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Fuel Efficiency of Ancient Copper Alloys: Theoretical Melting Thermodynamics of Copper, Tin and Arsenical Copper and Timber Conservation in the Bronze Age Levant*

机译:古代铜合金的燃料效率:铜,锡和砷铜的理论熔化热力学,青铜时代利维特铜和木材保守

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The melting of pure or alloyed copper, tin and arsenical copper ingots or recycled objects was a drain on the timber and dung fuel resources of many cultures. This paper suggests formulae grounded in thermodynamic principles in an attempt to estimate the energy requirements necessary to melt copper alloys common to both Old and New World cultures, with the goal of identifying consumption and conservation patterns. It has been suggested that tin bronze metallurgy was first adopted in the Levant during the Early Bronze Age (EB) IV, at the onset of the Late Holocene climate episode (c.2300-2000 bc), becoming the most desired alloy by the Middle Bronze Age (MB) II (2000-1530 bc) due to the ease of melting tin. To test this hypothesis, the formulae are applied here to all published Levantine EB IV - MB II copper alloys. Fuel conservation rates are proposed based on the thermodynamic formulae. Tin bronze is demonstrably more fuel efficient than pure copper. Due to the inherent difficulties in predicting the behaviour of arsenical copper compounds, it is suggested that melting experiments with representative alloys are conducted to further test and refine these energy relationships.
机译:纯净或合金化铜,锡和砷铜锭或再循环物体的熔化是在许多文化的木材和粪便燃料资源上排水。本文建议在热力学原理中地接地的公式,试图估算融化铜合金所需的能量要求,以确定消费和保护模式的目标。有人建议,在早期青铜时代(EB)IV期间,首次在黎凡队中采用锡铜冶金,在全新世气候发作(C.2300-2000 BC)的发病中,成为中间最受欢迎的合金青铜年龄(MB)II(2000-1530 BC)由于熔化锡。为了测试这一假设,本发明的所有已发表的左丹丁EB IV-MB II铜合金应用了公式。基于热力学公式提出了燃料节约速率。锡青铜比纯铜更具燃料效率。由于预测砷铜化合物的行为的固有困难,建议进行具有代表性合金的熔化实验以进一步测试并优化这些能量关系。

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