Key Data Set Information | |
Location | NMG-CN |
Reference year | 2012 |
Name |
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Use advice for data set | Users of this lifecycle inventory data set for average rare earth oxide from Bayan Obo should incorporate the data within an attributional modeling framework for assessing environmental impacts, preferably using the CML2002 method (CML 2015) or similar. Users should consider the eleven mid-point impact categories selected to understand the full environmental impact. Additionally, note that this data set is constructed to reflect average conditions and does not account for specific REO production chains or individual methods involved in metal refining. Those seeking detailed insights into particular REO production chains or metal refining should refer to supporting information S1 on the Web, which includes in-depth descriptions of the processes, LCI, and modeling data used. |
Technical purpose of product or process | The rare earth oxides (REO) produced from the Bayan Obo mine are utilized for a wide range of applications, including the manufacture of magnets, catalysts, alloys, glass, and ceramics. These oxides are key in the production of high-tech devices such as smartphones, computer hard drives, and electric vehicles due to their unique magnetic, luminescent, and electrochemical properties. Specifically, the 1 kg REO at 100% purity described in the lifecycle inventory is typically used in applications requiring high levels of purity, such as advanced electronics, research, and specialized industrial processes. |
Classification |
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General comment on data set | The rare earth oxides (REO) produced from the Bayan Obo mine are utilized for a wide range of applications, including the manufacture of magnets, catalysts, alloys, glass, and ceramics. These oxides are key in the production of high-tech devices such as smartphones, computer hard drives, and electric vehicles due to their unique magnetic, luminescent, and electrochemical properties. Specifically, the 1 kg REO at 100% purity described in the lifecycle inventory is typically used in applications requiring high levels of purity, such as advanced electronics, research, and specialized industrial processes. |
Copyright | No |
Owner of data set | |
Quantitative reference | |
Reference flow(s) |
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Functional Unit | 1 kg REO at 100% purity |
Time representativeness | |
Data set valid until | 2014 |
Technological representativeness | |
Technology description including background system | The LCA model was constructed using eBalance Professional 4.7 (IT & Knowledge for Environment, Sichuan, China). We chose to construct an attributional model because it aligned more with the aims of our research, although we adopted a contributional approach to the scenarios sensitivity analysis. Life cycle environmental impacts were assessed using the CML2002 method (CML 2015). Eleven mid-point impact categories were selected based on suggested LCA practice (Hauschild et al. 2013) and previously identified environmental harms in the industry. |
Flow diagram(s) or picture(s) |
LCI method and allocation | |||||
Type of data set | Unit process, single operation | ||||
LCI Method Principle | Attributional | ||||
Deviation from LCI method principle / explanations | None | ||||
Deviations from LCI method approaches / explanations | The LCI is first described individually for the three REO production chains, followed by a section on metal refining. Aggregated modeling data are also included for the industry average REO production in tabular form (Tables 1, 2, and 3). A more in-depth description of the processes, LCI, and modeling data used for the entire study (including metal refining) is available in section 1 in supporting information S1 on the Web. | ||||
Deviation from modelling constants / explanations | None | ||||
Data sources, treatment and representativeness | |||||
Deviation from data cut-off and completeness principles / explanations | None | ||||
Deviation from data selection and combination principles / explanations | None | ||||
Deviation from data treatment and extrapolations principles / explanations | None | ||||
Data source(s) used for this data set | |||||
Completeness | |||||
Completeness of product model | No statement | ||||
Validation | |||||
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Data generator | |
Data set generator / modeller | |
Data entry by | |
Time stamp (last saved) | 2023-12-24T16:07:30+08:00 |
Publication and ownership | |
UUID | 91efc4a4-ad78-48c9-bc70-ea3850e4be5b |
Date of last revision | 2024-04-20T15:07:23.497160+08:00 |
Data set version | 00.01.005 |
Permanent data set URI | https://lcadata.tiangong.world/showProcess.xhtml?uuid=91efc4a4-ad78-48c9-bc70-ea3850e4be5b&version=01.00.000&stock=TianGong |
Owner of data set | |
Copyright | No |
License type | Free of charge for all users and uses |
Inputs
Type of flow | Classification | Flow | Location | Mean amount | Resulting amount | Minimum amount | Maximum amount | ||
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Product flow | Materials production / Inorganic chemicals | 33.93 kg | 33.93 kg | ||||||
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Elementary flow | Emissions / Emissions to water / Emissions to water, unspecified | 0.07 kg | 0.07 kg | ||||||
Product flow | Materials production / Inorganic chemicals | 0.15 kg | 0.15 kg | ||||||
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Elementary flow | Emissions / Emissions to water / Emissions to water, unspecified | 1.22 kg | 1.22 kg | ||||||
Elementary flow | Emissions / Emissions to water / Emissions to water, unspecified | 3.86 kg | 3.86 kg | ||||||
Elementary flow | Emissions / Emissions to air / Emissions to air, unspecified | 0.01 kg | 0.01 kg | ||||||
Product flow | Energy carriers and technologies / Crude oil based fuels | 0.04 kg | 0.04 kg | ||||||
Product flow | Materials production / Inorganic chemicals | 8.46 kg | 8.46 kg | ||||||
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Product flow | Materials production / Metals and semimetals | 0.55 kg | 0.55 kg | ||||||
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2.43 | 2.43 | ||||||||
Product flow | Materials production / Inorganic chemicals | 0.13 kg | 0.13 kg | ||||||
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Product flow | Materials production / Inorganic chemicals | 1.6 kg | 1.6 kg | ||||||
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Product flow | Materials production / Inorganic chemicals | 1.05 kg | 1.05 kg | ||||||
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Product flow | Energy carriers and technologies / Heat and steam | 4.43 MJ | 4.43 MJ | ||||||
Product flow | Materials production / Inorganic chemicals | 0.041 kg | 0.041 kg | ||||||
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Product flow | Energy carriers and technologies / Electricity | 25.164 MJ | 25.164 MJ | ||||||
Product flow | Energy carriers and technologies / Hard coal based fuels | 56.66 kg | 56.66 kg | ||||||
Product flow | Materials production / Other mineralic materials | 306.21 kg | 306.21 kg |
Outputs
Type of flow | Classification | Flow | Location | Mean amount | Resulting amount | Minimum amount | Maximum amount | ||
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Product flow | Materials production / Raw materials | 1.0 kg | 1.0 kg | ||||||
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Product flow | Materials production / Inorganic chemicals | 1.85 kg | 1.85 kg | ||||||
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Elementary flow | Emissions / Emissions to water / Emissions to water, unspecified (long-term) | 0.171 kg | 0.171 kg | ||||||
Elementary flow | Emissions / Emissions to air / Emissions to air, unspecified | 1.01E-5 kBq | 1.01E-5 kBq | ||||||
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Elementary flow | Emissions / Emissions to air / Emissions to air, unspecified | 0.003 kg | 0.003 kg | ||||||
Elementary flow | Emissions / Emissions to air / Emissions to air, unspecified | 0.112 kg | 0.112 kg | ||||||
Elementary flow | Emissions / Emissions to air / Emissions to air, unspecified | 0.017 kg | 0.017 kg | ||||||
Elementary flow | Emissions / Emissions to air / Emissions to air, unspecified | 7.6E-5 kBq | 7.6E-5 kBq | ||||||
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Elementary flow | Emissions / Emissions to air / Emissions to air, unspecified | 2.04 kg | 2.04 kg | ||||||
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