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Blue Lady Mine (Blue Tourmaline claim; Blue Bell deposit; Blue Bell mine; Exposition claim; Panama claim; San Diego claim; San Diego group), Chihuahua Valley, Warner Springs Mining District, San Diego County, California, USAi
Regional Level Types
Blue Lady Mine (Blue Tourmaline claim; Blue Bell deposit; Blue Bell mine; Exposition claim; Panama claim; San Diego claim; San Diego group)Mine
Chihuahua ValleyValley
Warner Springs Mining DistrictMining District
San Diego CountyCounty
CaliforniaState
USACountry

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PhotosMapsSearch
Latitude & Longitude (WGS84):
33° 23' 31'' North , 116° 37' 56'' West
Latitude & Longitude (decimal):
Type:
Nearest Settlements:
PlacePopulationDistance
Anza3,014 (2011)18.5km
Aguanga1,128 (2011)22.3km
Alpine Village146 (2006)28.2km
Borrego Springs3,429 (2014)28.3km
Julian1,502 (2011)34.9km
Nearest Clubs:
Local clubs are the best way to get access to collecting localities
ClubLocationDistance
Borrego Rock and Gem ClubBorrego Springs, California28km
Shadow Mountain Gem & Mineral SocietyPalm Springs, California49km
Mindat Locality ID:
55868
Long-form identifier:
mindat:1:2:55868:9
GUID (UUID V4):
0


Whoe'er she be, That not impossible She, That shall command my heart and me.
-Crashaw, Wishes to His (Supposed) Mistress

Setting:
A gemstone-bearing pegmatite mine located in the SWยผ sec. 12 and in the NWยผ sec. 13, T9S, R3E, SBM, 12.2 km (7.6 miles) N of Warner Springs and 10 miles E of Oak Grove.

History:
The Blue Lady mine was discovered in 1905 by Bert Simmons of nearby Oak Grove. Simmons subsequently staked a lode mining claim along 1500 feet of the layered pegmatite vein series, which he named the "Blue Tourmaline". In 1906, Simmons explored the deposit extensively by developing open cuts and several short tunnels in search of gem-quality blue tourmaline (indicolite). These workings were reported to have been abandoned around 1907.

The next discovery made at the mine was described in Waldemar T. Schaller's 1916 report on U.S. mineral resources for the United States Geological Survey. Schaller's report detailed the circumstances behind the Roy Carson tourmaline discovery which was described as a "rich pocket". Carson and his associates E. L. Haney, and D. H. A. Fiske, located three lode mining claims known as the "San Diego, Panama, and Exposition" which covered the area of Simmons' abandoned workings. Carson's group of claims were thoroughly examined by Schaller as a potential source for high-grade tin, due to irregular masses and imperfect crystals of cassiterite which had been discovered. At this time Schaller described "about a hatful of small blue tourmalines" obtained from the cassiterite-bearing pocket.

In 1983, several lode mining claims were once again staked over the old workings by Mark Carter of Long Beach, and Bill Magee of Pala. Working with several partners including Magee's son Lance, Dave Morrow of Pala and Bill Carmona of Chino, work proceeded to extend existing underground development headings. Drilling, blasting and mucking, the group closely followed the enriched sections of the gem-bearing pegmatite. Several hundred feet of interconnected irregular drifts and rooms were constructed which effectively honeycombed the area of historic production. The group encountered many large pockets which produced considerably outstanding specimens. Witnesses account the discovery of several hundred pounds of quartz crystals, as well as several kilos of blue tourmaline pencils. One remarkable specimen recovered during this period was an intensely colored and well-formed orangey pink beryl crystal (morganite), which measures 20 cm across, with a bright grayish white quartz point attached to its side. This aesthetically pleasing large beryl with quartz was acquired in 1986 by the Los Angeles County Museum of Natural History, where it is currently on display to the public within the California Minerals exhibit.

Between 1990 and 1999, Carter worked weekends at the mine with several local prospectors including Otto Komarek, Byron Wegee and Jim Clanin of Pala, often assisted by Arthur McCollum of Sun City. Mechanized excavation along the edge of the existing roadway adjacent and north of the underground development encountered pockets of significance which produced many specimens of blue tourmaline, aquamarine, garnet and quartz.

Note:
The mine is currently located on property managed by San Diego State University for the public purpose of botanical study, and federal law forbids the disposal or sale of the mineral estate by the University during such studies. University regulations warn all visitors to not collect, remove, or disturb any natural elements or organisms on the Field Station without first obtaining state and federal permits and the permission of the Field Station Director. Please notify the Field Station Director of any violations you observe at the Field Station.

Abstract:
A series of relatively shallow tunnels into the mountain in a pegmatite deposit. This mine (and rock on the dump) shows a superb display of the "line rock" above and below the pegmatite vein. According to D. Peeler, this is where a cavity allowed fluid and gases to collect and interaction over time with the surrounding country rock. One can visualize them as "bath tub rings" showing the effects of local contact metamorphism. They are alternating bands where muscovite, then garnet, and then possibly a few other minerals have concentrated based on distance out from the pocket and chemical interaction between the penetrating vein fluid/gases and the country rock over time. The bands may be seen to repeat from the inside out as the vein cools and crystallization depletes the fluid/gas phases. (Goldstein 2005)

Select Mineral List Type

Standard Detailed Gallery Strunz Chemical Elements

Mineral List


14 valid minerals.

Detailed Mineral List:

โ“˜ Albite
Formula: Na(AlSi3O8)
โ“˜ Albite var. Cleavelandite
Formula: Na(AlSi3O8)
โ“˜ 'Almandine-Spessartine Series'
โ“˜ Beryl
Formula: Be3Al2(Si6O18)
โ“˜ Beryl var. Aquamarine
โ“˜ Beryl var. Morganite
Formula: Be3Al2(Si6O18)
โ“˜ 'Biotite'
Formula: K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
โ“˜ Cassiterite
Formula: SnO2
โ“˜ Clinobisvanite
Formula: Bi(VO4)
โ“˜ 'Columbite-(Fe)-Columbite-(Mn) Series'
โ“˜ Columbite-(Mn)
Formula: Mn2+Nb2O6
โ“˜ 'Elbaite-Schorl Series'
โ“˜ 'Feldspar Group'
โ“˜ 'Feldspar Group var. Perthite'
โ“˜ Fluorapatite
Formula: Ca5(PO4)3F
โ“˜ 'Garnet Group'
Formula: X3Z2(SiO4)3
โ“˜ 'Lepidolite'
Description: Material is Cesian and Rubidian.
โ“˜ Microcline
Formula: K(AlSi3O8)
โ“˜ Muscovite
Formula: KAl2(AlSi3O10)(OH)2
โ“˜ Orthoclase
Formula: K(AlSi3O8)
โ“˜ Paragonite ?
Formula: NaAl2(AlSi3O10)(OH)2
Habit: Botryoidal
โ“˜ Quartz
Formula: SiO2
โ“˜ Quartz var. Smoky Quartz
Formula: SiO2
โ“˜ Schorl
Formula: NaFe2+3Al6(Si6O18)(BO3)3(OH)3(OH)
โ“˜ Spessartine
Formula: Mn2+3Al2(SiO4)3
โ“˜ Topaz
Formula: Al2(SiO4)(F,OH)2
โ“˜ 'Tourmalinated Quartz'
โ“˜ 'Tourmaline'
Formula: AD3G6(T6O18)(BO3)3X3Z
โ“˜ 'Tourmaline var. Indicolite'

Gallery:

List of minerals arranged by Strunz 10th Edition classification

Group 4 - Oxides and Hydroxides
โ“˜Quartz4.DA.05SiO2
โ“˜var. Smoky Quartz4.DA.05SiO2
โ“˜Cassiterite4.DB.05SnO2
โ“˜Columbite-(Mn)4.DB.35Mn2+Nb2O6
Group 8 - Phosphates, Arsenates and Vanadates
โ“˜Clinobisvanite8.AD.65Bi(VO4)
โ“˜Fluorapatite8.BN.05Ca5(PO4)3F
Group 9 - Silicates
โ“˜Spessartine9.AD.25Mn2+3Al2(SiO4)3
โ“˜Topaz9.AF.35Al2(SiO4)(F,OH)2
โ“˜Beryl
var. Aquamarine
9.CJ.05Be3Al2(Si6O18)
โ“˜9.CJ.05Be3Al2(Si6O18)
โ“˜var. Morganite9.CJ.05Be3Al2(Si6O18)
โ“˜Schorl9.CK.05NaFe2+3Al6(Si6O18)(BO3)3(OH)3(OH)
โ“˜Muscovite9.EC.15KAl2(AlSi3O10)(OH)2
โ“˜Paragonite ?9.EC.15NaAl2(AlSi3O10)(OH)2
โ“˜Microcline9.FA.30K(AlSi3O8)
โ“˜Orthoclase9.FA.30K(AlSi3O8)
โ“˜Albite9.FA.35Na(AlSi3O8)
โ“˜var. Cleavelandite9.FA.35Na(AlSi3O8)
Unclassified
โ“˜'Biotite'-K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
โ“˜'Feldspar Group'-
โ“˜'Tourmaline
var. Indicolite'
-AD3G6(T6O18)(BO3)3X3Z
โ“˜'Lepidolite'-
โ“˜'Tourmaline'-AD3G6(T6O18)(BO3)3X3Z
โ“˜'Feldspar Group
var. Perthite'
-
โ“˜'Almandine-Spessartine Series'-
โ“˜'Columbite-(Fe)-Columbite-(Mn) Series'-
โ“˜'Elbaite-Schorl Series'-
โ“˜'Garnet Group'-X3Z2(SiO4)3
โ“˜'Tourmalinated Quartz'-

List of minerals for each chemical element

HHydrogen
Hโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Hโ“˜ MuscoviteKAl2(AlSi3O10)(OH)2
Hโ“˜ ParagoniteNaAl2(AlSi3O10)(OH)2
Hโ“˜ SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Hโ“˜ TopazAl2(SiO4)(F,OH)2
Hโ“˜ Elbaite-Schorl Series
LiLithium
Liโ“˜ Elbaite-Schorl Series
BeBeryllium
Beโ“˜ BerylBe3Al2(Si6O18)
Beโ“˜ Beryl var. MorganiteBe3Al2(Si6O18)
BBoron
Bโ“˜ Tourmaline var. Indicolite
Bโ“˜ SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Bโ“˜ TourmalineAD3G6(T6O18)(BO3)3X3Z
Bโ“˜ Elbaite-Schorl Series
OOxygen
Oโ“˜ AlbiteNa(AlSi3O8)
Oโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Oโ“˜ BerylBe3Al2(Si6O18)
Oโ“˜ CassiteriteSnO2
Oโ“˜ ClinobisvaniteBi(VO4)
Oโ“˜ FluorapatiteCa5(PO4)3F
Oโ“˜ Tourmaline var. Indicolite
Oโ“˜ Columbite-(Mn)Mn2+Nb2O6
Oโ“˜ MicroclineK(AlSi3O8)
Oโ“˜ Beryl var. MorganiteBe3Al2(Si6O18)
Oโ“˜ MuscoviteKAl2(AlSi3O10)(OH)2
Oโ“˜ OrthoclaseK(AlSi3O8)
Oโ“˜ ParagoniteNaAl2(AlSi3O10)(OH)2
Oโ“˜ QuartzSiO2
Oโ“˜ SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Oโ“˜ Quartz var. Smoky QuartzSiO2
Oโ“˜ SpessartineMn32+Al2(SiO4)3
Oโ“˜ TopazAl2(SiO4)(F,OH)2
Oโ“˜ TourmalineAD3G6(T6O18)(BO3)3X3Z
Oโ“˜ Albite var. CleavelanditeNa(AlSi3O8)
Oโ“˜ Almandine-Spessartine Series
Oโ“˜ Columbite-(Fe)-Columbite-(Mn) Series
Oโ“˜ Elbaite-Schorl Series
Oโ“˜ Garnet GroupX3Z2(SiO4)3
FFluorine
Fโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Fโ“˜ FluorapatiteCa5(PO4)3F
Fโ“˜ TopazAl2(SiO4)(F,OH)2
NaSodium
Naโ“˜ AlbiteNa(AlSi3O8)
Naโ“˜ ParagoniteNaAl2(AlSi3O10)(OH)2
Naโ“˜ SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Naโ“˜ Albite var. CleavelanditeNa(AlSi3O8)
Naโ“˜ Elbaite-Schorl Series
MgMagnesium
Mgโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
AlAluminium
Alโ“˜ AlbiteNa(AlSi3O8)
Alโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Alโ“˜ BerylBe3Al2(Si6O18)
Alโ“˜ MicroclineK(AlSi3O8)
Alโ“˜ Beryl var. MorganiteBe3Al2(Si6O18)
Alโ“˜ MuscoviteKAl2(AlSi3O10)(OH)2
Alโ“˜ OrthoclaseK(AlSi3O8)
Alโ“˜ ParagoniteNaAl2(AlSi3O10)(OH)2
Alโ“˜ SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Alโ“˜ SpessartineMn32+Al2(SiO4)3
Alโ“˜ TopazAl2(SiO4)(F,OH)2
Alโ“˜ Albite var. CleavelanditeNa(AlSi3O8)
Alโ“˜ Almandine-Spessartine Series
Alโ“˜ Elbaite-Schorl Series
SiSilicon
Siโ“˜ AlbiteNa(AlSi3O8)
Siโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Siโ“˜ BerylBe3Al2(Si6O18)
Siโ“˜ MicroclineK(AlSi3O8)
Siโ“˜ Beryl var. MorganiteBe3Al2(Si6O18)
Siโ“˜ MuscoviteKAl2(AlSi3O10)(OH)2
Siโ“˜ OrthoclaseK(AlSi3O8)
Siโ“˜ ParagoniteNaAl2(AlSi3O10)(OH)2
Siโ“˜ QuartzSiO2
Siโ“˜ SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Siโ“˜ Quartz var. Smoky QuartzSiO2
Siโ“˜ SpessartineMn32+Al2(SiO4)3
Siโ“˜ TopazAl2(SiO4)(F,OH)2
Siโ“˜ Albite var. CleavelanditeNa(AlSi3O8)
Siโ“˜ Almandine-Spessartine Series
Siโ“˜ Elbaite-Schorl Series
Siโ“˜ Garnet GroupX3Z2(SiO4)3
PPhosphorus
Pโ“˜ FluorapatiteCa5(PO4)3F
KPotassium
Kโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Kโ“˜ MicroclineK(AlSi3O8)
Kโ“˜ MuscoviteKAl2(AlSi3O10)(OH)2
Kโ“˜ OrthoclaseK(AlSi3O8)
CaCalcium
Caโ“˜ FluorapatiteCa5(PO4)3F
TiTitanium
Tiโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
VVanadium
Vโ“˜ ClinobisvaniteBi(VO4)
MnManganese
Mnโ“˜ Columbite-(Mn)Mn2+Nb2O6
Mnโ“˜ SpessartineMn32+Al2(SiO4)3
Mnโ“˜ Almandine-Spessartine Series
Mnโ“˜ Columbite-(Fe)-Columbite-(Mn) Series
FeIron
Feโ“˜ BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Feโ“˜ SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Feโ“˜ Almandine-Spessartine Series
Feโ“˜ Columbite-(Fe)-Columbite-(Mn) Series
Feโ“˜ Elbaite-Schorl Series
NbNiobium
Nbโ“˜ Columbite-(Mn)Mn2+Nb2O6
Nbโ“˜ Columbite-(Fe)-Columbite-(Mn) Series
SnTin
Snโ“˜ CassiteriteSnO2
BiBismuth
Biโ“˜ ClinobisvaniteBi(VO4)

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