 51 mm.


Click on image to enlarge.
Optical scan of outside of hand specimen minus billet material. Red material appears to be iddingsite. Imaged area 57 mm by 51 mm.



Many thanks to Prof. Michael Davis of the University of California at Riverside for the specimen.

Tuesday, April 10, 2012

Serpentinized Trinity peridotite

Click on image to enlarge.   Specimen: Michael Davis   Image: Dan Snyder
Optical scan of sawed surface of a small hand specimen of serpentinized Trinity peridotite. A 6-mm-thick slice of this specimen crumbled easily with the fingers, and thus the specimen was too fragile to use for a thin section. Olivine has largely been altered to yellowish-gray chrysotile serpentine, which also occupies some of the smaller fractures. Chrysotile has a waxy luster which, although not apparent in this image, shows up well on the hand specimen.  Dark linear features are earlier-formed fracture fillings of the antigorite or lizardite varieties of serpentine. Dark, rounded masses are relict or pseudomorphosed pyroxene. According to Quick (1981)*, the Trinity peridotite is highly serpentinized, except where glaciation has exposed large outcrops of relatively unserpentinized peridotite.  Eastern Klamath Mountains, northern California.  Imaged area 4.75 cm by 5.54 cm.

Excerpt from USGS Open File of02-490 s1

Hess (1989)* states the areal extent of the Trinity peridotite incorrectly as 3,700 sq. km. He cites Quick (1981) as the source. Quick, however does not give a figure for the areal extent of the peridotite outcrop. He states only that "Contiguous outcrops of ultramafic rocks occur over an area about 50 km wide and 75 km long." (Quick, 1981)**. It appears that Hess multiplied 50 by 75 and got 3,750, then dropped the 50 to avoid the impression of spurious accuracy. A glance at the map shows that this figure doesn't account for the various plutons lying within the contiguous area of peridotite, and that the actual areal extent of the peridotite itself is more like 1,500 sq. km.  I did a point count on graph paper, which resulted in an area of 1,237 sq. km.



* Hess, Paul C., 1989, Origins of Igneous Rocks, p. 80.

**Quick, James E., 1981. Petrology and petrogenesis of the Trinity Peridotite, an upper mantle diapir in the Eastern Klamath Mountains, northern California. Journal of Geophysical Research, v. 86, No. B12, p. 11,838.


Many thanks to Professor Michael Davis, of the University of California at Riverside, for the specimen.




The fibrous structure of chrysotile, the asbestiform variety of serpentine, can be seen clearly a thin chip of the mineral at 100x (10x objective) in a microscope. The dark strips at the top and bottom of the chip are remnants of the fracture wall to which it was anchored, and the dark horizontal strip in the center may be a cross-section of an antigorite vein occupying the center of the fracture. Plane polarized light. Length of chip ~0.5 mm.


Monday, April 9, 2012

Rounded olivine grains in peridotite of the Los Pinos pluton.

Click on image to enlarge.   Sample: Michael Davis   Image: Dan Snyder
   Rounded olivine grains surrounded by amphibole. The Los Pinos pluton is one of several gabbroic plutons intruding the Peninsular Ranges batholith in the southernmost part of California. "Olivine and amphibole...are the dominant phases and form up to 88% of the rock." (Walawender, 1976)*. Walawender describes the petrogenesis of the peridotite as an example of Bowen's classic reaction series. Olivine was first mineral to solidify from melt, along with minor plagioclase (not shown in this image). Outer parts of olivine grains were resorbed by melt as pyroxene (not shown) solidified. Amphibole solidfied last and occupied interstices between other minerals. Red material in large grain at center is iddingsite, occupying part of an irregular fracture.  Los Pinos Mountain, Peninsular ranges, San Diego County, California. XPL. Imaged area 2.7mm by 4mm.

See post of December 17, 2012 for a macrophotograph of the entire thin section.

Many thanks to Professor Michael Davis, of the University of California at Riverside, for the specimen.

Click on image to enlarge.   Sample: Michael Davis   Image: Dan Snyder
   PPL image of same area as above. Dark smudges in amphibole are made up of "aligned, rod-like, opaque minerals" (Walawender, 1976)*.


* Walawender, M. J, 1976. Petrology and Emplacement of the Los Pinos Pluton, southern California. Canadian Journal of Earth Sciences, v. 13, pp. 1288-1300.

Friday, June 10, 2011

Pyroxene grains and pseudomorphs in Josephine serpentinized peridotite.

Click on image to enlarge.          Photo © Daniel R. Snyder
In this specimen,  A few very small remnants of olivine (bright-colored grains) can be seen around the image, but almost all of the olivine has been altered to serpentine. I collected this specimen on the border between the Josephine peridotite and the Onion Camp complex of Yule et al. (2006)*. I decided to call it Josephine peridotite for two reasons: 1. There is little evidence of shearing, and 2. Many large pyroxene grains still persist, and large serpentine pseudomorphs after pyroxene are distributed throughout the specimen. The large gray pyroxene grain at the left side of the image above still appears to be mostly pyroxene, while the broken grain in the center has been altered to bastite-texture serpentine. Hourglass-texture serpentine, probably an alteration product of olivine, occupies the rest of the image. Klamath Mountains, Josephine County, southwest Oregon, XPL. Imaged area 2.7 mm x 4 mm.

In the image below, the white spots on the large hand specimen are reflections from the surfaces of platy pseudomorphs after pyroxene; gray-green grains are pyroxene. Note that there appears to be more remnant pyroxene than pseudomorphosed pyroxene. The brown mesostatis is serpentine. The surface of the small hand specimen has been rough polished, showing dark grains of pyroxene. Lighter gray areas are serpentinized pyroxene grains (pseudomorphs). Scale is in centimeters.

Click on image to enlarge.          Photo © Daniel R. Snyder

*Yule, J. D., Saleeby, J. B., and Barnes, C. G., 2006, A rift-edge facies of the late Jurassic Rogue-Chetco arc and Josephine ophiolite, Klamath Mountains, Oregon, in Snoke, A. W. and Barnes, C.G., eds., Geological studies in the Klamath Mountain province, Californa and Oregon: A volume in honor of William P. Irwin: Geological Society of America Special Paper 410, p. 53-76.

Monday, June 6, 2011

Peridotite in advanced stage of serpentinization - Onion Camp complex, Oregon

Click on image to enlarge.         Photo © Daniel R. Snyder
The serpentinized peridotite of the Onion camp complex, which is in contact with the variably serpentinized Josephine peridotite, is described by Yule et al. (2006)* as "highly serpentinized and sheared dunite, harzburgite, and sparse websterite....".  In the center of the image above, a pyroxene grain has been pseudomorphosed, probably by an amphibole mineral, with the chain structure preserved as parallel strands of the replacement mineral. A large serpentine pseudomorph after olivine occupies the center of the left side of the image, and a less obvious pseudomorph is at the upper right. Elsewhere in the image, serpentine is ubiquitous. Klamath Mountains, Josephine County, southwest Oregon. XPL. Digital mosaic, imaged area 3.6 mm x 6 mm.

Click on image to enlarge.          Photo © Daniel R. Snyder
Hand samples of serpentinized peridotite of the Onion Camp complex. Smaller sample on right has been rough polished on cut surface. Note hematite coating on left sides of both samples. Scale in centimeters.


*Yule, J. D., Saleeby, J. B., and Barnes, C. G., 2006, A rift-edge facies of the late Jurassic Rogue-Chetco arc and Josephine ophiolite, Klamath Mountains, Oregon, in Snoke, A. W. and Barnes, C.G., eds., Geological studies in the Klamath Mountain province, Californa and Oregon: A volume in honor of William P. Irwin: Geological Society of America Special Paper 410, p. 53-76.

Sunday, May 29, 2011

Second alteration cycle - serpentine altering to anthophyllite (Presque Isle peridotite)

Click on image to enlarge.          Photo © Daniel R. Snyder
The grain shown in this image, originally olivine, was altered to serpentine, most of which has been altered in turn to anthophyllite. That is, I thought it was anthophyllite, but then I read Michael Lewan's (1972)* M. S. thesis, in which he reported NO anthophyllite in the three samples of Presque Isle peridotite for which he carried out modal analysis. However, all three samples contained small amounts of chlorite (7.3, 7.1, and 5.4 percent volume. I've never seen chlorite that looks like this, but maybe... If you know, please send me a comment.

Tiny red or orange anthophyllite(?) crystals occupy most of the former olivine grain, except for the two remaining areas of serpentine, gray-green in the XPL image above (lower left and upper right). The image below, also XPL, shows most of the anthophyllite(?) crystals (those aligned from upper left to lower right, or vice versa) at extinction - as extinct as they get. The serpentine areas show more clearly in this view, while the anthophyllite(?) crystals that are "at extinction" have dark outlines of varying thickness.

Click on image to enlarge.          Photo © Daniel R. Snyder
In the PPL image below, the serpentine areas are relatively featureless, while elsewhere the elongated crystals of anthophyllite(?) show distinct outlines. Yellow-orange color in PPL image is due to iron-oxide staining from hematite. Black spots are magnetite. Presque Isle peridotite, Marquette County, northern Michigan. Imaged area 0.5 mm x 0.8 mm.

Click on image to enlarge.          Photo © Daniel R. Snyder

*Lewan, Michael D., 1972, Metasomatism and Weathering of the Presque Isle Serpentinized Peridotite, Marquette, Michigan, unpublished M.S. thesis, Michigan Technological University.

Presque Isle peridotite - full thin section

Click on image to enlarge.          Photo © Daniel R. Snyder
This image shows the texture of the peridotite, in which olivine and pyroxene have been almost entirely pseudomorphed by serpentine, much of which has been replaced in turn by amphiboles. Light-colored areas are carbonate veins. Marquette County, northern Michigan. XPL Macrophotograph. Imaged area 25 mm x 41 mm.

Friday, May 27, 2011

Plagioclase in Yellow Dog peridotite (plagioclase-bearing lherzolite)

Click on image to enlarge.          Photo © Daniel R. Snyder

 Orthopyroxene at upper left (gray), enclosing plagioclase laths; clinopyroxene (magenta) at lower right; olivine at lower left, upper right, and top center. Yellow Dog Plains, Marquette County, northern Michigan. XPL. Imaged area 2.7 mm x 4 mm (2X objective).

This is an unusually rich concentration of plagioclase (center) for the Yellow Dog peridotite. Most of the plagioclase in my samples is scattered as single laths, perhaps two or three small grains in a typical frame this size.  Older geology texts rule out ANY plagioclase if a rock is to be called "peridotite", but the IUGS classification allows up to 10 percent, in which case they are called "plagioclase-bearing ____". However, the consultant's report states that the plagioclase can average 25 to 30 percent "over significant intervals". In order to accommodate this, the consultant uses a maximum of 30% plagioclase for peridotite. The report defines rocks with between 10% and 30% plagioclase as "feldspathic peridotite".  (This report is on the Web. You can get it in PDF format by Googling "Eagle Deposit Geology".) Under the IUGS classification, these rocks would either be olivine gabbro, olivine norite, or olivine gabbronorite.


Friday, May 20, 2011

Weathered dunite, Newdale, NC

Click on image to enlarge          Photo © Daniel R. Snyder
Above: Weathered dunite, with small grain size and indented grain boundaries resulting from cataclasis and subsequent weathering. All of the blue-green olivine grains clustered at left center go extinct simultaneously, indicatng that they are fragments of a single crystal. Note the dense network of dissolution channels and voids (black). Newdale, Yancey County, North Carolina. XPL digital mosaic. Imaged area 1.3 mm x 3.2 mm.

Below: Optical scan of a freshly-sawn surface of weathered Newdale dunite, same sample as above (NOT same scale). Yellow-orange color is imparted by hematite, disseminated in serpentine layers between and within olivine grains. In the high-magnification view, many of the more robust olivine grains can be seen to retain a light yellowish-green color. Dark grains at lower left are chromite. Dark green grains in cluster at upper left may be remnants of a fragmented hornblende grain. 2400-dpi optical scan. Imaged area 11.4 mm x 17 mm.

Click on image to enlarge.          Photo © Daniel R. Snyder

Talc in weathered Newdale dunite

Click on image to enlarge.          Photo © Daniel R. Snyder
In the above XPL image, a large talc clot (center) is surrounded by weathered olivine grains. The solid black grains at top center, bottom center, and bottom left are chromite. Linear patterns in the lower part of the talc suggest that this part of the talc is partially-altered tremolite/actinolite. Below is a PPL image of the same area at the same scale, showing clearly the chromite and the serpentine meshwork in the dunite. Newdale, Yancey County, western North Carolina. Imaged area 2.7 mm x 4 mm.

Click on image to enlarge.          Photo © Daniel R. Snyder

Wednesday, May 18, 2011

Talc in pyroxene in Webster dunite

Click on image to enlarge.          Photo © Daniel R. Snyder
A vein of talc (lower left to upper right) bisects two large grains of orthopyroxene, surrounded by olivine, in dunite. Webster-Addie ultramafic body, Blue Ridge Mountains, Jackson County, western North Carolina. XPL. Imaged area 2.7 mm x 4 mm.

Tuesday, May 17, 2011

Deformation bands in olivine

Click on image to enlarge.          Photo © Daniel R. Snyder
In this image of dunite, several large olivine grains (center, top left, top right, bottom right) show deformation banding. Webster-Addie ultramafic body, Blue Ridge Mountains, Jackson County, Western north Carolina. XPL. Imaged area 2.7 mm x 4 mm.