28 research outputs found
Toward a Comprehensive Approach to the Collection and Analysis of Pica Substances, with Emphasis on Geophagic Materials
Pica, the craving and subsequent consumption of non-food substances such as earth, charcoal, and raw starch, has been an enigma for more than 2000 years. Currently, there are little available data for testing major hypotheses about pica because of methodological limitations and lack of attention to the problem.In this paper we critically review procedures and guidelines for interviews and sample collection that are appropriate for a wide variety of pica substances. In addition, we outline methodologies for the physical, mineralogical, and chemical characterization of these substances, with particular focus on geophagic soils and clays. Many of these methods are standard procedures in anthropological, soil, or nutritional sciences, but have rarely or never been applied to the study of pica.Physical properties of geophagic materials including color, particle size distribution, consistency and dispersion/flocculation (coagulation) should be assessed by appropriate methods. Quantitative mineralogical analyses by X-ray diffraction should be made on bulk material as well as on separated clay fractions, and the various clay minerals should be characterized by a variety of supplementary tests. Concentrations of minerals should be determined using X-ray fluorescence for non-food substances and inductively coupled plasma-atomic emission spectroscopy for food-like substances. pH, salt content, cation exchange capacity, organic carbon content and labile forms of iron oxide should also be determined. Finally, analyses relating to biological interactions are recommended, including determination of the bioavailability of nutrients and other bioactive components from pica substances, as well as their detoxification capacities and parasitological profiles.This is the first review of appropriate methodologies for the study of human pica. The comprehensive and multi-disciplinary approach to the collection and analysis of pica substances detailed here is a necessary preliminary step to understanding the nutritional enigma of non-food consumption
Extraordinary Biomass-Burning Episode and Impact Winter Triggered by the Younger Dryas Cosmic Impact ∼12,800 Years Ago. 2. Lake, Marine, and Terrestrial Sediments
Part 1 of this study investigated evidence of biomass burning in global ice records, and here we continue to test the
hypothesis that an impact event at the Younger Dryas boundary (YDB) caused an anomalously intense episode of
biomass burning at ∼12.8 ka on a multicontinental scale (North and South America, Europe, and Asia). Quantitative
analyses of charcoal and soot records from 152 lakes, marine cores, and terrestrial sequences reveal a major peak in
biomass burning at the Younger Dryas (YD) onset that appears to be the highest during the latest Quaternary. For the
Cretaceous-Tertiary boundary (K-Pg) impact event, concentrations of soot were previously utilized to estimate the
global amount of biomass burned, and similar measurements suggest that wildfires at the YD onset rapidly consumed
∼10 million km2 of Earth’s surface, or ∼9% of Earth’s biomass, considerably more than for the K-Pg impact. Bayesian
analyses and age regressions demonstrate that ages for YDB peaks in charcoal and soot across four continents are
synchronous with the ages of an abundance peak in platinum in the Greenland Ice Sheet Project 2 (GISP2) ice core and
of the YDB impact event (12,835–12,735 cal BP). Thus, existing evidence indicates that the YDB impact event caused
an anomalously large episode of biomass burning, resulting in extensive atmospheric soot/dust loading that triggered
an “impact winter.” This, in turn, triggered abrupt YD cooling and other climate changes, reinforced by climatic
feedback mechanisms, including Arctic sea ice expansion, rerouting of North American continental runoff, and subsequent ocean circulation changes
Mixed convection heat transfer from discrete heat sources mounted in a rectangular duct
Experiments and supporting 3-D numerical computations have been performed for water and FC-77 to investigate mixed convection heat transfer from a four-row, in-line array of twelve, square heat sources which are flush mounted to the lower wall of a horizontal, rectangular channel. The experimental data encompass heat transfer regimes characterized by natural convection, mixed convection, laminar forced convection, and the initiation of transition to turbulence. The variation of the row-average Nusselt number with Reynolds number exhibits a minimum, suggesting that, due to buoyancy-induced flow, heat transfer may be enhanced and pumping power requirements may be reduced by reducing the flow rate. Experiments and supporting 3-D numerical computations have also been performed for FC-77 and a heat source array whose surface area is augmented by the use of longitudinal fins. The experimental data indicate that the first heater row is forced convection dominated, while data for rows 2-4 encompass heat transfer regimes characterized by natural convection (row 4 only), mixed convection, and transition to turbulence. Although the variation of the row-average Nusselt number with Reynolds number for the flush mounted results exhibits a minimum, the row-average Nusselt number for the finned results decreases monotonically with decreasing Reynolds number for rows 1-3, and becomes nearly independent of Reynolds number for row 4. Increasing the Rayleigh number, for the unfinned and finned arrays, enhances heat transfer and increases the Reynolds number range for which enhancement occurs. Appropriate scaling parameters are introduced for both geometric configurations to characterize mixed convection heat transfer from an array of discrete sources
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Extraordinary biomass-burning episode and impact winter triggered by the younger dryas cosmic impact ∼12,800 years ago. 1. Ice cores and glaciers
The Younger Dryas boundary (YDB) cosmic-impact hypothesis is based on considerable evidence that Earth collided with fragments of a disintegrating ≥100-km-diameter comet, the remnants of which persist within the inner solar system ∼12,800 y later. Evidence suggests that the YDB cosmic impact triggered an “impact winter” and the subsequent Younger Dryas (YD) climate episode, biomass burning, late Pleistocene megafaunal extinctions, and human cultural shifts and population declines. The cosmic impact deposited anomalously high concentrations of platinum over much of the Northern Hemisphere, as recorded at 26 YDB sites at the YD onset, including the Greenland Ice Sheet Project 2 ice core, in which platinum deposition spans ∼21 y (∼12,836–12,815 cal BP). The YD onset also exhibits increased dust concentrations, synchronous with the onset of a remarkably high peak in ammonium, a biomass-burning aerosol. In four ice-core sequences from Greenland, Antarctica, and Russia, similar anomalous peaks in other combustion aerosols occur, including nitrate, oxalate, acetate, and formate, reflecting one of the largest biomass-burning episodes in more than 120,000 y. In support of widespread wildfires, the perturbations in CO2 records from Taylor Glacier, Antarctica, suggest that biomass burning at the YD onset may have consumed ∼10 million km2, or ∼9% of Earth’s terrestrial biomass. The ice record is consistent with YDB impact theory that extensive impact-related biomass burning triggered the abrupt onset of an impact winter, which led, through climatic feedbacks, to the anomalous YD climate episode
Extraordinary biomass-burning episode and impact winter triggered by the younger dryas cosmic impact ∼12,800 years ago. 2. Lake, marine, and terrestrial sediments
Part 1 of this study investigated evidence of biomass burning in global ice records, and here we continue to test the hypothesis that an impact event at the Younger Dryas boundary (YDB) caused an anomalously intense episode of biomass burning at ∼12.8 ka on a multicontinental scale (North and South America, Europe, and Asia). Quantitative analyses of charcoal and soot records from 152 lakes, marine cores, and terrestrial sequences reveal a major peak in biomass burning at the Younger Dryas (YD) onset that appears to be the highest during the latest Quaternary. For the Cretaceous-Tertiary boundary (K-Pg) impact event, concentrations of soot were previously utilized to estimate the global amount of biomass burned, and similar measurements suggest that wildfires at the YD onset rapidly consumed ∼10 million km of Earth’s surface, or ∼9% of Earth’s biomass, considerably more than for the K-Pg impact. Bayesian analyses and age regressions demonstrate that ages for YDB peaks in charcoal and soot across four continents are synchronous with the ages of an abundance peak in platinum in the Greenland Ice Sheet Project 2 (GISP2) ice core and of the YDB impact event (12,835–12,735 cal BP). Thus, existing evidence indicates that the YDB impact event caused an anomalously large episode of biomass burning, resulting in extensive atmospheric soot/dust loading that triggered an “impact winter.” This, in turn, triggered abrupt YD cooling and other climate changes, reinforced by climatic feedback mechanisms, including Arctic sea ice expansion, rerouting of North American continental runoff, and subsequent ocean circulation changes.