• Title/Summary/Keyword: Oyster Shells

Search Result 154, Processing Time 0.036 seconds

The Strength Characteristic of Soil Cemented Mixed with Oyster Shells and Loess (굴패각과 황토를 혼합한 소일시멘트의 강도특성)

  • Lee, Jin-Soo;Lee, Kang-Il;Kim, Chan-Kee;Kim, Hang-Gyu;Kim, Tae-Hoon
    • Proceedings of the Korean Geotechical Society Conference
    • /
    • 2010.09a
    • /
    • pp.527-532
    • /
    • 2010
  • Soil-cement has been broadly used for eco friendly pavement, slope protection and soft soil improvement since it used for the increase of soil strength with cement. Recently, additional agents are mixed with existing soil-cement so as to improve specific properties or functions such as strength, color and permeability of it. This study aims at figuring out the physical and mechanical properties of a soil-cement mixed with crashed oyster shell and loess. The study is specially focused on the applicability of oyster shell as an alternative material for sands. To have his objective achieved a series of uniaxial compression tests were conducted. As a result, it appears that usage of oyster shell may have effect on strength improvement of mixed soils.

  • PDF

A study on the environment of waste shell and its recycling method (패각의 부존환경 및 재활용에 관한 연구)

  • 이인곤
    • Journal of the Korean Crystal Growth and Crystal Technology
    • /
    • v.10 no.2
    • /
    • pp.159-165
    • /
    • 2000
  • This study was investigated the environment of waste shells such as oyster, cockle and paphia on southern shore in korea and established the recycling method to prevent the environmental pollution, etc. The waste shells were reclaimed at public shore illegally or leaved on the surroundings of shore. The origin mechanism, XRD and TG-DTA analyses were performed to effective recycling of waste shells, and the optimal recycling method was preparation of the calcium carbonate. In this work, calcium carbonate and lime fertilizer of granular shape were prepared using the waste shell.

  • PDF

Improvement of Manila Clam (Ruditapes philippinarum) Habitat Condition by Adding Crushed Oyster (Crassostrea gigas) Shells to the Substratum (굴 패각을 이용한 바지락 양식장 저질개선 효과)

  • Park, Kwang-Jae;Yoon, Sang-Pil;Song, Jae-Hee;Han, Hyun-Seob;O, Hae-Chong
    • The Korean Journal of Malacology
    • /
    • v.27 no.4
    • /
    • pp.291-297
    • /
    • 2011
  • In an attempt to improve the substrate condition for Manila clam (Ruditapes philippinarum) culture, crushed oyster (Crassostrea gigas) shells were spread on the muddy tidal flat of Namseong-ri, Podu-myeon, Goheung-gun, Jeollannam-do in April 2008. To test the suitability of the crushed oyster shell added substrate, seed clams were transplanted from Taehwa river estuary in Ulsan city in June 2008. Over 23 months of sampling, the mean grain size and the sorting in the experimental site containing the crushed oyster shell were significantly higher than the control site. The ignition loss, water content, chemical oxygen demand (COD) and acid-volatile sulfide (AVS) level were also significantly higher in the crushed oyste shell added substratum. Survival of the clams transplanted to the crushed oyster shell added substratum was significantly higher and all the clams transplanted to the normal muddy substratum died in August 2009, 13 months after the transplantation. At the end of the experiment in April 2010, the transplanted clams reached 36.10 mm in shell length and 8.92 g in total weight with survival of 43.5%. Our study suggested than crushed oyster shell added in the mud dominant substratum greatly improved living condition and survivability of clams.

Evaluation of Antimicrobial Activity of Allyl Isothiocyanate (AITC) Adsorbed in Oyster Shell on Food-borne Bacteria

  • Han, Jung-Ho;Ahmed, Raju;Chun, Byung-Soo
    • Clean Technology
    • /
    • v.21 no.4
    • /
    • pp.241-247
    • /
    • 2015
  • Oyster shells are a waste product from mariculture that creates a major disposal problem in coastal regions of southeast Korea. To make practical use of unused oyster shells, calcined oyster shell (COS) collected from a local company was allowed to adsorb AITC (allyl isothiocyanate), and then tested the powder's ability to inhibit the growth of some potential food borne disease-causing bacteria. COS powder showed bacteriostatic effect that inhibited cell growth of Escherichia coli, Staphylococcus aureus and Salmonella typhimurium from 3 to 5 log10 CFU/mL at concentrations around 1%. The MIC of pure AITC was found as 1 mg/mL, 0.8 mg/mL and 0.7 mg/mL for Escherichia coli, Staphylococcus aureus and Salmonella typhimurium, respectively. The calcined powder adsorbed about 225 mg of AITC per gram of shell, indicating porous material was created by calcination. FTIR data confirmed the adsorption of AITC by COS. Characterization of particle data showed very fine particle size and highly convoluted surface. AITC adsorbed calcined oyster shell (ACOS) completely inhibited bacterial cell at 1% concentration. ACOS showed better antibacterial effect than COS, indicating synergistic effect of AITC and calcined oyster shell powder on bacteria.

Characteristics and Mechanisms of Phosphate Sorption by Calcined Oyster Shell (소성 굴패각에 의한 인산염의 흡착특성 및 메커니즘)

  • Park, Jong-Hwan;Heo, Jae-Young;Lee, Su-Lim;Lee, Jae-Hoon;Hwang, Se-Wook;Cho, Hyeon-Ji;Kwon, Jin-Hyeuk;Chang, Young-Ho;Seo, Dong-Cheol
    • Korean Journal of Environmental Agriculture
    • /
    • v.40 no.1
    • /
    • pp.40-48
    • /
    • 2021
  • BACKGROUND: Although the calcined oyster shell can be used as a calcium-rich adsorbent for phosphate removal, information about it is limited. The purpose of this study was to evaluate the phosphate adsorption characteristics and its mechanism using calcined oyster shells. METHODS AND RESULTS: In this study, calcined oyster shell (C-OS600) was prepared by calcining oyster shells (P-OS) at 600℃ for 20 min. Phosphate adsorption by C-OS600 was performed under various environmental conditions. Phosphate adsorption by C-OS600 occurred rapidly at the beginning of the reaction, and the time to reach equilibrium was less than 1 h. The optimal isotherm and kinetic models for predicting the adsorption of phosphate by C-OS600 were the Langmuir isotherm and pseudo-second order kinetic model, respectively, and the maximum adsorption capacity derived from the Langmuir isotherm was 68.0 mg/g. The adsorption properties of phosphate by C-OS600 were dominantly influenced by the initial pH and C-OS600 dose. In addition, SEM-EDS and FTIR analysis clearly showed a difference in C-OS600 before and after phosphate adsorption, which proved that phosphate was adsorbed on the surface of C-OS600. CONCLUSION: Overall, the calcined oyster shell can be considered as an useful and effective adsorbent to treat wastewater containing phosphate.

Wastewater Treatment of Papermaking by Using Oyster Shells (굴폐각을 이용한 제지폐수 처리)

  • Cho Jun Hyung;Cho Jung Won;Lee Young Won;Lim Tawk lun
    • Journal of Korea Technical Association of The Pulp and Paper Industry
    • /
    • v.36 no.4 s.107
    • /
    • pp.60-66
    • /
    • 2004
  • In this paper, oyster shell, diatomaceous earth, and active carbon were used as filter media for treating wastewater produced in paper mills. After filtering, the changes of COD and turbidity were investigated. As the results of estimating the efficiency of wasterwater treatment, porous oyster shell having higher specific surface area in powder was more effective than the others in removal of contaminants in waterwater, especially turbidity.

Use of Calcined Oyster Shell Powders as CO2 Adsorbents in Algae-Containing Water

  • Huh, Jae-Hoon;Choi, Young-Hoon;Ramakrishna, Chilakala;Cheong, Sun Hee;Ahn, Ji Whan
    • Journal of the Korean Ceramic Society
    • /
    • v.53 no.4
    • /
    • pp.429-434
    • /
    • 2016
  • Here, we introduce a means of utilizing waste oyster shells which were obtained from temporary storage near coastal workplaces as $CO_2$ adsorbents. The calcined CaO can be easily dissociated to $Ca^{2+}$ cation and $CO_3{^{2-}}$ anion by hydrolysis and gas-liquid carbonation reaction and converted to precipitated calcium carbonate (PCC) in algae-containing water. The calcium hydroxide and carbonation combination in algae-containing water significantly contributed to improving water quality which is very dependent on the addition amount of calcined powders.

A Study on the Bending and Compressive Strength of Mortar using Waste Calcium Material as a Filling Material (폐칼슘 재료를 채움재로 사용한 모르타르의 휨·압축강도에 관한 연구)

  • Kim, Han-Nah;Kim, Bong Joo;Jung, Ui In;Seo, Eun-Seok;Hong, Sang Hun;Shin, Dong Uk
    • Proceedings of the Korean Institute of Building Construction Conference
    • /
    • 2020.06a
    • /
    • pp.64-65
    • /
    • 2020
  • Oyster shells are difficult to grind, while oyster shell powders have coarse and coarse grains, whereas egg shell powder, the same high calcium material, has small and soft particles and has opposing properties. In order to study the change in flexural and compressive strength by designing different mixing ratios using 50% of oyster shell powder and egg shell powder as a filling material. As a result of the experiment, there is almost no difference in the result.

  • PDF

The Effect of Calcium Oxide on Oxidation Resistance of Magnesium alloy (마그네슘합금의 산화저항성에 미치는 산화칼슘 첨가의 영향)

  • Kim, Kibeom;Kim, Sangpil;Kim, Kwonhoo
    • Journal of the Korean Society for Heat Treatment
    • /
    • v.33 no.3
    • /
    • pp.129-134
    • /
    • 2020
  • Due to excellent properties such as high specific strength and low density, application of magnesium alloys have been rapidly increased. However, magnesium alloy has a serious problem that is easily oxidized when exposed to high-temperature. For this reason, magnesium alloys have been generally used for SF6 gas such as protective cover gas in casting and melting, but it has been reported that this gas has a serious influence on global warming. Therefore, many researchers have been studied to improve the oxidation resistance of magnesium alloy. It was reported that addition of Be, Ca and CaO in magnesium alloy can improve the oxidation properties. In this study, the possibility of improving the oxidation resistance by adding CaO extracted from oyster shells was investigated. Oyster shells were completely decomposed into CaO and CO2 by annealing. With the addition of CaO, a coexistence region of MgO + CaO was formed in the oxide layer and its thickness was also reduced.

Effect of Phosphorus Removal by Oyster Shell on Longevity of Constructed Wetlands (굴패각에 의한 인 처리가 인공습지의 수명에 미치는 영향)

  • Kim, Seong-Heon;Kim, Hong-Chul;Park, Jong-Hwan;Ryu, Seong-Ki;Kang, Se-Won;Cho, Ju-Sik;Seo, Dong-Cheol
    • Korean Journal of Environmental Agriculture
    • /
    • v.37 no.1
    • /
    • pp.66-72
    • /
    • 2018
  • BACKGROUND: Constructed wetlands are low-cost alternatives for treating domestics sewage. However, previous study has reported that the removal of phosphorus in constructed wetlands was limited. Therefore, a new alternative was needed to extend the life of the constructed wetlands. The purpose of this study was to evaluate the effect of total phosphorus removal by oyster shell on longevity of constructed wetlands for treating domestic sewage. METHODS AND RESULTS: The changes of total phosphorus concentration and treatment efficiency in two constructed wetlands (CWs) classified as system A (coarse sand 100%) and system B (coarse sand 90%+oyster shell 10%) were investigated for 6 years. The actual saturation time of total phosphorus in the systems A and B was estimated to be longer than that of theoretical saturation by adsorption isotherm experiment. In particular, the saturation pattern of phosphorus in system A was maintained at a certain concentration level in the initial stage of operation, and finally saturation was reached as the saturation gradually progressed from the breaking point. In system B, the saturation period of phosphorus was prolonged as compared with system A due to the addition of oyster shells. CONCLUSION: Our results suggest that the longevity of the constructed wetlands can be extended due to the phosphorus saturation by adding the oyster shells to the coarse sands in constructed wetlands.