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Hale Quarry (Andrews Quarry; Glastonbury Quarry), Portland, Middlesex County, Connecticut, USAi
Regional Level Types
Hale Quarry (Andrews Quarry; Glastonbury Quarry)Quarry
PortlandTown
Middlesex CountyCounty
ConnecticutState
USACountry

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Latitude & Longitude (WGS84):
41° 37' 45'' North , 72° 35' 51'' West
Latitude & Longitude (decimal):
Type:
Nearest Settlements:
PlacePopulationDistance
Cromwell13,750 (2017)5.5km
Portland5,862 (2017)7.2km
Glastonbury Center7,387 (2017)8.0km
Lake Pocotopaug3,436 (2017)8.0km
Middletown46,756 (2017)8.6km
Nearest Clubs:
Local clubs are the best way to get access to collecting localities
ClubLocationDistance
Lapidary and Mineral Society of Central ConnecticutMeriden, Connecticut20km
Bristol Gem & Mineral ClubBristol, Connecticut30km
New Haven Mineral ClubNew Haven, Connecticut45km
Mindat Locality ID:
11713
Long-form identifier:
mindat:1:2:11713:6
GUID (UUID V4):
0


A quarry in granite pegmatite active from 1902 to 1917 and from 1938 to 1992. This is one of the longest operating quarries in a single pegmatite in Connecticut, almost 70 years. The workings gradually extended southward from the northern tip of the north-south oriented pegmatite and it ended up being about 450 meters long by the time it closed.

The Hale Quarry is often confused with the neighboring but much smaller and earlier Andrews Quarry http://www.mindat.org/loc-23306.html that was apparently known as the Hale Quarry when it operated in a different pegmatite from about 1881 to 1900. For example, the large beryl on display at Wesleyan University shown at http://www.mindat.org/photo-77161.html and collected in 1896 is, for that time, correctly labeled "Hale Quarry" but this older Hale Quarry was later known as the Andrews Quarry after the "new" Hale Quarry opened in 1902. Some references written after 1902 refer to Andrews as the "old Hale quarry". Famous scientific analyses by Hillebrand (1890) on gases emanating from uraninite and radiometric age dating of monazite and uraninite by Boltwood (1907) used samples attributed to what was then called the Hale Quarry, but is now called Andrews. Foye (1922) gives both names but is clearly describing Andrews quarry, which is well known for its monazite crystals.

Zodac (1941) and Little (1942) refer to the Hale Quarry as the Andrews Quarry, but Zodac points out that "Due to the fact that the property belongs to Herbert Hale, it is also known as the Hale Quarry; and furthermore, because of its close proximity to the Glastonbury Township Line, it has also been called the Glastonbury Quarry." Zodac (1941) includes a map that distinguishes between the quarries and the article carefully points out which minerals occur at each. See the Andrews Quarry mindat.org page for more details.

The operating history of the "new" Hale Quarry involved several entities. In May 1902, the Hales leased their property to Harry Andrews who owned a feldspar mill close to the quarry site. In 1906, after Andrews' mill burned; he began selling quarried material to the Eureka Flint & Spar Company, a subsidiary of Eureka Mining and Operating Company, for milling. Andrews continued operating the Hale quarry until World War I when labor costs became too high. In 1916 the workings extended only about 23 meters inside the northern quarry entrance. In 1938, the Hale family leased the quarry to Eureka Mining and Milling Company, another subsidiary of Eureka Mining and Operating Company, which operated it until The Feldspar Corporation of North Carolina took over the lease of the property in the early 1960s and began to mine pegmatite underground. In the 1980s, they blasted the roofs in and worked the quarry as an open cut. The material was being trucked to The Feldspar Corporation’s mill in Middletown and operations continued until that mill closed at the end of 1991. There is no active quarrying going on today, the quarry is flooded, and the area is restricted due to explosives storage by the owner.

Microcline from this site was finely-ground and used in scouring powder made by the Bon Ami Company. It was later used for porcelain glaze.

According to Stugard (1958) the pegmatite is zoned based on mineralogy and texture. The wall zone makes up the eastern three-quarters of the pegmatite; it is medium-grained microcline perthite-quartz pegmatite, with sub-ordinate albite and muscovite. On the western side a border zone of quartz-albite-mica pegmatite, from 0 to 45 feet thick, has striking mammillary structures and bands of tourmaline-bearing rock. The mammillary structures contain bands rich in quartz, feldspar, and mica. Red bands are common and have been attributed to a high garnet content, but the color is almost entirely due to a surface discoloration of feldspar grains. The garnets present are very small and constitute less than 0.01 percent of the rock. This fine-grained, banded, aplitic pegmatite is also described by London (1985) who also mentions graphic quartz textures in individual very-coarse-grained microcline crystals and block microcline-beryl-quartz pods.

In the early 1940s museum quality specimens of uraninite, meta-autunite, metatorbernite, and uranophane were removed from the quarry. Little (1942), calling it "Andrews Quarry", said that the meta-autunite had bright green fluorescence and sometimes formed rings around uranophane or uraninite. The metatorbernite sometimes covered the specimens so thickly as to give them a solid green appearance. Also found were platy iridescent masses of pyrrhotite, pyrite and chalcopyrite, which Schooner (1958) describes as coming from the Hale Quarry.

Jarnot (1989) documents the tapiolite and pyrochlore found here. There were only two specimens.

Select Mineral List Type

Standard Detailed Gallery Strunz Chemical Elements

Mineral List


25 valid minerals. 8 erroneous literature entries.

Detailed Mineral List:

Albite
Formula: Na(AlSi3O8)
Almandine
Formula: Fe2+3Al2(SiO4)3
Annite
Formula: KFe2+3(AlSi3O10)(OH)2
Colour: black
Description: fka biotite, very small black plates
Arsenopyrite
Formula: FeAsS
Autunite
Formula: Ca(UO2)2(PO4)2 · 10-12H2O
Description: should be called meta-autunite
Beryl
Formula: Be3Al2(Si6O18)
Habit: hexagonal prisms
Colour: pale green
Description: Generally small crystals.
Chalcopyrite
Formula: CuFeS2
Habit: massive
Description: intergrown with pyrrhotite, pyrite and dark smoky quartz
Columbite-(Fe)
Formula: Fe2+Nb2O6
Description: Zodac (1941) was referring to what he called the Grandfather Andrews Quarry and is now called the Andrews Quarry, so this report is erroneous.
Ferrimolybdite
Formula: Fe2(MoO4)3 · nH2O
Colour: yellowish
Description: alteration of molybdenite
Fluorapatite
Formula: Ca5(PO4)3F
Colour: green
Fluorescence: yellow
Description: The size of specimens observed ranged from pin-point to fist-sized pieces.
Heterosite
Formula: Fe3+(PO4)
Description: Zodac (1941) was referring to what he called the Grandfather Andrews Quarry and is now called the Andrews Quarry, so this report is erroneous.
'Limonite'
Melanterite
Formula: Fe2+(H2O)6SO4 · H2O
Colour: white, gray
Description: alteration of pyrite and pyrrhotite
Meta-autunite
Formula: Ca(UO2)2(PO4)2 · 6H2O
Habit: thin flakes
Colour: pale yellow-green
Fluorescence: green
Description: used to be collected in genuine museum pieces
Metatorbernite
Formula: Cu(UO2)2(PO4)2 · 8H2O
Habit: tabular
Colour: emerald green
Description: micaceous flakes are quite large, being about one-eighth inch across (Jones (1960)) magnificent specimens...was common, around l94l or 1942 (Schooner (1958) sometimes covers the specimens so thickly as to give them a solid green appearance (Little 1942)
Microcline
Formula: K(AlSi3O8)
Microcline var. Amazonite
Formula: K(AlSi3O8)
Colour: green
Description: Small pale green cleavable masses grading into white microcline.
'Microlite Group'
Formula: A2-mTa2X6-wZ-n
Molybdenite
Formula: MoS2
Colour: silvery gray
Description: small crystals and foil-like wads
Monazite-(Ce)
Formula: Ce(PO4)
Description: Zodac (1941) was referring to what he called the Grandfather Andrews Quarry and is now called the Andrews Quarry, so this report is erroneous.
Montmorillonite
Formula: (Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Colour: brownish
Description: encrustations on pegmatite (Zodac 1941)
Muscovite
Formula: KAl2(AlSi3O10)(OH)2
Habit: tabular
Colour: silvery gray to greenish
Opal
Formula: SiO2 · nH2O
Fluorescence: green
Opal var. Opal-AN
Formula: SiO2 · nH2O
Fluorescence: green
Pyrite
Formula: FeS2
Description: intergrown with pyrrhotite and chalcopyrite in dark smoky quartz
'Pyrochlore Group'
Formula: A2Nb2(O,OH)6Z
Colour: yellow
Description: Bruce Jarnot did find and confirm pyrochlore from the Hale Quarry. The single specimen was an aggregate of tapiolite crystals about 0.5 inches that had altered 50% to pyrochlore. It resembled a hard yellow marble that, when split, showed the remains of tapiolite xls in the center. The IDs were made by EDX (element ratios) and X-ray unit crystal pattern.
Pyrolusite
Formula: Mn4+O2
Description: No pyrolusite dendrite or staining in a granite pegmatite in the world has been verified as pyrolusite. The name was a mistake in the nineteenth century which has been widely publicized.
Pyrrhotite
Formula: Fe1-xS
Habit: massive
Description: platy iridescent masses (Little 1942) intergrown with pyrite and chalcopyrite in black smoky quartz (Schooner 1958)
Quartz
Formula: SiO2
Habit: massive
Colour: colorless to black
Quartz var. Rose Quartz
Formula: SiO2
Description: Zodac (1941) was referring to what he called the Grandfather Andrews Quarry and is now called the Andrews Quarry, so this report is erroneous.
Schorl
Formula: NaFe2+3Al6(Si6O18)(BO3)3(OH)3(OH)
Habit: tapered prismatic subhedral crystals
Colour: black
Description: tourmaline displays the inwardly expanding or flaring habit that is typical of border zone tourmalines at pegmatites throughout the world (London 1985)
Spessartine
Formula: Mn2+3Al2(SiO4)3
Description: species speculative
Sphalerite
Formula: ZnS
Description: Zodac (1941) was referring to what he called the Grandfather Andrews Quarry and is now called the Andrews Quarry, so this report is erroneous.
'Tantalite'
Formula: (Mn,Fe)(Ta,Nb)2O6
Description: Mistake for columbite-tantalite. See USGS PP 225.
'Tapiolite'
Formula: (Fe,Mn)(Ta,Nb)2O6
Description: Bruce Jarnot did find and confirm tapiolite from the Hale Quarry. There were two specimens, one a complex crystal group (about 0.5 inches) and the other a similar size group that had altered 50% to pyrochlore. It resembled a hard yellow marble that, when split, showed the remains of tapiolite xls in the center. The IDs were made by EDX (element ratios) and X-ray unit crystal pattern.
Torbernite
Formula: Cu(UO2)2(PO4)2 · 12H2O
'Tourmaline'
Formula: AD3G6(T6O18)(BO3)3X3Z
Uraninite
Formula: UO2
Habit: octahedral
Colour: black
Description: Excellent crystals, up to half an inch in diameter, they were easy to obtain around 1941 and 1942.
Uranophane
Formula: Ca(UO2)2(SiO3OH)2 · 5H2O
Description: fine examples
Zircon
Formula: Zr(SiO4)
Description: Zodac (1941) was referring to what he called the Grandfather Andrews Quarry and is now called the Andrews Quarry, so this report is erroneous.
Zircon var. Cyrtolite
Formula: Zr[(SiO4),(OH)4]

List of minerals arranged by Strunz 10th Edition classification

Group 2 - Sulphides and Sulfosalts
Sphalerite ?2.CB.05aZnS
Chalcopyrite2.CB.10aCuFeS2
Pyrrhotite2.CC.10Fe1-xS
Molybdenite2.EA.30MoS2
Pyrite2.EB.05aFeS2
Arsenopyrite2.EB.20FeAsS
Group 4 - Oxides and Hydroxides
'Microlite Group'4.00.A2-mTa2X6-wZ-n
'Pyrochlore Group'4.00.A2Nb2(O,OH)6Z
Quartz4.DA.05SiO2
var. Rose Quartz ?4.DA.05SiO2
Opal
var. Opal-AN
4.DA.10SiO2 · nH2O
4.DA.10SiO2 · nH2O
Pyrolusite ?4.DB.05Mn4+O2
Columbite-(Fe)4.DB.35Fe2+Nb2O6
Uraninite4.DL.05UO2
Group 7 - Sulphates, Chromates, Molybdates and Tungstates
Melanterite7.CB.35Fe2+(H2O)6SO4 · H2O
Ferrimolybdite7.GB.30Fe2(MoO4)3 · nH2O
Group 8 - Phosphates, Arsenates and Vanadates
Heterosite ?8.AB.10Fe3+(PO4)
Monazite-(Ce) ?8.AD.50Ce(PO4)
Fluorapatite8.BN.05Ca5(PO4)3F
Autunite8.EB.05Ca(UO2)2(PO4)2 · 10-12H2O
Torbernite8.EB.05Cu(UO2)2(PO4)2 · 12H2O
Meta-autunite8.EB.10Ca(UO2)2(PO4)2 · 6H2O
Metatorbernite8.EB.10Cu(UO2)2(PO4)2 · 8H2O
Group 9 - Silicates
Almandine9.AD.25Fe2+3Al2(SiO4)3
Spessartine ?9.AD.25Mn2+3Al2(SiO4)3
Zircon ?9.AD.30Zr(SiO4)
var. Cyrtolite9.AD.30Zr[(SiO4),(OH)4]
Uranophane9.AK.15Ca(UO2)2(SiO3OH)2 · 5H2O
Beryl9.CJ.05Be3Al2(Si6O18)
Schorl9.CK.05NaFe2+3Al6(Si6O18)(BO3)3(OH)3(OH)
Muscovite9.EC.15KAl2(AlSi3O10)(OH)2
Annite9.EC.20KFe2+3(AlSi3O10)(OH)2
Montmorillonite9.EC.40(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Microcline
var. Amazonite
9.FA.30K(AlSi3O8)
9.FA.30K(AlSi3O8)
Albite9.FA.35Na(AlSi3O8)
Unclassified
'Limonite'-
'Tantalite' ?-(Mn,Fe)(Ta,Nb)2O6
'Tapiolite'-(Fe,Mn)(Ta,Nb)2O6
'Tourmaline'-AD3G6(T6O18)(BO3)3X3Z

List of minerals for each chemical element

HHydrogen
H AnniteKFe32+(AlSi3O10)(OH)2
H AutuniteCa(UO2)2(PO4)2 · 10-12H2O
H FerrimolybditeFe2(MoO4)3 · nH2O
H Opal var. Opal-ANSiO2 · nH2O
H MelanteriteFe2+(H2O)6SO4 · H2O
H Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
H MetatorberniteCu(UO2)2(PO4)2 · 8H2O
H MuscoviteKAl2(AlSi3O10)(OH)2
H Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
H OpalSiO2 · nH2O
H Pyrochlore GroupA2Nb2(O,OH)6Z
H SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
H TorberniteCu(UO2)2(PO4)2 · 12H2O
H UranophaneCa(UO2)2(SiO3OH)2 · 5H2O
H Zircon var. CyrtoliteZr[(SiO4),(OH)4]
BeBeryllium
Be BerylBe3Al2(Si6O18)
BBoron
B SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
B TourmalineAD3G6(T6O18)(BO3)3X3Z
OOxygen
O AlbiteNa(AlSi3O8)
O Microcline var. AmazoniteK(AlSi3O8)
O AnniteKFe32+(AlSi3O10)(OH)2
O AutuniteCa(UO2)2(PO4)2 · 10-12H2O
O AlmandineFe32+Al2(SiO4)3
O BerylBe3Al2(Si6O18)
O FerrimolybditeFe2(MoO4)3 · nH2O
O Columbite-(Fe)Fe2+Nb2O6
O FluorapatiteCa5(PO4)3F
O HeterositeFe3+(PO4)
O Opal var. Opal-ANSiO2 · nH2O
O MelanteriteFe2+(H2O)6SO4 · H2O
O Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
O MetatorberniteCu(UO2)2(PO4)2 · 8H2O
O MicroclineK(AlSi3O8)
O Monazite-(Ce)Ce(PO4)
O MuscoviteKAl2(AlSi3O10)(OH)2
O Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
O OpalSiO2 · nH2O
O Pyrochlore GroupA2Nb2(O,OH)6Z
O PyrolusiteMn4+O2
O QuartzSiO2
O Quartz var. Rose QuartzSiO2
O SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
O SpessartineMn32+Al2(SiO4)3
O Tantalite(Mn,Fe)(Ta,Nb)2O6
O Tapiolite(Fe,Mn)(Ta,Nb)2O6
O TorberniteCu(UO2)2(PO4)2 · 12H2O
O TourmalineAD3G6(T6O18)(BO3)3X3Z
O UraniniteUO2
O UranophaneCa(UO2)2(SiO3OH)2 · 5H2O
O ZirconZr(SiO4)
O Zircon var. CyrtoliteZr[(SiO4),(OH)4]
FFluorine
F FluorapatiteCa5(PO4)3F
NaSodium
Na AlbiteNa(AlSi3O8)
Na Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Na SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
MgMagnesium
Mg Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
AlAluminium
Al AlbiteNa(AlSi3O8)
Al Microcline var. AmazoniteK(AlSi3O8)
Al AnniteKFe32+(AlSi3O10)(OH)2
Al AlmandineFe32+Al2(SiO4)3
Al BerylBe3Al2(Si6O18)
Al MicroclineK(AlSi3O8)
Al MuscoviteKAl2(AlSi3O10)(OH)2
Al Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Al SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Al SpessartineMn32+Al2(SiO4)3
SiSilicon
Si AlbiteNa(AlSi3O8)
Si Microcline var. AmazoniteK(AlSi3O8)
Si AnniteKFe32+(AlSi3O10)(OH)2
Si AlmandineFe32+Al2(SiO4)3
Si BerylBe3Al2(Si6O18)
Si Opal var. Opal-ANSiO2 · nH2O
Si MicroclineK(AlSi3O8)
Si MuscoviteKAl2(AlSi3O10)(OH)2
Si Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Si OpalSiO2 · nH2O
Si QuartzSiO2
Si Quartz var. Rose QuartzSiO2
Si SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Si SpessartineMn32+Al2(SiO4)3
Si UranophaneCa(UO2)2(SiO3OH)2 · 5H2O
Si ZirconZr(SiO4)
Si Zircon var. CyrtoliteZr[(SiO4),(OH)4]
PPhosphorus
P AutuniteCa(UO2)2(PO4)2 · 10-12H2O
P FluorapatiteCa5(PO4)3F
P HeterositeFe3+(PO4)
P Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
P MetatorberniteCu(UO2)2(PO4)2 · 8H2O
P Monazite-(Ce)Ce(PO4)
P TorberniteCu(UO2)2(PO4)2 · 12H2O
SSulfur
S ArsenopyriteFeAsS
S ChalcopyriteCuFeS2
S MelanteriteFe2+(H2O)6SO4 · H2O
S MolybdeniteMoS2
S PyriteFeS2
S PyrrhotiteFe1-xS
S SphaleriteZnS
KPotassium
K Microcline var. AmazoniteK(AlSi3O8)
K AnniteKFe32+(AlSi3O10)(OH)2
K MicroclineK(AlSi3O8)
K MuscoviteKAl2(AlSi3O10)(OH)2
CaCalcium
Ca AutuniteCa(UO2)2(PO4)2 · 10-12H2O
Ca FluorapatiteCa5(PO4)3F
Ca Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
Ca Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Ca UranophaneCa(UO2)2(SiO3OH)2 · 5H2O
MnManganese
Mn PyrolusiteMn4+O2
Mn SpessartineMn32+Al2(SiO4)3
Mn Tantalite(Mn,Fe)(Ta,Nb)2O6
Mn Tapiolite(Fe,Mn)(Ta,Nb)2O6
FeIron
Fe AnniteKFe32+(AlSi3O10)(OH)2
Fe ArsenopyriteFeAsS
Fe AlmandineFe32+Al2(SiO4)3
Fe ChalcopyriteCuFeS2
Fe FerrimolybditeFe2(MoO4)3 · nH2O
Fe Columbite-(Fe)Fe2+Nb2O6
Fe HeterositeFe3+(PO4)
Fe MelanteriteFe2+(H2O)6SO4 · H2O
Fe PyriteFeS2
Fe PyrrhotiteFe1-xS
Fe SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Fe Tantalite(Mn,Fe)(Ta,Nb)2O6
Fe Tapiolite(Fe,Mn)(Ta,Nb)2O6
CuCopper
Cu ChalcopyriteCuFeS2
Cu MetatorberniteCu(UO2)2(PO4)2 · 8H2O
Cu TorberniteCu(UO2)2(PO4)2 · 12H2O
ZnZinc
Zn SphaleriteZnS
AsArsenic
As ArsenopyriteFeAsS
ZrZirconium
Zr ZirconZr(SiO4)
Zr Zircon var. CyrtoliteZr[(SiO4),(OH)4]
NbNiobium
Nb Columbite-(Fe)Fe2+Nb2O6
Nb Pyrochlore GroupA2Nb2(O,OH)6Z
Nb Tantalite(Mn,Fe)(Ta,Nb)2O6
Nb Tapiolite(Fe,Mn)(Ta,Nb)2O6
MoMolybdenum
Mo FerrimolybditeFe2(MoO4)3 · nH2O
Mo MolybdeniteMoS2
CeCerium
Ce Monazite-(Ce)Ce(PO4)
TaTantalum
Ta Microlite GroupA2-mTa2X6-wZ-n
Ta Tantalite(Mn,Fe)(Ta,Nb)2O6
Ta Tapiolite(Fe,Mn)(Ta,Nb)2O6
UUranium
U AutuniteCa(UO2)2(PO4)2 · 10-12H2O
U Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
U MetatorberniteCu(UO2)2(PO4)2 · 8H2O
U TorberniteCu(UO2)2(PO4)2 · 12H2O
U UraniniteUO2
U UranophaneCa(UO2)2(SiO3OH)2 · 5H2O

Other Regions, Features and Areas containing this locality

North AmericaContinent
North America PlateTectonic Plate

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