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Preparation and Characterization of Bentonite Rheology Modifiers

벤토나이트 유동성 개질제의 제조 및 특성

  • Lee, Suk-Kee (Department of Industrial Chemistry, Kyungil University) ;
  • Koo, Kwang-Mo (Department of Industrial Chemistry, Kyungil University) ;
  • Yang, Kyung-Su (Department of Polymer Science, Kyungpook National University) ;
  • Park, Sung-Woo (Department of Inorganic Materials Engineering, Kyungpook National University) ;
  • Lee, Byung-Kyo (Department of Inorganic Materials Engineering, Kyungpook National University)
  • 이석기 (경일대학교 공업화학과) ;
  • 구광모 (경일대학교 공업화학과) ;
  • 양경수 (경북대학교 고분자공학과) ;
  • 박성우 (경북대학교 무기재료공학과) ;
  • 이병교 (경북대학교 무기재료공학과)
  • Published : 2002.01.01

Abstract

Six different composition of water-swellable bentonite rheology modifiers(WSB-1~WSB-6) were prepared by the compounding of peptizers and anionic surfactants as an additives with Bentonite(BEN) of montmorillonite group. Average particle size, particle morphology and water-swellability of WSB and the viscosity with additives were measured, respectively. And the rheological behavior of WSB were investigated using the rheometer. The viscosity of WSB-1 increased with decreasing both pH and average particle size of BEN, WSB-2 treated $Na_2CO_3$ as a peptizer showed the maximum viscosity. These results can be interpretated cause for rearrangment as the edge-to-face structure of BEN particles containing WSB. Also, WSB-4∼WSB-6 containing both peptizer and anionic surfactant was sol phase that their viscosity was not nearly with the shear rate, however, WSB-3 containing Tetrasodium Pyrophosphate(TSPP) as an anionic surfactant showed the thixotropy by the viscosity difference of 1000 times with the shear rate. From this result, the anions of TSPP can be explained to arrange in edge of BEN particles containing WSB-3.

몬모릴로나이트군의 벤토나이트(BEN)와 첨가제로서 풀림제 및 음이온 계면활성제를 배합하여 6종의 수팽윤성 BEN 유동성 개질제(WSB-1~WSB-6)를 제조하였다. 제조한 WSB의 평균입경, 입자형태, 용액점도, 수팽윤성 및 첨가제에 따른 점도를 각각 측정하였고, WSB의 유동학적 거동을 레오메타를 이용하여 조사하였다. WSB-1의 점도는 pH가 낮을수록 BEN의 평균입경이 작을수록 각각 증가하였고, 풀림제로서 $Na_2CO_3$를 처리한 WSB-2의 점도가 가장 높게 나타났다. 이 결과는 WSB에 포함된 BEN 입자가 edge-to-face의 구조로 재배열이 일어나기 때문으로 해석할 수 있다. 또한 WSB에 풀림제 및 음이온 계면활성제가 포함된 WSB-4, WSB-5 및 WSB-6은 전단력에 따라 점도의 변화가 거의 없는 졸(sol)상으로 존재하지만, 음이온 계면활성제로서 Tetrasodium Pyrophosphate(TSPP)를 첨가한 WSB-3의 경우는 전단력에 따른 점도가 1000배의 차이가 남으로서 요변성(thixotropy)을 나타내었고, 이 결과로부터 TSPP의 음이온이 WSB-3에 포함된 BEN 입자의 edge에 배열된다고 설명할 수 있다.

Keywords

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