海水淡水化排水からマグネシウムを高効率で回収ー液体金属スズを使って淡水と「掘らない資源」を回収する新技術ー

2026-08-27 東京科学大学

東京科学大学の研究グループは、海水淡水化プラントから排出される濃縮塩水(ブライン)から、液体金属スズを利用して淡水とマグネシウム資源を同時に回収する技術を開発した。ブラインを高温の液体スズに直接接触させた後、10⁻³ Pa級の高真空下で加熱することで、スズに取り込まれた塩素や硫黄を気体として除去。その後冷却することでマグネシウムを含む析出物を回収し、主要な結晶相として酸化マグネシウム(MgO)を確認した。マグネシウムの回収率は99%以上と推定され、元のブラインに対して最大約280倍まで濃縮できた。従来法に比べ薬品使用量や廃棄物の削減が期待でき、太陽熱や産業排熱を利用した低エネルギー化の可能性もある。淡水化排水を廃棄物ではなく資源として活用する「掘らない資源開発」として、淡水製造と資源回収を一体化した循環型技術への展開が期待される。

海水淡水化排水からマグネシウムを高効率で回収ー液体金属スズを使って淡水と「掘らない資源」を回収する新技術ー
図1. (a)液体金属Sn直接接触式蒸留プロセス、(b)真空脱気による気体成分の除去、(c)冷却時コールドトラップ効果によるMg含有析出物の析出回収

<関連情報>

真空脱気を併用した液体スズ直接接触脱塩法による海水塩水からのマグネシウム回収 Recovery of magnesium from seawater brine using liquid tin direct-contact desalination assisted by vacuum degassing

Toranosuke Horikawa, Masatoshi Kondo
Desalination  Available online: 31 July 2026
DOI:https://doi.org/10.1016/j.desal.2026.120582

Highlights

  • Liquid Sn technology was newly employed to recover brine-derived Mg resources.
  • Cl and S were removed from liquid Sn by vacuum degassing up to 973 K.
  • Thermal desorption spectroscopy revealed distinct gas-release behaviors.
  • MgO precipitated without forming low-value chlorides or sulfates.

Abstract

Recovering freshwater and metal resources from seawater desalination brine can contribute to the realization of a sustainable society. The use of liquid metal tin (Sn) has been proposed as a novel method for recovering freshwater, brine-derived metal resources (e.g., Na, Mg, K and Ca) and brine-derived gaseous species (e.g., HCl, Cl2, H2S, SO2 and H2). The purity of the distilled water was sufficiently high to meet the WHO drinking water standard in our previous study. The metal resources were recovered as precipitates during a cold-trap procedure, although the metals reacted with non-metallic elements such as Cl and S. The present study clarified the thermal desorption behavior of brine-derived gaseous species from a liquid Sn pool in the temperature range from 573 K to 973 K following the direct-contact distillation of seawater brine. Brine-derived elements were dissolved and captured in liquid Sn during the distillation experiment using heavy water (D2O) brine. The results of thermal desorption spectroscopy indicated that gases (e.g., DCl, HCl, Cl2, D2, HD, SO2 and H2S) exhibited distinct desorption behaviors under a high vacuum of approximately 10−3 Pa. More than half of the dissolved gaseous species were released, while some remained in liquid Sn. The precipitation of Na was limited after the gas release due to its high solubility in liquid Sn in the metallic state. Mg precipitated separately from Na without forming MgSO4, which is often formed during scale formation. The crystalline phases of the Mg-rich precipitates were identified mainly as MgO by FE-SEM/EBSD analysis.

0505化学装置及び設備
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