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Yosephine Merry Devina
"[ABSTRAK
Deposit ampas tebu di Indonesia yang mencapai 8,5 juta ton per tahun menjadikan biomassa ini potensial untuk dikembangkan sebagai pensubstitusi bahan bakar minyak berbasis crude oil. Gelombang mikro merupakan salah satu metode pemanasan yang lebih efisien untuk mempirolisis biomassa, karena metode ini memanfaatkan prinsip konversi energi dan partikel biomassa mengalami pemanasan volumetrik. Ampas tebu dipirolisis dengan variasi daya gelombang mikro sebesar 380, 620, dan 850 Watt dan variasi bio-char dalam umpan sebanyak 0, 10, dan 20%. Karakterisasi yang dilakukan meliputi profil suhu pirolisis, yield produk pirolisis, dan kandungan senyawa di bio-oil dengan metode GC/MS. Peningkatan daya gelombang mikro akan meningkatkan laju pemanasan dan suhu pirolisis ampas tebu, walaupun efeknya tidak terlalu signifikan jika umpannya tidak ditambahkan bio-char. Penambahan bio-char sebagai absorber gelombang mikro secara signifikan meningkatkan laju pemanasan dan suhu pirolisis ampas tebu. Yield bio-oil maksimum, yaitu 42,75 dan 42,40%, diperoleh pada laju pemanasan 805oC/menit dan suhu pirolisis 515oC serta laju pemanasan 59oC/menit dan suhu pirolisis 398oC. Kondisi operasi untuk memperoleh kedua parameter laju pemanasan dan suhu pirolisis tersebut adalah daya gelombang mikro sebesar 380 Watt dengan 20% kandungan bio-char di umpan serta daya gelombang mikro sebesar 850 Watt tanpa kandungan bio-char di umpan. Bio-oil yang diperoleh dari pirolisis ampas tebu yang umpannya mengandung bio-char ternyata mengandung lebih banyak senyawa non-oksigenat dan tidak mengandung PAH. Namun, senyawa non-oksigenat tersebut juga memiliki kandungan rantai karbon panjang (C22+) yang cukup tinggi.

ABSTRACT
Sugarcane bagasse waste in Indonesia reaching 8.5 million tons per year is potential to be developed as a substituent for petroleum-based fuel oil. Microwave is an efficient heating method for biomass pyrolysis, since this method utilizes the principle of energy conversion and biomass undergoes volumetric heating. Sugarcane bagasse was pyrolyzed at the microwave power variation of 380, 620, and 850 Watt and bio-char loading variation of 0, 10, and 20%. Characterizations were conducted on the pyrolysis temperature profile, pyrolysis products yield, and bio-oil content by GC/MS method. The microwave pyrolysis of sugarcane bagasse gave results that increasing microwave power would increase the heating rate and pyrolysis temperature, however this phenomenon was insignificant if the feed contained no bio-char. The addition of bio-char as microwave absorber in the feed significantly increased the heating rate and temperature pyrolysis. The highest bio-oil yields, i.e. 42.75 and 42.40%, were obtained at the heating rate of 805oC/min and pyrolysis temperature of 515oC and heating rate of 59oC/min and pyrolysis temperature of 398oC. Those pyrolysis heating rates and temperatures were achieved at the microwave power of 380 Watt with bio-char loading of 20% and the microwave power of 850 Watt with no bio-char loading. Bio-oil derived from the microwave pyrolysis of sugarcane bagasse which had no bio-char loading in fact contained more non-oxygenated compounds and less PAHs. However, those non-oxygenated compounds have a quite high content of long carbon chains (C22+).;Sugarcane bagasse waste in Indonesia reaching 8.5 million tons per year is potential to be developed as a substituent for petroleum-based fuel oil. Microwave is an efficient heating method for biomass pyrolysis, since this method utilizes the principle of energy conversion and biomass undergoes volumetric heating. Sugarcane bagasse was pyrolyzed at the microwave power variation of 380, 620, and 850 Watt and bio-char loading variation of 0, 10, and 20%. Characterizations were conducted on the pyrolysis temperature profile, pyrolysis products yield, and bio-oil content by GC/MS method. The microwave pyrolysis of sugarcane bagasse gave results that increasing microwave power would increase the heating rate and pyrolysis temperature, however this phenomenon was insignificant if the feed contained no bio-char. The addition of bio-char as microwave absorber in the feed significantly increased the heating rate and temperature pyrolysis. The highest bio-oil yields, i.e. 42.75 and 42.40%, were obtained at the heating rate of 805oC/min and pyrolysis temperature of 515oC and heating rate of 59oC/min and pyrolysis temperature of 398oC. Those pyrolysis heating rates and temperatures were achieved at the microwave power of 380 Watt with bio-char loading of 20% and the microwave power of 850 Watt with no bio-char loading. Bio-oil derived from the microwave pyrolysis of sugarcane bagasse which had no bio-char loading in fact contained more non-oxygenated compounds and less PAHs. However, those non-oxygenated compounds have a quite high content of long carbon chains (C22+)., Sugarcane bagasse waste in Indonesia reaching 8.5 million tons per year is potential to be developed as a substituent for petroleum-based fuel oil. Microwave is an efficient heating method for biomass pyrolysis, since this method utilizes the principle of energy conversion and biomass undergoes volumetric heating. Sugarcane bagasse was pyrolyzed at the microwave power variation of 380, 620, and 850 Watt and bio-char loading variation of 0, 10, and 20%. Characterizations were conducted on the pyrolysis temperature profile, pyrolysis products yield, and bio-oil content by GC/MS method. The microwave pyrolysis of sugarcane bagasse gave results that increasing microwave power would increase the heating rate and pyrolysis temperature, however this phenomenon was insignificant if the feed contained no bio-char. The addition of bio-char as microwave absorber in the feed significantly increased the heating rate and temperature pyrolysis. The highest bio-oil yields, i.e. 42.75 and 42.40%, were obtained at the heating rate of 805oC/min and pyrolysis temperature of 515oC and heating rate of 59oC/min and pyrolysis temperature of 398oC. Those pyrolysis heating rates and temperatures were achieved at the microwave power of 380 Watt with bio-char loading of 20% and the microwave power of 850 Watt with no bio-char loading. Bio-oil derived from the microwave pyrolysis of sugarcane bagasse which had no bio-char loading in fact contained more non-oxygenated compounds and less PAHs. However, those non-oxygenated compounds have a quite high content of long carbon chains (C22+).]"
2015
T28971
UI - Tesis Membership  Universitas Indonesia Library
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Tambunan, Betsyeba Bertameina
"Ampas tebu berpotensi besar untuk dimanfaatkan menjadi produk yang bernilai tinggi. Penelitian ini bertujuan untuk menghasilkan biochar dari ampas tebu melalui proses pirolisis dengan impregnasi logam dan proses aktivasi untuk digunakan sebagai bahan elektroda superkapasitor. Logam natrium dan nikel dapat memperbesar luas permukaan dan membentuk pori biochar sehingga dapat menghasilkan kinerja superkapasitor yang baik. Kandungan logam natrium dan nikel divariasikan sebesar 0%, 5%, 10%, suhu pirolisis pada 450 °C, 500 °C, 550 °C, dan suhu aktivasi pada 600°C dan 700°C. Karakterisasi dengan BET untuk mengetahui luas permukaan spesifik dan ukuran pori biochar, SEM untuk mengetahui morfologi biochar, dan band gap energy untuk mengetahui sifat konduktivitas biochar. Uji kinerja superkapasitor dilakukan dengan metode cyclic voltammetry menggunakan elektrolit KOH 3 M untuk mengetahui nilai kapasitansi. Didapatkan bahwa biochar terimpregnasi logam Ni 10% yang dipirolisis pada suhu 550 °C dan diaktivasi pada suhu 700 °C merupakan sampel terbaik untuk digunakan sebagai bahan elektroda superkapasitor yang dilihat dari terksturnya berpori, luas permukaan sebesar 285,202 m2/g, band gap energy sebesar 1 eV, dan diperoleh nilai kapasitansi spesifik sebesar 103,292 F/g yang menunjukkan bahwa biochar dapat digunakan sebagai bahan elektroda superkapasitor.

Sugarcane bagasse has great potential to be used as a high-value product. This study aims to produce biochar from sugarcane bagasse through a pyrolysis process with metal impregnation and activation process to be used as a supercapacitor electrode material. Sodium and nickel metals can increase the surface area and form biochar pores so that they can produce good supercapacitor performance. The contents of sodium and nickel were varied by 0%, 5%, 10%, pyrolysis temperature at 450°C, 500°C, 550°C, and activation temperature at 600°C and 700°C. Characterization with BET to determine the specific surface area and pore size of biochar, SEM to determine the morphology of biochar, and band gap energy to determine the conductivity properties of biochar. The supercapacitor performance test was carried out using the cyclic voltammetry method using 3 M KOH electrolyte to determine the capacitance value. It was found that 10% Ni metal impregnated biochar which was pyrolyzed at 550 °C and activated at 700 °C was the best sample for use as a supercapacitor electrode material as seen from its porous texture, surface area of 285,202 m2/g, band gap energy of 1 eV, and a specific capacitance value of 103.292 F/g was obtained which indicated that biochar could be used as a supercapacitor electrode material."
Depok: Fakultas Teknik Universitas Indonesia, 2023
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UI - Skripsi Membership  Universitas Indonesia Library
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Muhammad Bagus Adittya
"[ABSTRAK
Serat bagas tebu (Sugarcane bagasse) yang merupakan serat alam dapat digunakan sebagai penguat komposit matriks polimer.Namun, serat tebu dengan matriks polimer memiliki kompatibilitas yang rendah dikarenakan sifat hidrofobik dari matriks polimer dan sifat hidrofilik dari serat.Selain itu, serat alam masih banyak mengandung fraksi amorf (lignin dan hemiselulosa), sehingga komposit menjadi getas dan kristalinitasnya rendah.Oleh karena itu, dilakukan perlakuan untuk mengurangi fraksi amorf tersebut melalui perlakuan kimia.Perlakuan kimia tersebut mampu mengurangi kandungan fraksi amorf (lignin dan hemiselulosa) secara efektifsehingga meningkatkan indeks kristalinitas serat secara signifikan.Perlakuan kimia tersebut terdiri dari perlakuan awal dan perlakuan inti, keduanya penting untuk mengurangi kandungan fraksi amorf dan meningkatkan indeks kristalinitas serat secara signifikan.Perlakuan awal yang digunakan adalah alkalinisasi dengan varian temperatur dan konsentrasi.Perlakuan inti yang digunakan adalah pemutihan dengan menggunakan larutan natrium klorit dan asam sulfat. Selain itu, dilakukan juga perlakuan oksidasi reaktif dengan bantuan katalis TEMPO (2,2,6,6-tetrametilpiperidin-1-oksil radikal). Dari berbagai perlakuan tersebut diperoleh rangkaian perlakuan yang paling efektif untuk mengurangi kandungan fraksi amorf (lignin dan hemiselulosa) karena mampu meningkatkan.

ABSTRACT
, "Sugarcane bagasse fiber (Sugarcane bagasse) is a natural fiber used as a reinforce on polymer"
"matrix composites. However, sugarcane fiber, with the polymer matrix, have a low compatibility due to the hydrophobicity of the polymer matrix and hydrophilic properties of the natural fiber. In addition, natural fiber still contains many amorphous fraction (lignin and hemicellulose), so that the composite becomes brittle and low crystallinity. Therefore, there are several methods of chemical treatment to decrease the amorphous fraction. The chemical treatment can decrease the content of amorphous fraction (lignin and hemicellulose) effectively and increase the crystallinity index significantly. Initial treatment used is alcalinization with variants of temperature and concentration. Core treatments used are bleaching by using a solution of sodium chlorite and sulfuric acid. In addition, the treatment was conducted by using reactive oxidation catalyst, named TEMPO (2,2,6,6- tetrametilpiperidin-1-oksil radical). From those various treatments, it was obtained the most effective treatment to reduce the content of amorphous fraction (lignin and hemicellulose)"
"which is can increase crystallinity index up to 76.13%."]
"
2015
S60352
UI - Skripsi Membership  Universitas Indonesia Library
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Thufail Zuldiena Ramadhani
"Peningkatan konsumsi listrik di Indonesia sejak tahun 2010 hingga 2030 mendorong perhatian terhadap pengembangan teknologi konversi termokimia, khususnya gasifikasi, untuk memenuhi kebutuhan energi. Gasifikasi adalah proses utama yang mengubah berbagai bahan baku padat, baik bahan baku fosil maupun sumber energi terbarukan, menjadi gas sintesis (syngas) yang kemudian dimanfaatkan lebih lanjut untuk memproduksi listrik melalui skema IGCC (Integrated Gasification Combined Cycle). Penelitian ini berfokus pada dampak dari variasi penggunaan bahan baku seperti batu bara kualitas rendah yang mewakilkan sumber energi fosil dan beberapa jenis biomassa yang mewakilkan sumber energi terbarukan, meliputi tandan kosong kelapa sawit, sekam padi dan kayu karet yang dipilih karena memiliki potensi tertinggi di Indonesia. Serta penggunaan variasi agen gasifikasi pada proses gasifikasi yaitu oksigen, udara, dan campuran udara dan uap air sehingga menghasilkan syngas. Metode simulasi dengan perangkat lunak Aspen Plus V.12 digunakan untuk mensimulasikan skema IGCC yang terdiri dari beberapa tahap proses, yaitu proses gasifikasi, pembersihan syngas, dan pembangkitan listrik. Masing-masing bahan baku dan agen gasifikasi disimulasikan sehingga didapatkan nilai kalor syngas serta daya listrik keluaran dan daya listrik yang dibutuhkan pada keseluruhan sistem IGCC. Nilai tersebut dievaluasi melalui perhitungan efisiensi cold gas yang meninjau seberapa efisien proses gasifikasi dalam mengubah bahan baku menjadi syngas serta perhitungan efisiensi termal dalam mengevaluasi seberapa efisien bahan baku terkonversi menjadi energi listrik dari keseluruhan proses pembangkit listrik. Data tersebut diolah untuk melihat korelasi karakteristik masing-masing syngas yang dihasilkan terhadap energi listrik yang dihasilkan.

The increase in electricity consumption in Indonesia from 2010 to 2030 has led to a focus on the development of thermochemical conversion technologies, particularly gasification, to meet energy needs. Gasification is the primary process that converts various solid feedstocks, whether fossil or renewable, into synthesis gas (syngas), which is further utilized to produce electricity through the Integrated Gasification Combined Cycle (IGCC) scheme. This study concentrates on the impact of using various feedstock such as low rank coal, representing fossil feedstocks, and several types of biomass including oil palm empty fruit bunches, rice husks, and rubberwood chosen for their high potential in Indonesia. Additionally, it explores the use of various gasification agents—oxygen, air, and air-steam—to produce syngas. Simulation methods utilizing Aspen Plus V.12 software are employed to simulate the IGCC scheme encompassing several process stages: gasification, syngas clean-up, and power generation. Each feedstock and gasification agent are respectively simulated to obtain syngas calorific values, electrical power output, and power required for the entire IGCC system. These values are evaluated through cold gas efficiency calculations, assessing the gasification process efficiency in converting feedstock into syngas, and thermal efficiency calculations to evaluate how efficiently feedstock is converted into electric energy in the overall power generation process. The data is processed to understand the correlation between the characteristics of the resulting syngas and the electric energy produced."
Depok: Fakultas Teknik Universitas Indonesia, 2024
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UI - Skripsi Membership  Universitas Indonesia Library
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Baginda Bukhori
"Kajian maupun penelitian mengenai teknologi yang menggunakan energi terbarukan sebagai bahan bakar telah menjadi salah satu langkah dalam menghadapi kelangkaan sumber energi dunia. Salah satu langkah tersebut adalah teknologi gasifikasi, yang menghasilkan gas mampu bakar dengan mengkonversikan bahan bakar padat, khususnya biomassa Dalam penelitian sebelumnya, sudah dilakukan penggantian bahan bakar menjadi 100% sekam padi. Akan tetapi, penggunaan biomassa sekam padi masih belum mencapai titik optimum kestabilan api. Untuk itu pada penelitian ini dilakukan beberapa modifikasi lanjut pada gasifier, dan pada burner dengan mencari nilai perbandingan udara bahan bakar yang paling optimum, sehingga mendapatkan pembakaran yang kontinu dan efisien.

Studies and research on technologies using renewable energy as fuel has become one of the steps in the face of scarcity of world energy resources. One of those step is gasification technology, which is able to produce a fuel gas to convert solid fuels, particularly biomass. In previous studies, had done the replacement fuel to 100% rice husks. However, the use of rice husk biomass still has not reached the point of optimum stability of the flame. Therefore in this study carried out several further modifications to the gasifier, and the burner by looking for value ratio of air to fuel the most optimum, to get a continuous and efficient combustion.
"
Depok: Fakultas Teknik Universitas Indonesia, 2015
S59756
UI - Skripsi Membership  Universitas Indonesia Library
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Raka Kautsar Lahia
"Biomass gasification is a process to convert biomass to be a combustible gas. That combustible gas named syngas later will be mixed with air or oxidator inside the gas burner to get appropiate mixing or air and fuel then could be produce optimum flame after being ignited. Gas burner that could mix the fuel and the air appropiately needed to get the optimum flame. Swirl vane is a part of gas burner that has a function to make a perfect mixing of air and fuel.The problem is the optimum number of swirl vane on gas burner still unknown. Experiment of three kinds of gas burner with different number of swirl vane; six ,eight , and ten swirl vanes done in this thesis with an objective to find out the most optimum number of swirl vane on gas burner.
The results of experiment on variation of swirl vane number on gas burner is gas burner with 8 swirl vanes has the highest average flame temperature (795°C), also the highest heat release rate (11,15 kJ/s). Higher the flame temperature result in higher heat release rate. Combustion efficiency on gas burner with 8 swirl vanes is the best with 85,5%, then gas burner with 10 swirl vanes with 85,1%, and the last gas burner with 6 swirl vanes with 83,1%. Those result indicate that gas burner with 8 swirl vanes could make the best internal recirculation zone (IRZ) so that the mixing of air and fuel in the gas burner with 8 swirl vanes becomes more perfect than the other gas burner result in the most perfect combustion process."
Depok: Fakultas Teknik Universitas Indonesia, 2010
S50961
UI - Skripsi Open  Universitas Indonesia Library
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Agus Edy Pramono
Depok: Fakultas Matematika dan Ilmu Pengetahuan Alam Universitas Indonesia, 2006
T39831
UI - Tesis Membership  Universitas Indonesia Library
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Ervandy Haryoprawironoto
"Sebagian besar komoditas di bidang pertanian seperti jerami padi dan tongkol jagung menghasilkan biomassa yang dapat dimanfaatkan sebagai sumber bahan baku industri petrokimia. Jerami padi dan tongkol jagung merupakan biomassa dengan jumlah berlimpah di Indonesia. Jerami padi dan tongkol jagung mengandung komponen lignoselulosa yang membuatnya dapat dimanfaatkan untuk menghasilkan toluena. Toluena adalah hidrokarbon aromatik yang digunakan secara luas dalam bahan baku industri dan juga sebagai bahan pelarut bagi industri lainnya. Bio-oil mengandung senyawa fenolat salah satunya cresol metil-fenol yang dapat diubah menjadi toluena melalui proses konversi katalitik. Bio-oil dari hasil pirolisis biomassa yang berbeda jenis akan memberikan yield bio-oil yang berbeda karena adanya perbedaan karakteristik seperti kandungan volatile matter, ash, dan fixed carbon. Bio-oil hasil pirolisis tongkol jagung menghasilkan yield bio-oil 44.16 berat, lebih besar dari jerami padi yakni 22.46 berat. Komposisi selulosa, hemiselulosa, dan lignin yang berbeda pada jerami padi dan tongkol jagung akan memberikan distribusi kelompok senyawa pada bio-oil -nya yang berbeda. Bio-oil hasil pirolisis jerami padi mengandung tiga kelompok senyawa terbesar yakni fenol 19.01 berat, furan 12.92 berat, dan keton 12.54 berat. Sedangkan tiga kelompok senyawa terbesar pada bio-oil hasil pirolisis tongkol jagung adalah fenol 24.02 berat, keton 15.08 berat, dan furan 11.67 berat. Bio-oil hasil pirolisis jerami padi dan tongkol jagung dikonversi menjadi toluena melalui konversi katalitik dengan komposisi katalis B2O3/?-Al2O3 dan suhu reaksi yang divariasikan. Hal tersebut dilakukan untuk mengetahui komposisi katalis dan suhu reaksi yang dapat menghasilkan yield toluena optimum. Komposisi katalis B2O3 dalam paduan katalis yang digunakan adalah 0 berat, 15 berat, dan 30 berat dengan suhu reaksi yang digunakan adalah 400°C dan 450°C. Yield toluena optimum sebesar 33.01 berat dihasilkan pada konversi bio-oil hasil pirolisis tongkol jagung dengan komposisi katalis yang digunakan terdiri atas 30 B2O3 dan 70 ?-Al2O3 pada suhu reaksi 450°C.

Most commodities in agriculture such as rice straw and corn cobs produce biomass which can be utilized as a source of petrochemical feedstock. Rice straw and corn cob are type of biomass with abundant amount in Indonesia. Rice straw and corncob contain lignocellulosic components that make them useful for toluene production. Toluene is an aromatic hydrocarbon that is widely used in industrial raw materials as well as solvents for other industries. Bio oil contains phenolic compounds, one of them is cresol methyl phenol which can be converted to toluene through a catalytic conversion process. Bio oil from different types of biomass pyrolysis will yield different bio oil yields due to its different characteristics including volatile matter, ash, and fixed carbon content. Bio oil from corncob pyrolysis yields 44.16 wt of bio oil yield, greater than that of rice straw 22.46 wt. Different cellulose, hemicellulose, and lignin compositions on rice straw and corncob will give different composition of components found in bio oil. Bio oil from pyrolysis of rice straw contains the three largest groups of compounds namely phenol 19.01 wt, furan 12.92 wt, and ketone 12.54 wt. While the three largest groups of compounds in bio oils of corncob pyrolysis are phenol 24.02 wt, ketones 15.08 wt, and furan 11.67 wt. Bio oil from pyrolysis of rice straw and corn cobs are converted to toluene by catalytic conversion with the variation of B2O3 Al2O3 catalyst composition and the reaction temperature. This is done to determine the catalyst composition and reaction temperature which can produce the optimum toluene yield. The catalyst composition of B2O3 used in the mixed catalyst was 0 wt, 15 wt, and 30 wt with the reaction temperature used was 400°C and 450°C. The optimum toluene yield of 33.01 wt was produced in the conversion of the corncob pyrolysis bio oil with the catalyst composition used comprising 30 wt B2O3 and 70 wt Al2O3 at reaction temperature of 450°C."
Depok: Fakultas Teknik Universitas Indonesia, 2017
S68254
UI - Skripsi Membership  Universitas Indonesia Library
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Fahmy Husin Bagis
"The study of nanocellulose has been emerging due to its highly possible applications. The main objective of this research is to fabricate nanocellulose crystalline filament from Sugarcane Bagasse through wet-spinning method. Sugarcane Bagasse is chosen due to its abundance in Indonesia and high cellulose content. In this research, the Sugarcane Bagasse were mechanically treated in order to minimize the size. Secondly, the biomass is pre-treated with NaClO2 (Bleaching) in order to eliminate lignin and hemicellulose. Thirdly, the biomass is treated with Acid Hydrolysis. The variation used in Acid Hydrolysis is HCl with 1, 3, and 5. After obtaining Nanocellulose Crystalline, the biomass was spun through wet-spinning method using 16G needle, 18G needle, 1.5, and 2 in concentration as the variation. The wet spinning method used a coagulating bath that is filled with Acetone. The characterization used in this research would be Cellulose Content Test, TEM, XRD, and Tensile Strength Test. The average results of this research are 42.75 on cellulose isolation, 63.9 on CNC crystallinity index, 45.3 nm on particle size, and 4.3 lbs on tensile strength at fracture with 11.91 on elongation. Nanocellulose Filament used in this research would be applicable for the future textile and material industry that possibly replace fossil fuel-based material.

Studi tentang nanoselulosa telah muncul karena pengaplikasian yang sangat memungkinkan. Tujuan utama dari penelitian ini adalah untuk membuat filamen kristal nanoselulosa dari ampas tebu melalui metode pemintalan basah atau wet spinning. Ampas tebu dipilih karena kelimpahannya di Indonesia dan kandungan selulosa yang tinggi. Dalam penelitian ini, ampas tebu diperlakukan secara mekanis untuk meminimalkan ukuran. Kedua, ampas tebu diolah dengan NaClO2 (Bleaching) untuk menghilangkan lignin dan hemiselulosa. Ketiga, ampas tebu diperlakukan dengan Hidrolisis Asam. Variasi yang digunakan dalam Hidrolisis Asam adalah HCl dengan 1, 3, dan 5. Setelah memperoleh Nanocellulose Crystalline (CNC), biomassa dipintal melalui metode pemintalan basah menggunakan jarum 16G, jarum 18G, konsentrasi 1,5, dan 2 sebagai variasi. Metode pemintalan basah menggunakan rendaman koagulasi yang diisi dengan Aseton. Karakterisasi yang digunakan dalam penelitian ini adalah Uji Konten Selulosa, TEM, XRD, dan Uji Kekuatan Tarik. Hasil rata-rata dari penelitian ini adalah 42,75 pada isolasi selulosa, 63,9 pada indeks kristalinitas CNC, 45,3 nm pada ukuran partikel, dan 4,3 lbs pada kekuatan tarik pada fraktur dengan 11,91 pada perpanjangan. Filamen Nanoselulosa yang digunakan dalam penelitian ini akan berlaku untuk industri tekstil dan material yang mungkin dapat menggantikan bahan berbasis bahan bakar fosil di masa yang akan datang.
"
Depok: Fakultas Teknik Universitas Indonesia, 2019
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UI - Skripsi Membership  Universitas Indonesia Library
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Nindita Larasati
"ABSTRACT
An extensive search of clean energy is the main drive for hydrogen production technology advancements. Hydrogen is an appealing energy source as an alternative to fossil fuels due to its carbon neutral lifecycle, making it more environmental friendly. Gasification technology is one of the most sought-after method of hydrogen production due to its efficiency and flexibility of the feedstock options. This research intends to bridge the gap where current literature is lacking by presenting a thermodynamic equilibrium model through simulation of non-catalytic steam gasification of oil palm kernel shell using Aspen Plus v10.0 software. A couple of operating parameters that have adverse effect on gasification efficiency, namely temperature of gasifier and steam-to-biomass (S/B) ratio were investigated in this study. The simulation results show that the optimum operating condition to get the highest hydrogen yield is obtained at temperature of 800 oC and S/B ratio of 1.0 wt/wt. Temperature enhances hydrogen content up to 82.54 vol% at the range of 750 to 800 oC while the highest margin of the incline of hydrogen composition is observed from 0.5 to 1.0 wt/wt at  80.90 vol% to 82.24 vol%. Based on the results, temperature has more impact on hydrogen yield compared to S/B ratio due to endothermic reactions being favored at high temperature such as water gas reaction and steam methane reforming reaction. Although hydrogen yield increases with an increase in S/B ratio, it is not beneficial to introduce too much excess steam since it does not have great impact to hydrogen yield with less than 1% increase per kg steam introduced. Different feedstocks were used as comparison to test the applicability of the model. It is found that pine sawdust and oil palm kernel shell are proven to be the most suitable feedstock as they give high hydrogen yield and high hydrogen content in syngas due to high volatile matter and fixed carbon content in addition to low moisture and ash content compared to municipal solid wastes (MSW), green wastes, food wastes, and straw.

ABSTRAK
Penelitian mengenai energi bersih adalah dorongan utama dari kemajuan teknologi produksi hidrogen. Hidrogen adalah sumber energi yang menarik sebagai alternatif dari bahan bakar fosil dikarenakan oleh siklus yang netral dari karbon, menjadi lebih ramah lingkungan. Teknologi gasifikasi adalah salah satu metode yang paling terkemuka akibat efisiensi dan fleksibilitas pemilihan bahan baku. Penelitian ini bertujuan untuk menjembatani kesenjangan dimana literatur terkini kurang mendalami dengan mengajukan model ekuilibrium termodinamika melalui simulasi gasifikasi uap non-katalis dengan bahan baku cangkang kelapa sawit menggunakan perangkat lunak Aspen Plus versi 10.0. Beberapa parameter operasi yang berpengaruh terhadap efisiensi gasifikasi seperti temperatur dari reaktor dan rasio uap-biomassa telah diteliti dalam studi ini. Hasil simulasi menunjukkan kondisi operasi optimal untuk mendapatkan hasil produksi hidrogen tertinggi dicapai pada temperatur 800 C dan rasio uap-biomass 1.0 wt/wt. Temperatur menaikkan komposisi hidrogen sehingga 82.54 vol% pada kisaran 750 sampai 800 C sedangkan margin kenaikan komposisi hidrogen paling tinggi didapat dari 0.5 sampai 1.0 wt/wt dari 80.90 vol% menjadi 82.24 vol%. Berdasarkan dari hasil, temperatur memberikan dampak yang lebih besar dibandingkan rasio uap-biomass diakibatkan oleh reaksi endotermik yang lebih spontan pada temperatur tinggi seperti reaksi air-gas dan reaksi reformasi metana dan uap. Walaupun hasil hidrogen meningkat seiring kenaikan dari rasio uap-biomass, memasukkan uap terlalu banyak tidak efisien sebab efeknya tidak signifikan dengan kenaikan kurang dari 1% per kilogram uap tambahan. Bahan baku berbeda digunakan sebagai perbandingan untuk menguji penerapan model ini. Hasil menunjukkan bahwa serbuk kayu pinus (pine sawdust) dan cangkang kelapa sawit terbukti menjadi bahan baku yang paling cocok untuk gasifikasi karena menghasilkan hasil dan komposisi hidrogen yang paling tinggi disebabkan oleh konten zat mudah menguap dan karbon tetap yang tinggi dengan konten kelembaban dan abu yang rendah dibandingkan limbah padat, limbah hijau, limbah makanan, dan jerami."
2019
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UI - Skripsi Membership  Universitas Indonesia Library
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