• 제목/요약/키워드: 커피찌꺼기

검색결과 25건 처리시간 0.019초

커피찌꺼기 퇴비화 과정의 물리, 화학 및 생물학적 변화 (Changes in Physical, Chemical, and Biological Traits During Composting of Spent Coffee Grounds)

  • 신지환;박승혜;김아름;손이헌;주세환
    • 한국환경농학회지
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    • 제39권3호
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    • pp.178-187
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    • 2020
  • BACKGROUND: Spent coffee grounds are the most valuable resource for agriculture and industry. However, it is almost thrown untreated into landfills or incineration. Composting is an efficient process for converting spent coffee to fertilizer. METHODS AND RESULTS: Composting was conducted in the compost pile (40 ㎥) equipped with a forced aeration system. Physical and chemical properties containing temperature, pH, electrical conductivity, and moisture were measured through the composting period. Moreover, biological changes were examined for the composting phase using Illumina Miseq sequencing of the 16S rRNA gene. We found 7-14 phyla comprising 250-716 species from a variety phase of compost. During the composting period, Firmicutes were dominated, followed by Actinobacteria and Proteobacteria. CONCLUSION: The result indicated that the use of spent coffee improved the quality of organic fertilizer and changed the microbial communities, unique to the thermal composting stage, which could enhance the composting process. These findings suggest that spent coffee composted material can provide a significant amount of nutrients, thereby supporting plant growth.

폐 커피 캡슐의 재활용을 위한 재질분리 공정 개발 (Development of Material Separation Process for Recycling Waste Coffee Capsules)

  • 백상호;한요셉;김성민;;전호석
    • 자원리싸이클링
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    • 제30권3호
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    • pp.70-81
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    • 2021
  • 본 연구에서는 현재 생활계 폐기물로 폐기되는 커피 캡슐의 재질분리 공정 개발을 통해 폐플라스틱의 재활용 가능성을 평가하였다. 1차 파쇄, 세척 및 체질을 통해 커피찌꺼기를 제거하고 2차 파쇄 후, 총 3번의 코로나 방전형 정전선별을 수행하는 재질분리 공정이 개발되었다. 이때, -10 mm 시료는 최적조건에서 알루미늄 제거율과 플라스틱 회수율이 각각 95.4%와 98.3% 이었으며, -15 mm는 각각 91.3%와 97.2% 이었다. 재질분리 된 폐플라스틱의 재활용 가능성을 평가하기 위하여, 시료를 펠릿으로 제조하고 물성을 분석하였다. 분석결과, 유해물질은 검출되지 않았으며, Homo-PP와 유사한 결과를 보였다. 따라서 재생 PP로 충분한 기능성이 존재하는 것을 확인하였다. 다만, 어두운 색상으로 인해 검정 혹은 어두운 계열의 제품군에 한정적으로 적용 가능할 것으로 평가되었다.

커피찌꺼기의 효율적인 열화학 전환을 위한 전이 금속 기반 첨가제 효율 평가 (Efficiency Evaluation of Transition Metal-Based Additives for Efficient Thermochemical Conversion of Coffee Waste)

  • 조동완;장정윤;김선준;임길재
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제27권1호
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    • pp.17-24
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    • 2022
  • This work examined the effect of mixing transition metal-based additives [FeCl3, Fe-containing paper mill sludge (PMS), CoCl2·H2O, ZrO2, and α-Fe2O3] on the thermochemical conversion of coffee waste (CW) in carbon dioxide-assisted pyrolysis process. Compared to the generation amounts of syngas (0.7 mole% H2 & 3.0 mole% CO) at 700℃ from single pyrolysis of CW, co-pyrolysis in the presence of Fe- or Zr-based additives resulted in the enhanced production of syngas, with the measured concentrations of H2 and CO ranging 1.1-3.4 mole% and 4.6-13.2 mole% at the same temperature, respectively. In addition, α-Fe2O3 biochar possessed the adsorption capacity of As(V) (19.3 mg g-1) comparable to that of ZrO2-biochar (21.2 mg g-1). In conclusion, solid-type Fe-based additive can be highly considered as an efficient catalyst to simultaneously produce syngas (H2 & CO) as fuel energy resource and metal-biochar as sorbent.

커피 찌꺼기를 흡착제로 한 니켈 폐수 처리 특성 (Treatment Features of Ni Wastewater by using Coffee Grounds as the Adsorbent)

  • 서명순;김동수
    • 한국물환경학회지
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    • 제21권1호
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    • pp.14-20
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    • 2005
  • A feasibility study has been conducted regarding the application of waste coffee grounds as an adsorbent for the treatment of nickel ion containing wastewater. The major variables which considered to influence the adsorbability of nickel ion were its initial concentration, reaction temperature, pH, and coexisting ion. The specific surface area of coffee grounds used in the experiment was found to be ca. $39.67m^2/g$, which suggesting its potential applicability as an adsorbent due to its relatively high surface area. In the experimental conditions, more than 90% of the initial amount of nickel ion was shown to adsorb within 15 minutes and equilibrium in adsorption was attained after 3 hours. The adsorption behavior of nickel ion was well explained by Freundlich model and kinetics study showed that the adsorption reaction was second-order. Adsorption was reduced with temperature and its change of enthalpy in standard state was estimated to be -807.05 kJ/mol. Arrhenius equation was employed for the calculation of the activation energy of adsorption and nickel ion was observed to adsorb on coffee grounds exoentropically based on thermodynamic estimations. As pH rose, the adsorption of nickel ion was diminished presumably due to the formation of cuboidal complex with hydroxide ion and the coexistence of cadmium ion was found to decrease the amount of nickel ion adsorption, which was proportional to the concentration of cadmium ion.

커피 찌꺼기의 카페인 용출 및 산화분해 특성 (Extraction of Caffeine from Spent Coffee Grounds and Oxidative Degradation of Caffeine)

  • 신민정;김영훈
    • 한국환경과학회지
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    • 제27권12호
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    • pp.1205-1214
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    • 2018
  • During the past few decades, significant increase in the consumption of coffee has led to rapid increase in the production of coffee waste in South Korea. Spent coffee waste is often treated as a general waste and is directly disposed without the necessary treatment. Spent Coffee Grounds (SCGs) can release several organic contaminants, including caffeine. In this study, leaching tests were conducted for SCGs and oxidative degradation of caffeine were also conducted. The tested SCGs contained approximately 4.4 mg caffeine per gram of coffee waste. Results from the leaching tests show that approximately 90% of the caffeine can be extracted at each step during sequential extraction. Advanced oxidation methods for the degradation of caffeine, such as $UV/H_2O_2$, photo-Fenton reaction, and $UV/O_3$, were tested. UV radiation has a limited effect on the degradation of caffeine. In particular, UV-A and UV-B radiations present in sunlight cause marginal degradation, thereby indicating that natural degradation of caffeine is minimal. However, $O_3$ can cause rapid degradation of caffeine, and the values of pseudo-first order rate constants were found to be ranging from $0.817min^{-1}$ to $1.506min^{-1}$ when the ozone generation rate was $37.1g/m^3$. Additionally, the degradation rate of caffeine is dependent on the wavelength of irradiation.