본 연구는 RC(철근콘크리트) 기둥과 FRP 콘크리트 기둥의 압축성능을 P-M 상관도를 통해 비교, 분석하였으며, 특히 콘크리 트 압축강도, 보강비, FRP의 탄성계수 변화에 따른 기둥의 거동 특성을 분석하였다. 연구 결과, 고강도 콘크리트(40MPa 이상) 사용 시 FRP 보강 기둥의 성능이 RC 기둥을 상회하며, 균형파괴점이 압축영역으로 이동하여 안정성이 향상됨을 확인하였다. 보강비는 0.010∼ 0.015 범위에서 최적 성능을 발휘하며, 과도한 보강은 오히려 취성파괴 위험을 증가시킬 수 있음을 확인하였다. FRP 물성 선택에 있어 낮은 파괴변형률과 적절한 탄성계수를 가진 재료를 사용하여 균형파괴점을 압축영역에 위치시키는 것이 중요함을 제시하였다. 본 연구 는 FRP 보강 기둥 설계 시 콘크리트 강도, 보강비, FRP 물성을 종합적으로 고려하여 압축성능을 최적화하고 안정성을 확보할 수 있는 방안을 제시하였다. 이러한 결과는 FRP 보강 콘크리트 기둥의 효과적인 설계 및 성능 향상에 기여할 것으로 기대된다.
The addition of fiber sto concrete matrix has been a norm to enhance the mechanical strength of concrete. However, the use ot synthetic fibers (artificial fibers) is rampant compared to natural fibers due to a low mechanical strength of some natural fibers. The study added cellulose fiber made from jute at 0.2%, 0.25, and 0.3% of cement weight to concrete matrix to determine their influence on the early strength development. It was observed that compressive strength and flexural strength increases as the proportion of fiber added to the concrete increased. Further observation showed that the compressive strength had its optimum point at 0.3% fiber addition. However, the optimum point of the flexural strength lied at 0.25% fiber addition. It was concluded that cellulose fiber is capable of enhancing the mechanical strengths of concrete matrix.
도로터널의 연장과 대형화로 인해 화재 발생 시 터널 구조물의 안전확보가 중요한 과제가 되고 있다. 터널에서 화재가 발생할 경우, 콘크리트 라이닝이 고온에 노출되면서 강도저하 및 폭렬에 의한 구조적 손상을 초래할 수 있으며, 이를 방지하기 위해 다양한 내화공 법이 연구되고 있다. 이 연구에서는 폭렬을 억제하기 위한 내화공법으로 고온 노출에 따른 섬유혼입콘크리트의 온도전이 특성에 대한 실험적 연구를 수행하였다. 온도전이 특성 실험은 200×200×200mm 크기의 큐브 형태의 시험체에 0.6, 0.8, 1.0kg/m3의 섬유를 혼입하여 시험체를 제작하였다. 섬유혼입콘크리트 내부온도를 측정하기 위하여 표면에서부터 20mm 간격으로 100mm까지 총 6개의 K타입 열전 대를 설치하였고, 전기 내화로를 사용하여 RWS 화재곡선을 모사하여 시험체를 가열하였다. 실험결과, 섬유를 혼입한 콘크리트는 섬유 를 혼입하지 않은 Control 변수에 비해 내부온도가 낮아지는 경향을 보였다. 이는 고온에서 내화섬유가 용융되면서 콘크리트 내부의 수증기압을 감소시켜 효과적으로 억제된 것으로 보인다. 특히 내화섬유 0.8kg/m3을 혼입한 경우 60mm 이상에서 효과적으로 콘크리트 내부 온도 상승을 억제한 것으로 나타났으며, 폭렬에 의한 구조적 손상을 방지하기 위한 적정 수준의 내화섬유 혼입량은 필요할 것으 로 판단된다. 그러나 많은 양의 섬유 혼입은 고온에 따른 섬유 용융으로 인해 내부에 다량의 공극이 형성되어 폭렬 억제에는 효과적 일 수 있으나, 다량으로 형성된 공극에 따른 온도 확산이 더 빠르게 진행되어 적절한 피복두께 확보가 필요할 것으로 판단된다. 따라 서 도로터널 내화 지침(국토교통부, 2021)의 콘크리트(380℃) 및 철근(250℃)의 한계온도 이내를 만족하기 위해서는 피복두께는 최소 100mm 이상을 확보해야 할 것으로 판단된다. 이는 터널 구조물의 내화성능을 개선하기 위한 기준을 제시하며, 향후 도로터널의 안전 성을 강화하기 위해 섬유혼입량과 철근 피복두께 간의 상관관계에 대한 추가적인 실험 및 해석적 검토가 필요할 것으로 판단된다.
AR (alkali resistant)-glass fibers were developed to provide better alkali resistance, but there is currently no research on AR-glass fiber manufacturing. In this study, we fabricated glass fiber from AR-glass using a continuous spinning process with 40 wt% refused coal ore. To confirm the melting properties of the marble glass, raw material was put into a (platinum) Pt crucible and melted at temperatures up to 1,650 °C for 2 h and then annealed. To confirm the transparent clear marble glass, visible transmittance was measured and the fiber spinning condition was investigated by high temperature viscosity measurement. A change in diameter was observed according to winding speed in the range of 100 to 700 rpm. We also checked the change in diameter as a function of fiberizing temperature in the range of 1,240 to 1,340 °C. As winding speed increased at constant temperature, fiber diameter tended to decrease. However, at fiberizing temperature at constant winding speed, fiber diameter tended to increase. The properties of the prepared spinning fibers were confirmed by optical microscope, tensile strength, modulus and alkali-resistance tests.
The arrival of the 5G era has made electromagnetic pollution a problem that needs to be addressed, and flexible carbon-based materials have become a good choice. In this study, wet continuous papermaking technology was used to prepare carbon fiber paper (CFP) with a three-dimensional conductive skeleton network; Molybdenum disulfide ( MOS2)/ iron (Fe) @ carbon fiber paper-based shielding material was prepared by impregnating and blending molybdenum disulfide/iron ( MOS2/Fe) phenolic resin MOS2/ Fe@ CFP. The morphology, structure, electrical conductivity, mechanical properties, hydrophobicity, and electromagnetic shielding properties of the composite were characterized. The results show that the three-dimensional network structure based on a short carbon fiber paper-based conductive skeleton and the synergistic effect of the MOS2 dielectric wave absorbing agent and Fe magnetic wave absorbing agent have good electromagnetic shielding performance. Conduct electromagnetic shielding simulation using HFSS software to provide options for the structural design of CFP. The electromagnetic shielding performance of CFP reaches 70 dB, and the tensile strength reaches 34.39 MPa. Based on the mechanical properties, the compactness of carbon fiber paper is ensured. The lightning damage model test using CST software expands the direction for the use of carbon fiber paper. In summary, MOS2/ Fe @CFP with excellent shielding performance has great application prospects in thinner and lighter shielding materials, as well as high sensitivity, defense and military equipment.
In this work, we investigated the photo-degradation performance of MnO2-SiC fiber-TiO2 (MnO2-SiC-TiO2) ternary nanocomposite according to visible light excitation utilizing methylene blue (MB) and methyl orange (MO) as standard dyes. The photocatalytic physicochemical characteristics of this ternary nanocomposite were described by X-ray diffraction (XRD), scanning electron microscopy (SEM), tunneling electron microscopy (TEM), ultraviolet-visible (UV-vis), diffuse reflectance spectroscopy (DRS), electrochemical impedance spectroscopy (EIS), photocurrent and cyclic voltammogram (CV) test. Photolysis studies of the synthesized MnO2-SiC-TiO2 composite were conducted using standard dyes of MB and MO under UV light irradiation. The experiments revealed that the MnO2-SiC-TiO2 exhibits the greatest photocatalytic dye degradation performance of around 20 % with MB, and of around 10 % with MO, respectively, within 120 min. Furthermore, MnO2-SiC-TiO2 showed good stability against photocatalytic degradation. The photocatalytic efficiency of the nanocomposite was indicated by the adequate photocatalytic reaction process. These research results show the practical application potential of SiC fibers and the performance of a photocatalyst composite that combines these fibers with metal oxides.
The study aimed to investigate the impact of varying levels of neutral detergent-soluble fiber (NDSF) in Hanwoo growing cattle diets on rumen fermentation and methane (CH4) emissions. An in vitro rumen fermentation experiment utilized feeds with different NDSF levels, incorporating ingredients such as corn grain, soybean meal, soybean hulls, palm kernel meal, beet pulp and timothy hay. The NDSF contents in the diets were 9.02% (T1), 10.09% (T2), 12.42% (T3) and 14.63% (T4). In vitro dry matter digestibility (IVDMD) at 48 h was 7.4% higher for T4 compared to T1 (p<0.05). Total gas production at 48 h was 6.6% higher for T4 than T1 (p<0.05). CH4 production significantly decreased at 9 h and 12 h for T1 and T2 (p<0.05). At 48 h, CH4 production was 5.6% higher for T4 compared to T1 and 6.7% higher compared to T2 (p<0.05). At 12 h ans 24 h, the ammonia nitrogen concentration of T4 was approximately 33.1% and 40.4% lower, respectively, compared to T1 (p<0.05). The acetate to propionate ratio at 48 h was approximately 18.8% higher for T4 than T1 (p<0.05). From 9 h to 48 h, the proportions of butyrate and valerate were significantly higher for T4 (p<0.05). At 48 h, the dominant phylum in T4's rumen microbial community was Candidatus Thermoplasmatota Methanomassiliicoccus, an Archaea. Therefore, this study confirmed that increasing the NDSF content in growing Hanwoo cattle diets up to 12.42% increases IVDMD without increasing CH4 emissions, which is expected to positively impact Hanwoo productivity.
For sustainable livestock industry, black soldier fly as eco-friendly animal protein source is spotlighted for swine and poultry. However, most of black soldier fly is reared in dirty condition like food waste. In this study, we investigated the effects of fiber level on the growth performance and nutrient composition of black soldier fly reared in specific substrate. Treatments were divided in two as Low (fiber level: 7.1%), and High (fiber level: 14.2%) with a total of 50,000 eggs each. The rearing box had a dimension with 1064 × 507 × 320 cm (length × width × height). Black soldier fly survival rate (72.24 vs. 76.48) and substrate consumption (77.43 vs. 80.37) were greater in High than Low. However, bioconversion (10.59 vs. 9.80) and protein conversion (8.97 vs. 8.00) were increased in Low than High. Gross energy was higher in High compared with Low (4,133 vs. 4,208). Some of essential amino acid (Isoleucine, leucine, phenylalanine, threonine, tryptophan) were significantly higher in High compared with Low, and non-essential amino acid (alanine, aspartate, glycine, proline, serine, tyrosine) were higher in High compared with Low. Acids such as C12:0, C14:0, C15:0, and C20:1 were higher in High compared with Low, while C18:4 was higher in Low compared with High. As a result, black soldier fly reared in high fiber substrate might be a preferred option for rearing and producing a reliable animal protein source for monogastric animal.
RC구조물에서 대부분의 인장력을 받는 철근은 다양한 환경에 노출되었을 때 부식이 발생하며, 이러한 철근의 부식은 인장력 감소와 더불어 철근의 주변에 존재하는 콘크리트 균열 크기를 확장시켜 RC 구조물의 수명을 단축시키는 주요한 원인으로 작용하고 있 다. 이로인해 건축물의 유지 관리에 많은 비용이 필요하게 되며, 과도한 구조물의 유지, 관리 비용은 건설 분야의 문제점으로 남아있 다. 탄소섬유 강화 폴리머(CFRP)는 내화학성(비부식) 특성과 중량 대비 높은 강도로 인해 철근을 대체할 수 있는 보강제로 주목받고 있으며, CFRP보강재의 높은 항상성은 위에 대두된 구조물의 유지 관리 비용을 크게 절감할 수 있을 것이라 판단되어 연구되어지고 있다. 본 논문에서는 다양한 건설 분야에서 CFRP 보강재를 사용하기 위한 과정 중 CFRP 그리드를 내부 보강제로 사용하기 위한 연구로써 CFRP 그리드와 콘크리트의 부착 특성을 실험을 통해 연구하였다. 이를 위해 다양한 정착 길이를 가진 30개의 콘크리트 부착 시편에 대해 인발 시험을 수행하였으며, 실험 결과를 바탕으로 콘크리트에서 CFRP 그리드의 부착 특성을 분석하고 콘크리트 구조물의 보강재 로 CFRP 그리드를 적용하기 위한 분석 공식을 제안하였다.