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Nano-synthesis of solid acid catalysts from waste-iron-filling for biodiesel production using high free fatty acid waste cooking oil

机译:利用高自由脂肪酸废弃物纳米粉末填充废铁填充的固体酸催化剂的纳米合成

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Waste-iron-filling (WIF) served as a precursor to synthesize α- $${ ext{Fe}}_, { ext{O}}_"$$ through the co-precipitation process. The α- $${ ext{Fe}}_, { ext{O}}_"$$ was converted to solid acid catalysts of RBC500, RBC700, and RBC900 by calcination with temperatures of 500, 700 and 900?°C respectively and afterwards sulfonated. Among the various techniques employed to characterize the catalysts is Fourier transforms infrared spectrometer (FT-IR), X-ray diffraction (XRD and Scanning electron microscopy (SEM). Performance of the catalysts was also investigated for biodiesel production using waste cooking oil (WCO) of 6.1% free fatty acid. The XRD reveals that each of the catalysts composed of Al– $${ ext{Fe}}_, { ext{O}}_" /{ ext{SO}}_{4}$$ . While the FT-IR confirmed acid loading by the presence of $${ ext{SO}}_{4}^{2 - }$$ groups. The RBC500, RBC700, and RBC900 possessed suitable morphology with an average particle size of 259.6, 169.5 and 95.62?nm respectively. The RBC500, RBC700, and RBC900 achieved biodiesel yield of 87, 90 and 92% respectively, at the process conditions of 3?h reaction time, 12:1 MeOH: WCO molar ratio, 6 wt% catalyst loading and 80?°C temperature. The catalysts showed the effectiveness and relative stability for WCO trans-esterification over 3 cycles. The novelty, therefore, is the synthesis of nano-solid acid catalyst from WIF, which is cheaper and could serve as an alternative source for the ferric compound.
机译:废铁填充(wif)用作合成α-$$ {ext {ex}} _,{ext {e}} _“$$通过共同降水过程。α-$$ {ext {Fe}} _,{ext {O}} _“$$分别通过500,700和900Ω·℃的温度和之后磺化的温度转化为RBC500,RBC700和RBC900的固体酸催化剂。在表征催化剂的各种技术中,傅里叶变换红外光谱仪(FT-IR),X射线衍射(XRD和扫描电子显微镜(SEM)。还研究了使用废物烹饪油(WCO的生物柴油生产)的性能。 6.1%的游离脂肪酸。XRD揭示了由Al-$$ {ext {Fe}} _,{ext {so}} _“/ {ext {so}} _ {4} $组成的每种催化剂$。虽然FT-IR确认酸负载通过$$ {ext {so}} _ {4} ^ $$组。RBC500,RBC700和RBC900具有平均粒径的合适形态分别为259.6,169.5和95.62纳米。RBC500,RBC700和RBC900分别在3〜H反应时间,12:1 MeOH:WCO摩尔比,6的过程条件下实现了87,90和92%的生物柴油产率。 WT%催化剂负载和80℃温度。催化剂显示WCO反酯化超过3个循环的有效性和相对稳定性。因此,新颖性是合成来自WIF的纳米固体酸催化剂的Sis,其更便宜,并且可以用作铁化合物的替代源。

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