• 제목/요약/키워드: Hydrogen chloride (HCl)

검색결과 43건 처리시간 0.017초

철제유물 Weeping에 따른 부식화합물의 재부식 특성 연구 (Study on the Re-corrosion Characteristics of Corrosion Products by Weeping of Iron Artifacts)

  • 박형호;이혜연;이재성;유재은
    • 보존과학회지
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    • 제29권3호
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    • pp.287-296
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    • 2013
  • 발굴된 철제유물은 다양한 부식화합물 형태로 발견되며 보존처리 과정을 거쳐 안정한 상태로 보관된다. 하지만 보존처리 후 재부식이 발생하면 철제유물의 심각한 손상이 발생하여 근본적인 대책이 필요하다. 본 연구는 철제유물재부식에 따른 부식화합물의 유형과 특성을 과학적으로 분석하고 표준 철 산화물을 재부식 환경에 노출시켜 부식화합물의 안정성을 평가 하였다. 재부식 실험 결과 철제유물의 균열부위에서 적갈색의 위핑(weeping)이 발생하면서 재부식이 진행되었다. 위핑은 높은 염화 이온과 낮은 수소이온 농도를 가지고 있었으며 최종 부식화합물로서 akagan$\acute{e}$ite가 검출되었다. 위핑에 의한 부식안정성을 평가하기 위하여 goethite, lepidocrocite, hematite, magnetite 표준 철 산화물을 선정하여 HCl(pH 1), $H_2SO_4$(pH 1), $H_2O$(pH 6) 용액에 침적한 후 20%, 50%, 80%의 상대습도에서 180일 동안 유지하며 성분 변화를 알아보았다. 분석 결과 goethite, lepidocrocite, hematite에서는 성분변화가 확인되지 않았지만 magnetite는 염화 이온($Cl^-$)이 함유된 용액에서 lepidocrocite로 황산이온($SO{_4}^{2-}$)이 함유된 용액에서는 goethite, lepidocrocite로 성분이 변화하였다. 실험 결과 비교적 안정한 부식화합물로 알려진 magnetite는 부식성 이온에 의해 부식이 진행되는 것을 확인할 수 있었다. 이는 철제유물에 생성된 위핑이 금속소지 뿐만 아니라 magnetite도 부식 시킬 수 있음을 의미한다.

알루미늄 블랙 드로스로부터 산화 환원반응을 이용한 고순도 알파 알루미나의 제조 (Preparation of High Purity α-Alumina from Aluminum Black Dross by Redox Reaction)

  • 신의섭;안응모;이수정;오오츠키 치카라;김윤종;조성백
    • 한국재료학회지
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    • 제22권9호
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    • pp.445-449
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    • 2012
  • We investigate the effects of redox reaction on preparation of high purity ${\alpha}$-alumina from selectively ground aluminum dross. Preparation procedure of the ${\alpha}$-alumina from the aluminum dross has four steps: i) selective crushing and grinding, ii) leaching process, iii) redox reaction, and iv) precipitation reaction under controlled pH. Aluminum dross supplied from a smelter was ground to separate metallic aluminum. After the separation, the recovered particles were treated with hydrochloric acid(HCl) to leach aluminum as aluminum chloride solution. Then, the aluminum chloride solution was applied to a redox reaction with hydrogen peroxide($H_2O_2$). The pH value of the solution was controlled by addition of ammonia to obtain aluminum hydroxide and to remove other impurities. Then, the obtained aluminum hydroxide was dried at $60^{\circ}C$ and heat-treated at $1300^{\circ}C$ to form ${\alpha}$-alumina. Aluminum dross was found to contain a complex mixture of aluminum metal, aluminum oxide, aluminum nitride, and spinel compounds. Regardless of introduction of the redox reaction, both of the sintered products are composed mainly of ${\alpha}$-alumina. There were fewer impurities in the solution subject to the redox reaction than there were in the solution that was not subject to the redox reaction. The impurities were precipitated by pH control with ammonia solution, and then removed. We can obtain aluminum hydroxide with high purity through control of pH after the redox reaction. Thus, pH control brings a synthesis of ${\alpha}$-alumina with fewer impurities after the redox reaction. Consequently, high purity ${\alpha}$-alumina from aluminum dross can be fabricated through the process by redox reaction.

아세트아미노펜 액상좌제의 물리화학적 특성에 미치는 첨가제의 영향 (Effect of Additives on the Physicochemical Properties of Acetaminophen Liquid Suppository)

  • 최한곤;정재희;유제만;이미경;김인숙;이범진;김종국
    • 약학회지
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    • 제42권3호
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    • pp.290-295
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    • 1998
  • To optimize the formulation of acetaminophen liquid suppository, the effect of additives on the physicochemical properties of liquid suppository base was investigated. The physi cochemical properties of P 407/P 188 (15/15%) (abbreviated in 15/15) and P 407/P l88 (15/20%) (abbreviated in 15/20) were measured after the addition of following additives; 2.5% acetaminophen as an active ingredient, vehicle components (5% ethanol, 5% propylene glycol, 5% glycerin), preservatives (0.1% sodium benzoate, 0,1% methylparahydroxybenzoate, 0.1% propylparahydroxybenzoate) and 1% of sodium chloride as an ionic strength controlling agent. Poloxamer gel was prepared with three different buffer solutions (pH 1.2, 4.0 and 6.8) and the physicochemical properties, gelation temperature, gel strength and bioadhesive force, were determined. In the results, the effect of additives on the physicochemical properties was dependent on their bonding capacities including hydrogen bonding and cross-linking bonding. Because the hydrogen-bonding capacities of acetaminophen, ethanol and propylene glycol were smaller than that of poloxamer, the binding force of poloxamer gel became weak by their putting in between poloxamer gel. Therefore, the gelation temperature (15/15, $35.7^{\circ}C$ vs 37.0, 39.4 $38.2^{\circ}C$; 15/20, $29.2^{\circ}C$ vs 31.2, 32.0, $30.3^{\circ}C$) increased, and gel strength (15/15, 4.03 see vs 2.72, 2.08, 3.12sec; 15/20, 300g vs 50, 50, 200g) and bioadhesive force (15/15, $6.8{\times}10^2\;dyne/cm^2$ vs 3.2, 6.0, $6.0{\times}10^2\;dyne/cm^2$; 15/20, $97.3{\times}10^2\;dyne/cm^2$ vs 11.1, 89.5, $92.0{\times}10^2\;dyne/cm^2$) decreased. Furthermore, the binding force of poloxamer gel became strong due to the hydrogen-bonding capacities of glycerin and the cross-liking bonding of sodium salt. Then, the gelation temperature (15/15, 35.0, $32.1^{\circ}C$; 15/20, 26.0, $21.0^{\circ}C$) decreased, and gel strength (15/15, 6.51 see, 300g; 15/20, 500, 650g) and bioadhesive force (15/15, 7.2, $81.6{\times}10^2\;dyne/cm^2$; 15/20, 112.3, $309.2{\times}10^2\;dyne/cm^2$) increased. The effect of pH on the physicochemical properties of poloxamer gel was dependent on the ingredients with which the buffer solutions were prepared. Poloxamer gels prepared with pH 1.2 and 4.0 buffer solutions had the increasing gelation temperature (15/15, 37.5, $38.1^{\circ}C$; 15/20, 33.1, $34.0^{\circ}C$) and the decreasing gel strength (15/15, 2.98, 3.81sec; 15/20, 200, 200g) and bioadhesive force (15/15, $7.0{\times}10^2dyne/cm^2$; 15/20, $74.0{\sim}88.1{\times}10^2dyne/cm^2$) owing to HCl. Poloxamer gel prepared with pH 6.8 buffer solutions had the decreasing gelation temperature (15/15, $27.2^{\circ}C$; 15/20, $22.3^{\circ}C$) and the increasing gel strength (15/15, 400g; 15/20, 550g) and bioadhesive force (15/15, $207.0{\times}10^2dyne/cm^2$; 15/20, $215.0{\times}10^2dyne/cm^2$) due to the cross-linking bonding of $NaH_2PO_4\;and\;K_2HPO_4$.

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