• Title/Summary/Keyword: pretreatment process

Search Result 719, Processing Time 0.035 seconds

전처리 공정에 따른 폐 신문지의 효소 가수분해 특성

  • Mun, Nam-Gyu;Lee, Jae-Hwan;Kim, Seong-Bae
    • 한국생물공학회:학술대회논문집
    • /
    • 2000.04a
    • /
    • pp.459-462
    • /
    • 2000
  • The pretreatment of used newspaper for the enzymatic digestion preprocess was performed on a percolation reactor and a batch reactor. The test condition of percolation process was $170^{circ}C$, 60min, 1 mL/min, and 400psi, that of batch was $40^{circ}C$, 3hr. and latm Reaction solutions used in pretreatment process were aqueous ammonia, sulfuric acid, water, and hydrogen-peroxide as an oxidizing agent. As a result, the effect of pretreatment was similar to batch and percolation process, but the yield of enzymatic hydrolysis was higher in batch than percolation. This batch pretreatment enhanced enzymatic hydrolysis rate and increased glucose yield from about 15 to 20%. The inhibition factors influenced the rate of enzymatic hydrolysis was investigated, and the ink contented newspaper was the major factor.

  • PDF

Pretreatment of Helianthus tuberosus Residue by Two-Stage Flow Through Process (2단 흐름형 침출공정에 의한 돼지감자 줄기의 전처리)

  • Park, Yong Cheol;Kim, Jun Seok
    • Korean Chemical Engineering Research
    • /
    • v.53 no.4
    • /
    • pp.417-424
    • /
    • 2015
  • In this study, the pretreatment of Helianthus tuberosus residue had been performed. The two-stage pretreatment on flow-through process were applied in the interests of increase of sugar production yield on enzymatic saccharification. The delignification by aqueous ammonia and the fractionation of hemicellulose by sulfuric acid solution as pretreatment solution were confirmed for effects of enzymatic saccharification. Two-stage pretreatment process was performed using aqueous ammonia and sulfuric acid. The first step was performed with aqueous ammonia for 40 min at $163.2^{\circ}C$ and the second step was performed with sulfuric acid solution for 20 min at $169.7^{\circ}C$. And then, the first step was performed with sulfuric acid solution and the second step was pretreated with aqueous ammonia. At this time, the glucose production was 30.7 g and the glucose yield was 72.4% in the first step process with aqueous ammonia. And, the glucose production was 20.9 g and the glucose yield was 49.3% in the first step process with sulfuric acid solution.

An Overview of the Pretreatment Processes in Seawater Desalination Plants using Reverse Osmosis Membranes (역삼투막을 이용한 해수담수화 플랜트에서 전처리 공정 기술)

  • Ahn, Chang Hoon;Lee, Wonil;Yoon, Jeyong
    • Journal of Korean Society of Water and Wastewater
    • /
    • v.23 no.6
    • /
    • pp.811-823
    • /
    • 2009
  • Seawater desalination process using a reverse osmosis (RO) membrane has been considered as one of the most promising technologies in solving the water scarcity problems in many arid regions around the world. To protect RO membrane in the process, a thorough understanding of the pretreatment process is particularly needed. Seawater organic matters (SWOMs) may form a gel layer on the membrane surface, which will increase a concentration polarization. As the SWOMs can be utilized as a substrate, membrane biofouling will be progressed on the RO membrane surface, resulting in the flux decline and increase of trans-membrane pressure drop and salt passage. In the middle of disinfection, an optimal chlorine dosage and neutralizer (sodium bisulfite, SBS) should be practiced to prevent oxidizing the surface of RO membranes. Additional fundamental research including novel non-susceptible biofouling membranes would be necessary to provide a guide line for the proper pretreatment process.

Temperature Effect in the process of DAF as pretreatment of SWRO (해수담수화 전처리로서 DAF공정에서 고온의 해수에 대한 영향 특성)

  • Park, Hyunjin;Dockko, Seok
    • Journal of Korean Society of Water and Wastewater
    • /
    • v.26 no.6
    • /
    • pp.807-813
    • /
    • 2012
  • Flocculation and flotation are used as pretreatment steps prior to the reverse osmosis (RO) process. During seawater treatment, high temperature can change the water chemistry of seawater during the process of coagulation. It also affects bubble volume concentration (BVC) and bubble characteristics. Coagulants such as alum and ferric salts at $40^{\circ}C$ can also change flux rates in the seawater reverse osmosis (SWRO) process. In this study, the bubble characteristics in dissolved air flotation (DAF), used as a SWRO pretreatment process, were studied in synthetic seawater at $20^{\circ}C$ and $40^{\circ}C$. The flux of an RO membrane was monitored after dosing the synthetic seawater with coagulants at different temperatures. Results showed that BVC increases as the operating pressure increases and as the salt concentration decreases. The bubble size released at $40^{\circ}C$ is far smaller than that at $20^{\circ}C$The addition of a ferric salt is effective for turbidity removal in synthetic seawater at $20^{\circ}C$; it is more effective than alum. When synthetic seawater was dosed with a ferric salt, the RO membrane flux increased by 27 % at $40^{\circ}C$.

Levulinic Acid Production from Lignocellulosic Biomass by co-solvent Pretreatment with NaOH/THF (NaOH/THF 공용매 전처리 목질계 바이오매스로부터 레불린산 생산)

  • Seung Min Lee;Seokjun Han;Jun Seok Kim
    • Korean Chemical Engineering Research
    • /
    • v.61 no.2
    • /
    • pp.265-272
    • /
    • 2023
  • Lignocellulosic biomass is essential to pretreatment because of having rigid structures and a lot of lignin. Among methods of pretreatment, using THF solvents has the advantage of being easy to reuse. THF (Tetrahydrofuran) used as a co-solvent with water or ionic solvent that is inexpensive and can remove lignin over a wide range of reaction conditions. NaOH (Sodium hydroxide) has been demonstrated to preferentially solvate lignin from cellulose. Thus, NaOH was used as a pretreatment co-solvent for the fractionation of lignin by destroying the ether bond to amend for hydrolysis and expand the surface area of cellulose and hemicellulose. In this experiment, lignin was removed by the NaOH/THF co-solvent pretreatment process to characteristics for the pretreatment and obtain the optimal levulinic acid conversion yield through the acid catalyst conversion process. the NaOH/THF co-solvent system was conducted in various ratios of co-solvent under a total of 16 conditions. And the temperature was 180 ℃ during to 60 mins. The optimum condition of co-solvent is NaOH 5 wt%/THF 90:10(v/v%), 76.8% glucan content was obtained through this co-solvent pretreatment, and 90.1% lignin was removed. In the acid catalyst conversion process, which is a subsequent pretreatment process, the experiment was conducted under the conditions of 30 to 90 min of reaction time and 160 ℃ to 200 ℃ reaction temperature. The optimum condition of acid catalyst conversion process is 60min reaction time under of 180 ℃, and it obtained 84.7% of levulinic aicd conversion yield.

A Research Trend of Pretreatment in Bioethanol Production Process with Lignocellulosic Biomass: A Literature Review (목질계 바이오에탄올 생산의 전처리 기술에 관한 연구동향)

  • Kim, Yeong-Suk
    • Journal of the Korean Wood Science and Technology
    • /
    • v.37 no.3
    • /
    • pp.274-286
    • /
    • 2009
  • Lignocellulosic biomass is the most abundant raw material for bioconversion in many country. However the high costs for pretreatment and enzymatic hydrolysis currently deter commercialization of lignocellulosic biomass, especially wood biomass which is considered as the most recalcitrant material for enzymatic hydrolysis mainly due to the high lignified structure and the nature of the lignin component. Therefore, overcoming recalcitrance of lignocellulosic biomass for converting carbohydrates into intermediates that can subsequently be converted into biobased fuels and biobased products is the primary technical and economic challenge for bioconversion process. This study was mainly reviewed on the research trend of pretreatment with lignocellulosic biomass in bioethanol production process.

Enhancement of Enzymatic Hydrolysis of Cellulosic Biomass by Organosolv Pretreatment Using High Concentration of Ethanol (효소당화 효율 향상을 위한 섬유소계 바이오매스의 고농도 유기용매 전처리 공정)

  • Kim, Jun Seok
    • Korean Chemical Engineering Research
    • /
    • v.59 no.1
    • /
    • pp.54-59
    • /
    • 2021
  • The pretreatment of cellulosic biomass is essentially needed because it has more lignin compared with a starch biomass. Ethanol as an organosolv for pretreatment can easily separate some components which can inhibit enzymatic hydrolysis and be re-usuable by distillation. The flow-through process have some strength, separating components continuously, development for scale up. In this research, two-kinds (wheat straw, miscanthus) of biomass was pretreated for development of enzymatic hydrolysis by adoption of pretreatment process of corn stover.

Conceptual Design of Pretreatment Process for SIES Using Membrane Process (막분리 공정을 이용한 SIES 전처리설비 개념 설계)

  • 이상진;양호연;신상운
    • Proceedings of the Korean Radioactive Waste Society Conference
    • /
    • 2003.11a
    • /
    • pp.15-20
    • /
    • 2003
  • During operation process of SIES(Selective ion exchange system) at Kori Unit 2, it was impossible to remove radionuclides such as ion form and Ag-110m, etc., because activated carbon and ion exchange resin of this system are fouled easily by suspended solids and oils in liquid radwaste that was flowed in this system. In this study, an experiment to improve quality of water which was flowed in SIES was performed. and design data of Scale-up pretreatment process were secured. Also, each module design for Microfiltration and Nanofiltration unit of the pretreatment process for SIES was performed.

  • PDF

Effects of coagulation-UF pretreatment on pressure retarded osmosis membrane process (응집-UF 전처리 공정이 압력지연삼투 공정에 미치는 영향)

  • Goh, Gilhyun;Kim, Suhyun;Kim, Jungsun;Kang, Limseok
    • Journal of Korean Society of Water and Wastewater
    • /
    • v.35 no.4
    • /
    • pp.285-292
    • /
    • 2021
  • Osmotic power is to produce electric power by using the chemical potential of two flows with the difference of salinity. Water permeates through a semipermeable membrane from a low concentration feed solution to a high concentration draw solution due to osmotic pressure. In a pressure retarded osmosis (PRO) process, river water and wastewater are commonly used as low salinity feed solution, whereas seawater and brine from the SWRO plant are employed as draw solution. During the PRO process using wastewater effluent as feed solution, PRO membrane fouling is usually caused by the convective or diffusive transport of PRO which is the most critical step of PRO membrane in order to prevent membrane fouling. The main objective of this study is to assess the PRO membrane fouling reduction by pretreatment to remove organic matter using coagulation-UF membrane process. The experimental results obtained from the pretreatment test showed that the optimum ferric chloride and PAC dosage for removal of organic matter applied for the coagulation and adsorption process was 50 mg/L as FeCl3 (optimum pH 5.5). Coagulation-UF pretreatment process was higher removal efficiency of organic matter, as also resulting in the substantial improvement of water flux of PRO membrane.

The efficiency variation of UF(tubular)/RO(spiral wound) process using acrylic wastewater treated by different pretreatment processes (아크릴 폐수의 전처리공정에 따른 UF(tubular)/RO(spiral wound) 공정의 성능변화)

  • Lee, Kwang-Hyun;Han, Sung-Bum;Choi, Dae-Woong
    • Journal of Korean Society on Water Environment
    • /
    • v.18 no.4
    • /
    • pp.387-394
    • /
    • 2002
  • The efficiency variation of UF(tubular)/RO(spiral wound) process using acrylic wastewater treated by photo-catalyst pretreatment and coagulant-filter-neutralization pretreatment processes were discussed wit the variation of appled pressure and temperature. Ultrafiltration tubular module using acrylic wastewater treated by photo-catalyst pretreatment and coagulant-filter-neutralization pretreatment processes was shown that COD and T-N were not highly affected with the variation of appled pressure and temperature. It was shown that removal efficiency of COD and T-N was low. Removal efficiency of TDS and turbidity with ultrafiltration tubular module was better with the acrylic wastewater by photo-catalyst pretreatment than acrylic wastewater by coagulant-filter-neutralization pretreatment. T-N and TDS were shown high removal efficiency in reverse osmosis membrane process.