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Amalgamation and small-scale gold mining in the ancient Andes

Amalgación y minería de oro a pequeña escala en los Andes prehispánicos
Amalgame et mine d’or à petite échelle dans les Andes pré-hispaniques
William E. Brooks, Gabriela Schwörbel et Luis Enrique Castillo
p. 333-347

Résumés

En 1532, la quantité de l’or fourni par Atahualpa, le souverain Inka, pour payer sa rançon aux Espagnols constitua une dure épreuve pour l’industrie minière à petite échelle à l’époque pré-hispanique et un indicateur de la quantité d’or disponible dans les Andes. À Huancavelica, au Pérou, le mercure est considéré comme un métal d’origine et comme du cinabre (HgS), utilisé pour les pigments, pour les préparatifs funéraires et pour obtenir du mercure.

L’analyse par spectrométrie de masse à plasma inductif (ICP) d’échantillons modernes produits dans les ateliers de traitement d’or à Madre de Dios, Pérou, révèle la présence d’une valeur moyenne de 15 ppm de mercure dans l’or, après que l’amalgame a été brûlé (refogado), afin de volatiliser le mercure (>300 000 ppm de mercure). Par ailleurs, des concentrations de mercure entre 12 et 14 ppm ont été mesurées dans les feuilles d’or de la Huaca la Ventana, Pérou, un site Lambayeque Sicán moyen (900-1200 ap. J.-C.) et entre 1 et 12 ppm dans les feuilles d’or trouvées en Colombie et en Équateur à l’époque pré-hispanique. Les basses concentrations de mercure mesurées par ICP pour l’or refogado moderne et pour des feuilles d’or de l’époque pré-contact sont conformes aux valeurs attendues pour une technologie ancienne d’extraction à petite échelle qui aurait utilisé les méthodes de séparation par gravité et d’amalgame de mercure pour traitement de la fine poudre d’or des gisements et des filons ; il s’agissait donc, comme actuellement, de brûler l’amalgame de façon à volatiliser le mercure et récupérer l’or.

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Entrées d’index

Mots-clés :

mercure, or, amalgame, géochimie

Palabras claves:

mercurio, oro, amalgación, geoquímica
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Texte intégral

Introduction

1Placer gold was early man’s main source of gold and provided more than two-thirds of the gold ever produced (Boyle, 1979: 333). In 1532, Atahualpa’s gold ransom was evidence for the abundant placer, vein, and porphyry gold occurrences in the Andes (Petersen, 1970; Petersen et al., 1990; Noble & Vidal, 1994; Cánepa, 2005) as well as the successful small-scale gold mining methods used before European contact. Porphyry ores produced a copper-gold-silver alloy or tumbaga, which, through depletion gilding or other treatments, resulted in enhanced surficial gold (Petersen, 1970: 57). Nuggets and coarse gold would have been recovered by gravity methods; however, recovering fine-grained placer or vein gold would have required initial gravity separation and then, as now, amalgamation.

2Cinnabar was mined in Turkey more than 8 000 years ago and was used as a pigment and retorted for mercury (Barnes & Bailey, 1972; Yildiz & Bailey, 1978: 5). Before the Christian era, mercury was known in Spain and the Moorish name of the mine «al-Ma’din» (Almaden) and the name of the metal «azogue» are still known and used in Latin America. By A. D. 77, Rome imported 4-5 metric tons (t) of mercury annually from the mines at Almaden that were used for gold amalgamation and small-scale mining (D’Itri & D’Itri, 1977: 7).

3One of the earliest written descriptions of amalgamation was given by al-Biruni —an 11th century Persian scientist—the gold was processed from crushed ore, mercury was added to amalgamate the gold, the amalgam was recovered and burned in order to volatilize the mercury and recover the gold (al-Hassan & Hill, 1986: 247). The use of mercury for amalgamation in the ancient world was questioned by Craddock (2000: 233) and he proposed that if mercury had been used, then low levels of mercury would be found in the analyses of the processed gold. Therefore, gold samples from Sardis were analyzed (SEM-EDX), and since no mercury was detected, Ramage & Craddock (2000: 103-107) concluded that mercury had not been used.

1. Availability and chronology of cinnabar and mercury use in the New World

4Cinnabar mining dates to 1000 B. C. in Mexico (Consejo de Recursos Minerales, 1992: 21) and cinnabar occurrences are known in Central America (Roberts & Irving, 1957: 169) where mercury was found in a tomb in Belize that dates to A. D. 900-1000 (Pendergast, 1982). There are cinnabar and mercury occurrences in Colombia (Lozano, 1987), Ecuador (Truhan et al., 2005: 197), Chile (McAllister et al., 1950) and Perú (Petersen, 1970: 29; Nuñez & Petersen, 2002: 136). However, one of the world’s largest cinnabar occurrences is at Huancavelica, Perú (Yates et al., 1955: 10; Brown, 2001: 467) and in ancient Perú cinnabar was used as a decoration on gold masks (Gordus & Shimada, 1995) as a pigment on murals (Bonavia, 1985: 79; Brooks et al., 2008), as a cosmetic for the elite Inka women (Brown, 2001: 477) and for funeral preparations (Shimada & Griffin, 2005). Powdered cinnabar was found in a mollusk shell that had been used to mix pigments at a pre-contact site near Ica, southern Perú (Petersen, 1970: 80).

5Isotopic data on mercury in lake sediments, combined with 14C dates, indicate that mercury mining at Huancavelica began around 1400 B. C. and that mercury production peaked at approximately 500 B. C. and at A. D. 1450, corresponding to the heights of Chavin and Inka rule, respectively, in the region (Cooke et al., 2009). Retorts were described (Petersen, 1970: 49; Burger & Matos, 2002) and detrital mercury was found in drainages near Huancavelica (Arana, 1901: 6; Petersen, 1970: 29).

6The Inka (~A. D. 1200-1533) recognized the health hazards of mercury and that exposure to mercury and cinnabar during mining and retorting would cause the ancient miners «to shake and lose their senses» and, therefore, the use of mercury by the Inka declined (Larco Hoyle, 2001: 135). At about the same time in Europe, Agrícola (1912 [1556]: 427) described methods for retorting mercury and workers were warned to turn their backs to the sweet smelling mercury fumes that would loosen their teeth.

7However, after the Conquest, Spain transported mercury from the mines at Almaden, Spain, to be used for gold and silver processing in the New World. Spanish shipwrecks that still contain Almaden mercury are known in Colombia and the Dominican Republic (Petersen, 1979: 851). Upon «re-discovery» of the mercury occurrences at Huancavelica in 1566-1567 (Arana, 1901: 77; Larco Hoyle, 2001: 135; Nuñez & Petersen, 2002: 137), which had earlier been mined by ancient peruvians (Cooke et al., 2009), imported spanish mercury was replaced by mercury that had been retorted from the rich cinnabar ore at Huancavelica. Mercury production data from 1570 to 1800 is compiled in Nuñez & Petersen (2002: 138, 149). Dangerous mining conditions, cold, working at 4 000 meters (m), and exposure to the toxic mercury fumes caused Huancavelica to be known as the Mina de la muerte (Brown, 2001: 468). Regardless, mercury was essential for mineral processing in Spanish Colonial America and adding mercury, el azogado was an important step in Colonial silver production (Del Busto Duthurburu, 1996: 98).

8Mercury from Huancavelica was also used in the «patio process» for silver amalgamation in Perú and Mexico (Núñez & Petersen, 2002: 142). Salt, mercury, and vitriol (mixed copper and iron sulfates) were mixed with crushed silver ore in a large open area, or patio, which was basically a flat surface impervious to mercury. A variation, the «buytron process» was used at silver mines at Potosí, Bolivia, where the cold climate required heat from below to speed amalgamation and therefore, silver production (Crozier, 1993; Craddock, 1995: 216).

2. Gold amalgamation in ancient Perú

9Mercury was known to the Chavin (700-500 B. C.) (Petersen, 1970: xix) and Larco Hoyle (2001: 128) indicated that mercury was used by the Moche (~100 B. C.-A. D. 800) to amalgamate placer gold. Based on the large, rocker-like crushing stones, called quimbaletes or Inka mills, and quartz vein waste found at Hoabamba and other archaeological sites in Perú, Posnansky (in Petersen, 1970: 24) proposed that amalgamation was used before European contact. Mercury is widely used for modern quimbalete gold-processing (Cánepa, 2005: 49) and, therefore, it is logical that mercury was also used for gold-processing in the past (Brooks et al., 2009).

10Alternatives to mercury, though not widely used, include the use of plant juices in Colombia (Castillo Espítia, 2007: 305) and Perú (Larco Hoyle, 2001: 138). Gold-bearing sands were dried, tossed into the air, which left a gold concentrate (Petersen, 1970: 26). Carpet and donkey skins, reminiscent of the Golden Fleece, are placed in the sluices and streams to trap the fine-grained gold in some parts of Perú (Walter Sologuren, geologist, Compañía Minera Poderosa, S. A., Lima, oral communication, October 31, 2008); however, the gold may then be further concentrated using mercury.

3. Fabrication and mercury content

11In the central Andean metalworking area, which includes Colombia, Ecuador, and Perú, gold objects were more commonly shaped by hammering rather than by casting (Lechtman, 1988; Plazas, 2007). For example, anvils, gold foils, and stone hammers were found at a site in south-central Perú that dates to 1490 ± 100 B. C. (Grossman, 1972); however, the gold foils were not analyzed.

12Using spectrographic analysis, Petersen (1970: 25, 57) provided analytical data on native gold from several alluvial occurrences in Perú and a Chimú gold lip ornament, respectively. If the ornament had been hammered directly from native gold, then the mercury content of the native gold and the fabricated piece should be similar. However, there is a significant decrease in the mercury content of the fabricated Chimú ornament (<100 ppm), compared to that of the native gold samples (1 000-10 000 ppm) that can only be explained by volatilization of the mercury.

13Petersen’s (1970: 25) analyses would ideally provide the background mercury content of the native gold; however, the mercury content may be the result of contamination from: 1) Mercury released from widespread use of mercury for Spanish Colonial mining; 2) Mercury released by ancient Andeans for gold amalgamation for several thousands of years (Brooks et al., 2009); 3) Detrital native mercury released over millions of years; or 4) Regional volcanism. Therefore, it is difficult to establish background mercury content using placer nugget composition and it is not possible to date the mercury enrichment in the nuggets.

4. Analytical techniques

14Because of the proximity of gold and mercury on the Periodic Chart and the low levels of mercury in the gold, neither SEM-EDX (Ramage & Craddock, 2000: 103-107) nor XRF (Aldenderfer et al., 2008) would have provided sufficient analytical discrimination to detect the potentially low levels of mercury in the gold foils. In another study, elements in concentrations of less than 100 ppm in gold were detected by SEM-EDS; however, these elements were not reported (Rehren & Temme, 1994). Therefore, replication of Petersen’s sampling and ICP analysis will provide more precise data on the mercury content of nugget gold, amalgam, worked gold, and the mercury content of the end-product of the refogado process, the charapita, for comparison and interpretation.

15On table 1, analyses of amalgam, refogado gold, a gold nugget and three charapitas of gold are presented. In order to establish the background mercury and other elemental content of gold-mineralized rock samples directly from the outcrop, samples from several mines in Perú were analyzed (table 2). The samples are from Pataz, in northern Perú, which is known to have produced placer gold since ancient time (Schreiber et al., 1990; Haeberlin et al., 2004) and the other is from the Costa Sur Media, Perú (Cánepa, 2005). No visible gold was present in either sample.

Table 1 – ICP analyses of gold from Perú and Venezuela

PEa

PEr

PEc1

PEc2

PEc3

VZn

VZa

VZr

Ag

1 130

818

38 700

>100

>100

2 470

2 510

2 000

Al

339

120

153

1040

948

819

177

582

As

8

4

28

2,3

2,0

3

5

7

Au

368 000

368 000

300 000

>400

>400

296 000

513 000

742 000

B

228

163

<20

1555

1425

110

186

221

Ba

4

0

7

17

12

0

2

2

Bi

0

0

<3

0

0

0

0

7

Ca

43

35

<100

394

344

24

47

54

Cd

0

0

<0,5

0

0

0

0

0

Co

1

1

<1

0

0

0

0

0

Cr

1

1

<1

3

3

1

3

3

Cu

7

6

126

>1 000

>1 000

1 150

4 580

280

Fe

215

118

338

974

656

1 360

94

239

Hg

312 000

822

8,3

37

1,2

3 690

248 000

96 400

K

7

0

<100

395

243

1

1

0

La

2

0

3

2

1

0

1

2

Mg

9

34

<100

1

1

30

36

27

Mn

1

2

3

1

1

1

3

1

Mo

0

0

<1

1

1

0

0

3

Na

9

8

184

>100

>100

9

8

12

Ni

3

6

3

3

5

5

4

6

P

27

7

16

1

1

5

7

21

Pb

83

514

<3

1

1

5

58

61

S

9

5

<500

10

10

18

8

29

Sb

9

16

<3

1

14

3

7

9

Se

1

1

<5

3

7

0

0

4

Sr

5

13

44

4

2

12

7

12

Th

2

2

<3

1

1

0

1

2

Ti

38

11

<100

6

4

36

2

8

Tl

0

0

<5

1

1

0

0

0

U

0

0

<8

1

1

0

1

1

V

1

0

<1

1

1

3

1

1

W

2

2

<2

1

1

1

2

2

Zn

4

2

<1

2

2

3

3

6

PEa: unburned amalgam, Las Quebradas mining camp, Huepethue, Madre de Dios, Perú

PEr: refogado gold after two burns in the field at Las Quebradas

PEc1-3: charapitas: 1) From a gold shop in Puerto Maldonado, Madre de Dios, Perú; 2-3) From a gold dealer in Lima, also from Madre de Dios

No gold nuggets were available in the Madre de Dios area

VZn: gold nugget from the km 88 mining district, Estado Bolívar, Venezuela (Brooks et al., 1995)

VZa: unburned amalgam from km 88

VZr: gold that has been burned (refogado) once in a gold shop in km 88

Inductively Coupled Plasma analysis, in parts per million (ppm), by American Assay Laboratories, Sparks, NV

Table 2 – ICP analyses of gold ore from mines at Nazca and Pataz, Perú

NZ

PTZw

PTZo

Ag

59

8

51

Al

6 350

4 910

4 070

As

1 238

3 900

13 400

Au

7

23

26

B

<20

<20

<20

Ba

5

27

19

Bi

51

3

<3

Ca

1 333

17 400

7 300

Cd

3

10

54

Co

700

9

11

Cr

15

11

12

Cu

76 439

78

120

Fe

239 111

63 628

176 806

Hg

0,373

0,098

0,404

K

244

2 680

2390

La

2

6

3

Mg

3 636

1 776

2 700

Mn

724

392

1 030

Mo

3

12

11

Na

521

435

208

Ni

65

6

11

P

250

204

249

Pb

365

939

17 983

S

1 170

48 122

164 783

Sb

<3

<3

19

Se

<5

<5

<5

Sr

12

15

8

Th

<3

<3

<3

Ti

<100

<100

<100

Tl

<5

<5

<5

U

<8

<8

<8

V

23

<1

<1

W

<2

19

<2

Zn

189

1 120

5 890

NZ: outcrop sample, Nazca, Costa Sur Media, Perú and has not been in contact with mercury

PTZw: outcrop sample, Pataz, La Libertad, northern Perú and has not been in contact with mercury

PTZo: ore concentrate, also from Pataz

Inductively Coupled Plasma analysis, in parts per million (ppm), by American Assay Laboratories, Sparks, NV

16These crushed samples were also panned in order to obtain a gold concentrate with which to determine background elemental composition of the gold; however, the samples contained very fine-grained gold that would not yield a concentrate. The fine-grained gold cannot break the surface tension of the water, clings to the lower surface of the water, and is washed out of the gold pan (West, 1974: 21; Oyler, 1997). Background mercury content can be inferred from microprobe analyses of placer gold which show that the cores of placer gold do not contain mercury even though there is an amalgam rim of contaminant mercury released from placer mining (McCready et al., 2003).

17On table 3 are compiled data on the mercury and elemental content of three samples of pre-contact gold foils from northern Perú and four samples of pre-contact gold foils from Colombia. These samples were analyzed by ICP in order to establish the mercury content of pre-contact gold and to refine the analytical data on the composition of pre-contact gold provided by Petersen (1970: 57).

Table 3 – ICP analyses of pre-contact gold from Perú and Colombia

MNA1

MNA2

MNA3

CP1

CP2a

CP2b

CP3

Ag

28 500

41 300

32 700

44 972

26 562

16 062

6 382

Al

645

135

121

118

354

308

179

As

14 800

5 900

15 500

1

1

1

1

Au

190 000

208 000

178 000

332 947

897 992

896 677

329 997

B

301

117

92

200

200

200

200

Ba

11

3

4

1

1

1

1

Bi

3

165

95

7

1

1

1

Ca

1 500

1 260

983

139

239

186

1 214

Cd

<0,5

<0,5

<0,5

0,02

0,03

0,11

0,02

Co

14

4

56

1

1

1

1

Cr

<1

<1

<1

0,5

1,9

1,0

0,5

Cu

665 000

700 000

800 000

610 337

38 500

49 400

659 461

Fe

93 817

<100

<100

111

418

263

103

Hg

13,8

12,3

13,9

1

2

9

12

K

413

202

<100

134

129

130

312

La

<1

<1

<1

1

1

1

1

Mg

323

336

<100

12

28

21

26

Mn

<2

4

1028

0,2

3,2

2,0

0,5

Mo

<1

<1

10

1

1

1

1

Na

3 180

2740

753

877

965

1145

1675

Ni

280

208

322

4

4

3

2

P

24

<10

<10

5

5

5

1 675

Pb

114

126

107

7,1

12,6

4,1

8,5

Pt

na

na

na

46

12

3

43

S

2 190

<500

<500

58

14

93

229

Sb

59

120

111

5

12

9

6

Se

40

48

46

2

2

2

2

Sr

8

17

8

0,7

1,1

0,8

5,8

Th

5

8

5

1

1

1

1

Ti

<100

<100

<100

0,7

3,1

3,4

2,1

Tl

<5

<5

<5

2

1

1

1

U

<8

<8

<8

2

2

2

2

V

47

26

24

2,1

0,4

0,6

2,9

W

<2

<2

<2

1

5

4

1

Zn

51

13

10

11

22

14

7

MNA1-3: Middle Sicán (A. D. 900-1200) gold foil samples, Huaca de la Ventana, Lambayeque, Perú (Carcedo Muro & Shimada, 1985: 62); obtained from Dra. Carmen Arellano Hoffman, Museo Nacional de Arqueología, Antropología e Historia del Perú, Lima

CP1: fragment of a pre-contact nose ornament, location unknown

CP2a-b: pre-contact beads, Calima region, 200 B. C.-A. D. 1000, southwestern Colombia

CP3: pre-contact disc, Tairona region, A. D. 800-1500, northeastern Colombia

Samples were identified by and obtained from Dra. Clemencia Plazas, Universidad Nacional de Colombia, Bogotá

Inductively Coupled Plasma analysis, in parts per million (ppm) by American Assay Laboratories, Sparks, NV —indicates at or below detection, na— not analyzed

18The low levels of mercury in the gold foils from Perú and Colombia (table 3), are consistent with Craddock’s (2000: 233) proposal that if mercury had been used to amalgamate gold in the ancient world, then low levels of mercury would be detected in the gold.

5. Contamination

19Analyses of 872 samples from 364 ancient Peruvian gold artifacts, with surficial cinnabar powder, from a pre-contact burial showed that the mercury content ranged from 100 000 to 300 000 ppm (Gordus & Shimada, 1995). They concluded that the mercury content was contaminant-mercury from the powdered cinnabar and was not an integral part of the gold. The mercury content of the pre-contact gold foil samples analyzed for this study is far below the contaminant-mercury range of 100 000-300 000 ppm and is consistent with, and comparable to, the amount of mercury present in charapita gold from the modern amalgamation- refogado process.

20The mercury content of the Chimú artifact, <100 ppm, analyzed by Petersen (1970: 57) is also far below the contaminant range established by Gordus & Shimada (1995). Microprobe analyses of placer gold indicate that the native mercury released during small-scale mining in 18th century Argentina is not pervasive and is limited to the rim of the placer gold grain (McCready et al., 2003). This indicates that any tomb-related cinnabar contamination would have been similarly limited to the surface of the gold artifact and would have been removed during cleaning at the respective museums.

6. Interpretation

21Craddock’s (2000: 233) proposal was tested and has a modern analog in that refogado gold, from Madre de Dios, that was amalgamated and then burned twice in the field, with a third and final burn at the gold shop, resulted in charapitas of gold with an average mercury content of 15 ppm. The ICP analytical data from this field study and other referenced analytical data, including INAA analysis of a pre-contact gold foil from Ecuador, are compiled on table 4. The low mercury content of these samples, with an average of 9 ppm mercury, is consistent with amalgamation and burning the gold samples in the ancient Andes as is done today at small-scale mines in Perú, Colombia and Ecuador. The low mercury content (<100 ppm) of the Chimú sample analyzed by Petersen (1970: 57) is also consistent with this interpretation.

Table 4 – Summary of mercury content

Host rock and ore

Native Au nugget, river

Unburned amalgam

Refogado or burned gold

Pre-contact gold

0,373 ppm Hg1, ore,

Nazca, Perú

(table 2, this study)

3 690 ppm Hg1,

km 88, Venezuela

(table 1, this study)

312 000 ppm Hg1,

Huepethue,

Madre de Dios, Perú

(table 1, this study)

15 ppm average Hg1, final gold shop burn, Puerto Maldonado, Perú, 3 samples

(table 1, this study)

12,3 to 13,9 ppm Hg1,

Sicán,

A. D. 900-1200,

Lambayeque, Perú,

3 samples

(table 3, this study)

0,098 ppm Hg1,

host rock, 0.404 ppm Hg1, ore,

Pataz, Perú

(table 2, this study)

5 000 ppm Hg

average,

500 analyses,

Argentina

(Márquez-Zavalía et al., 2004)

248 000 ppm Hg1, km 88, Venezuela

(table 1, this study)

822 ppm Hg1,

two burns, Huepethue, Madre de Dios, Perú

(table 1, this study)

1-12 ppm Hg1,

200 B. C.-A. D. 1500,

Colombia,

4 samples

(table 3, this study)

2-3 ppm Hg, ore,

Pierina, Perú, (M. Merry, manager, Barrick, written communication, oct. 24, 2008)

765-5 350 ppm Hg, placer nuggets, Canada (Boyle, 1979: 127)

96 400 ppm Hg1,

single burn,

km 88, Venezuela

(table 1, this study)

15 ppm Hg2,

Early Tolita,

918-780 B. C.,

Las Balsas, Ecuador,

1 sample

(Valdez et al., 2005)

25 ppm Hg,

ore,

Carlin, Nevada, (Radtke et al., 1972)

1 000-10 000 ppm Hg3,

Sandia, Perú (Petersen, 1970: 47)

<100 ppm Hg3,

Chimú,

A. D. 800-1400,

Piura, Perú,

1 sample

(Petersen, 1970: 57)

1 Inductively Coupled Plasma (ICP) analysis, in parts per million (ppm), by American Assay Laboratories, Sparks, NV. Complete analyses are given on tables 1-3, this study

2 Instrumental neutron activation analysis (INAA)

3 Spectrographic chemical analysis

22The decrease in mercury content from 1,000 to 10,000 ppm mercury in native gold nuggets from Perú (Petersen, 1970: 25) to 12,3-13,9 ppm in the Sicán samples from this study, or from ~300 000 ppm in unburned amalgam to 8 ppm after three burns as indicated by the gold shop sample, can be explained by re-interpretation of the technique shown in the Benzoni woodcut (Petersen, 1970: 84).

23Even though the Benzoni woodcut dates to the late 1500s, it provides graphic detail on the final stages of gold processing in the New World. It is commonly assumed that the blowpipes or sopletes were used to blow on the coals at the base of the flames; however, this would not beautify the gold in the crucible, only melt it. As proposed herein, the sopletes were used as blowpipes to focus the flame directly onto the gold in the crucible. This technique would have produced a very hot, focused flame, ~1 500 °C, just beyond the visible portion of the flame and would have produced gold that is very bright and reflective (Hurlbut, 1971: 205). This would have added to the aesthetic appeal of gold which, in the ancient Andes, was believed to be tears from the sun or lágrimas del sol.

24Ancient Colombian metallurgists routinely worked platinum using only a soplete, yet platinum was not smelted in Europe until the late 1800s (Bray, 1988). The soplete was used in ancient Colombia to achieve the temperatures needed to sinter gold, which melts at >1 000 °C, and platinum, which melts at >1 700 °C (Petersen, 1970: 55, 63). And, in an ancient storehouse near Cusco, Perú, copper and ceramic sopletes of many different sizes were found (Petersen, 1970: 37).

25The low mercury content of Petersen’s Chimú gold sample (Petersen, 1970: 57) is consistent with volatilization of the mercury by burning the gold. Today, this refogado process is used by many small-scale miners in Perú, where a gas torch, also referred to as a soplete, is used to volatilize the mercury and improve the appearance of the gold (Brooks et al., 2007: 15). The refogado process is widely used by small-scale miners in many other regions of South America.

Conclusion

26The use of mercury for small-scale gold mining in the ancient Andes is consistent with a global chronology of cinnabar mining and retorting. Given, that cyanide methods for gold recovery were not used until the late 1880s, then amalgamation technology explains how gold foils were produced in the ancient Andes. The availability of cinnabar and mercury in the region, specifically at Huancavelica where pre-contact mining took place and retorting vessels have been found, also supports this conclusion. The presence of ancient quimbaletes and quartz vein waste indicates that mercury was used then, as it is used now, to concentrate fine-grained gold. Re-consideration of the ancient soplete method to direct a hot flame onto the amalgam to volatilize the mercury and beautify the gold has a modern analogy in the use of the gas torch.

27Results of this study that show that the multi-step refogado process used by small-scale miners in modern Perú is very efficient in reducing the mercury content of unburned amalgam from approximately 300 000 ppm in the field to approximately 15 ppm after the final burn in the gold shop. The quantity of mercury in the modern charapitas is comparable to the low mercury content of ancient gold foils from Perú, Colombia and Ecuador and is consistent with the interpretation that a similar amalgamation-refogado process was used in the ancient Andes for gold mining and production before european contact.

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William E. Brooks, Gabriela Schwörbel et Luis Enrique Castillo, « Amalgamation and small-scale gold mining in the ancient Andes »Bulletin de l'Institut français d'études andines, 40 (2) | 2011, 333-347.

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William E. Brooks, Gabriela Schwörbel et Luis Enrique Castillo, « Amalgamation and small-scale gold mining in the ancient Andes »Bulletin de l'Institut français d'études andines [En ligne], 40 (2) | 2011, mis en ligne le 01 février 2012, consulté le 17 avril 2024. URL : http://journals.openedition.org/bifea/1471 ; DOI : https://doi.org/10.4000/bifea.1471

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William E. Brooks

Geologist, Reston, VA 20191. E-mail: webgeology@aim.com

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Gabriela Schwörbel

Museo Nacional de Arqueología, Lima, Perú. E-mail: gschworbel@mcultura.gob.pe

Luis Enrique Castillo

Museo Nacional de Arqueología, Lima, Perú. E-mail: lcastillo@mcultura.gob.pe

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