• 제목/요약/키워드: biopolymer treated clay

검색결과 6건 처리시간 0.019초

Laboratory investigation for engineering properties of sodium alginate treated clay

  • Cheng, Zhanbo;Geng, Xueyu
    • Structural Engineering and Mechanics
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    • 제84권4호
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    • pp.465-477
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    • 2022
  • The formation of biopolymer-soil matrices mainly depends on biopolymer type and concentration, soil type, pore fluid and phase transfer to influence its strengthening efficiency. In this study, the physical and mechanical properties of sodium alginate (SA) treated kaolinite are investigated through compaction test, thread rolling teat, fall cone test and unconfined compression test with considering biopolymer concentration, curing time, initial water content, mixing method. The results show that the liquid limit slightly decreases from 69.9% to 68.3% at 0.2% SA and then gradually increases to 98.3% at 5% SA. At hydrated condition, the unconfined compressive strength (UCS) of SA treated clay at 0.5%, 1%, 2% and 3% concentrations is 2.57, 4.5, 7.1 and 5.48 times of untreated clay (15.7 kPa) at the same initial water content. In addition, the optimum biopolymer concentration, curing time, mixing method and initial water content can be regarded as 2%, 28 days, room temperature water-dry mixing (RD), 50%-55% to achieve the maximum unconfined compressive strength, which corresponds to the UCS increment of 593%, compared to the maximum UCS of untreated clay (780 kPa).

Study on engineering properties of xanthan gum reinforced kaolinite

  • Zhanbo Cheng;Xueyu Geng
    • Computers and Concrete
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    • 제31권6호
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    • pp.501-511
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    • 2023
  • The strengthening efficiency of biopolymer treated soil depends on biopolymer type, concentration ratio, soil type, initial water content, curing time and mixing method. In this study, the physical and mechanical properties of xanthan gum (XG) treated kaolinite were investigated through compaction test, Atterberg limit test, triaxial test and unconfined compression test. The results indicated that the optimum water content (OWC) increased from 30.3% of untreated clay to 33.5% of 5% XG treated clay, while the maximum dry density has a slight increase from 13.96 kg/m3 to 14 kg/m3 of 0.2% XG treated clay and decrease to 2.7 kg/m3 of 5% XG treated clay. Meanwhile, the plastic limit of XG treated clay increased with the increase of XG concentration, while 0.5% XG treated clay can be observed the maximum liquid limit with 79.5%. Moreover, there are the ideal water content about 1.3-1.5 times of the optimum water content achieving the maximum dry density and curing time to obtain the maximum compressive strength for different XG contents, which the UCS is 1.52 and 2.07 times of the maximum UCS of untreated soil for 0.5% and 1% XG treated clay, respectively. In addition, hot-dry mixing can achieve highest UCS than other mixing methods (e.g., dry mixing, wet mixing and hot-wet mixing).

Performance evaluation of β-glucan treated lean clay and efficacy of its choice as a sustainable alternative for ground improvement

  • Kumara, S. Anandha;Sujatha, Evangelin Ramani
    • Geomechanics and Engineering
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    • 제21권5호
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    • pp.413-422
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    • 2020
  • The choice of eco-friendly materials for ground improvement is a necessary way forward for sustainable development. Adapting naturally available biopolymers will render the process of soil stabilization carbon neutral. An attempt has been made to use β-glucan, a natural biopolymer for the stabilization of lean clay as a sustainable alternative with specific emphasis on comprehending the effect of confining stresses on lean clay through triaxial compression tests. A sequence of laboratory experiments was performed to examine the various physical and mechanical characteristics of β-glucan treated soil (BGTS). Micro-analysis through micrographs were used to understand the strengthening mechanism. Results of the study show that the deviatoric stress of 2% BGTS is 12 times higher than untreated soil (UTS). The micrographs from Scanning Electron Microscopy (SEM) and the results of the Nitrogen-based Brunauer Emmett Teller (N2-BET) analysis confirm the formation of new cementitious fibres and hydrogels within the soil matrix that tends to weld soil particles and reduce the pore spaces leading to an increase in strength. Hydraulic conductivity (HC) and compressibility reduced significantly with the biopolymer content and curing period. Results emphases that β-glucan is an efficient and sustainable alternative to the traditional stabilizers like cement, lime or bitumen.

Geotechnical engineering behavior of biopolymer-treated soft marine soil

  • Kwon, Yeong-Man;Chang, Ilhan;Lee, Minhyeong;Cho, Gye-Chun
    • Geomechanics and Engineering
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    • 제17권5호
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    • pp.453-464
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    • 2019
  • Soft marine soil has high fine-grained soil content and in-situ water content. Thus, it has low shear strength and bearing capacity and is susceptible to a large settlement, which leads to difficulties with coastal infrastructure construction. Therefore, strength improvement and settlement control are essential considerations for construction on soft marine soil deposits. Biopolymers show their potential for improving soil stability, which can reduce the environmental drawbacks of conventional soil treatment. This study used two biopolymers, an anionic xanthan gum biopolymer and a cationic ${\varepsilon}-polylysine$ biopolymer, as representatives to enhance the geotechnical engineering properties of soft marine soil. Effects of the biopolymers on marine soil were analyzed through a series of experiments considering the Atterberg limits, shear strength at a constant water content, compressive strength in a dry condition, laboratory consolidation, and sedimentation. Xanthan gum treatment affects the Atterberg limits, shear strength, and compressive strength by interparticle bonding and the formation of a viscous hydrogel. However, xanthan gum delays the consolidation procedure and increases the compressibility of soils. While ${\varepsilon}-polylysine$ treatment does not affect compressive strength, it shows potential for coagulating soil particles in a suspension state. ${\varepsilon}-Polylysine$ forms bridges between soil particles, showing an increase in settling velocity and final sediment density. The results of this study show various potential applications of biopolymers. Xanthan gum biopolymer was identified as a soil strengthening material, while ${\varepsilon}-polylysine$ biopolymer can be applied as a soil-coagulating material.

Effect of microbial biopolymers on the sedimentation behavior of kaolinite

  • Yeong-Man Kwon;Seok-Jun Kang;Gye-Chun Cho;Ilhan Chang
    • Geomechanics and Engineering
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    • 제33권2호
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    • pp.121-131
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    • 2023
  • Clay sedimentation has been widely analyzed for its application in a variety of geotechnical constructions such as mine tailing, artificial islands, dredging, and reclamation. Chemical flocculants such as aluminum sulfate (Al2(SO4)3), ferric chloride (FeCl3), and ferric sulfate (Fe(SO4)3), have been adopted to accelerate the settling behaviors of clays. As an alternative clay flocculant with natural origin, this study investigated the settling of xanthan gum-treated kaolinite suspension in deionized water. The sedimentation of kaolinite in solutions of xanthan gum biopolymer (0%, 0.1%, 0.5%, 1.0%, and 2.0% in a clay mass) was measured until the sediment height was stabilized. Kaolinite was aggregated by xanthan gum via a direct electrical interaction between the negatively charged xanthan gum molecules and positively charged edge surface and via hydrogen bonding with kaolinite particles. The results revealed that the xanthan gum initially bound kaolinite aggregates, thereby forming larger floc sizes. Owing to their greater floc size, the aggregated kaolinite flocs induced by xanthan gum settled faster than the untreated kaolinite. Additionally, X-ray computed tomography images collected at various depths from the bottom demonstrated that the xanthan gum-induced aggregation resulted in denser sediment deposition. The findings of this study could inspire further efforts to accelerate the settling of kaolinite clays by adding xanthan gum.

바이오폴리머-흙 처리(BPST) 기술의 강도 발현 거동에 대한 주요 영향인자 분석에 관한 연구 (Investigation on the Key Parameters for the Strengthening Behavior of Biopolymer-based Soil Treatment (BPST) Technology)

  • 이해진;조계춘;장일한
    • 토지주택연구
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    • 제12권3호
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    • pp.109-119
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    • 2021
  • 최근 지구 온난화로 인한 이상 기후로 인해 과거보다 더 많은 지반공학 재해들이 발생하고 있으며, 재해들의 규모도 더욱 증대되고 있다. 최근 토목 및 건설분야에 소개된 바이오폴리머 기반 흙 처리(BPST; Biopolymer-based soil treatment) 기술은 효율적으로 흙의 강도를 증진시키면서 탄소배출이 거의 없는 친환경 지반보강법으로 알려져 있다. 특히, 아가검, 젤란검, 잔탄검과 같은 열적젤화 특성을 지닌 바이오폴리머들의 강도 증진 효과가 매우 우수함이 여러 연구를 통해 밝혀지고 있다. 하지만 바이오폴리머 함량 외에는 바이오폴리머 기반 흙 처리에서 흙의 강도 증진을 제어하는 주요 영향인자 규명에 대한 연구는 많이 부족한 실정이다. 본 연구에서는 기존 발표된 열적젤화 바이오 폴리머 처리 흙의 불구속일축압축강도(UCS; Unconfined compressive strength) 자료에 대한 기계학습 기반 선형회귀 분석을 통해 젤란검 바이오폴리머로 처리된 흙의 강도 발현을 결정하는 주요 인자들을 분석하였다. 해석 결과, 바이오폴리머 함량과 더불어 흙 속 점토 함량이 강도 발현에 가장 중요한 인자임을 확인할 수 있었다.