21 to 30 of 61 Results
May 27, 2022 -
Replication Data for: Use of ladle furnace slag containing heavy metals as a binding material in civil engineering
Tabular Data - 5.0 KB - 3 Variables, 303 Observations - UNF:6:paREQnQ9zM9TE8utC19mNw==
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May 27, 2022 -
Replication Data for: Use of ladle furnace slag containing heavy metals as a binding material in civil engineering
JPEG Image - 756.0 KB -
MD5: 67746249a73637cf153ba0192d0b9e81
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May 27, 2022 -
Replication Data for: Use of ladle furnace slag containing heavy metals as a binding material in civil engineering
JPEG Image - 734.5 KB -
MD5: 0cf46d931e5572661520779566709697
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May 27, 2022 -
Replication Data for: Use of ladle furnace slag containing heavy metals as a binding material in civil engineering
JPEG Image - 681.5 KB -
MD5: 7375f60d6f5b7240fa8a73fead8db4c9
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May 27, 2022 -
Replication Data for: Use of ladle furnace slag containing heavy metals as a binding material in civil engineering
Tabular Data - 5.0 KB - 3 Variables, 303 Observations - UNF:6:dAbasCjknr6qIb4pkg+n/A==
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May 25, 2022 - (Research Project) Sustainable Stabilisation Of Soft Clay Using Industry By-Products/Wastes
Li, Wentao; Ni, Pengpeng; Yi, Yaolin, 2022, "Replication Data for: Comparison of Reactive Magnesia, Quick Lime, and Ordinary Portland Cement for Stabilization/Solidification of Heavy Metal-Contaminated Soils", https://doi.org/10.21979/N9/XBHJJT, DR-NTU (Data), V1, UNF:6:VEKpvglpi4uph0O13LvXTQ== [fileUNF]
This dataset contains the data and figures presented in the work "Comparison of Reactive Magnesia, Quick Lime, and Ordinary Portland Cement for Stabilization/Solidification of Heavy Metal-Contaminated Soils" |
Plain Text - 4.8 KB -
MD5: 428187192f402008c6ab1fc609fe49bd
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Tabular Data - 76.9 KB - 9 Variables, 1880 Observations - UNF:6:rZOr7YobOa9F+4mmc5esmg==
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Tabular Data - 798.9 KB - 15 Variables, 5224 Observations - UNF:6:73NSbg5fXejbeU8wAxRj+A==
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Tabular Data - 390 B - 6 Variables, 11 Observations - UNF:6:jdit0m9Ueg1iqLhKZMhDAQ==
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