• 제목/요약/키워드: coal tar pitch

검색결과 65건 처리시간 0.053초

Effect of carbonization temperature on crystalline structure and properties of isotropic pitch-based carbon fiber

  • Kim, Jung Dam;Roh, Jae-Seung;Kim, Myung-Soo
    • Carbon letters
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    • 제21권
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    • pp.51-60
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    • 2017
  • Isotropic pitch-based fibers produced from coal tar pitch with the melt-blowing method were carbonized at temperatures ranging from 800 to $1600^{\circ}C$ to investigate their crystalline structure and physical properties as a function of the carbonization temperature. The in-plane crystallite size ($L_a$) of the carbonized pitch fiber from X-ray diffraction increased monotonously by increasing the carbonization temperature resulting in a gradual increase in the electrical conductivity from 169 to 3800 S/cm. However, the variation in the $d_{002}$ spacing and stacking height of the crystallite ($L_c$) showed that the structural order perpendicular to the graphene planes got worse in carbonization temperatures from 800 to $1200^{\circ}C$ probably due to randomization through the process of gas evolution; however, structural ordering eventually occurred at around $1400^{\circ}C$. For the carbonized pitch powder without stabilization, structural ordering perpendicular to the graphene planes occurred at around $800-900^{\circ}C$ indicating that oxygen was inserted during the stabilization process. Additionally, the shear stress that occurred during the melt-blowing process might interfere with the crystallization of the CPF.

석탄계 피치에 요오드를 소량 첨가하여 제조한 탄소복합재의 치밀화 거동 (Densification Behavior of C/C Composite Derived from Coal Tar Pitch with Small Amount of Iodine Addition)

  • 조광연;류도형;신동근;주혁종;구형회;박인서
    • 한국세라믹학회지
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    • 제46권6호
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    • pp.643-647
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    • 2009
  • We investigated the viscosity behavior and the carbon yield of coal tar pitch (CTP) treated with iodine. The viscosity of iodine treated pitch showed that the fluidity of iodine treated CTP did not increase within the iodine addition of 1.4%. DTG analysis showed that cross linking was accelerated at the temperature range from $400\;to\;500{^{\circ}C}$ with iodine treatment, which is due to the accelerated dehydrogenative reaction by iodine. The iodine treatment was mainly effective for β-resin content increase of CTP. The carbon yield of CTP increased from 40 to 60% by the iodine non-treated CTP.

석탄계 피치를 이용한 고밀도 흑연 제조 (Manufacture of High Density Graphite Using Coal Tar Pitch)

  • 조광연;김경자;류도형;임광현;김정일;신인철;임연수;주혁종
    • 한국세라믹학회지
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    • 제43권12호
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    • pp.839-845
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    • 2006
  • Graphite has hexagonal closed packing structure with two bonding characteristics; (1) van der waals bonding between c axis, and (2) covalent bonding in the a and b axis. The weak van der waals bonds cause self-lubricant property, and the strong covalent bonds cause excellent electric and thermal conductivity. Furthermore, graphite is chemically very inert because of the material composed of only carbon elements. Thus, graphite is very useful for mechanical sealing materials. However, Graphite have porous microstructure because starting materials of graphite produce many volatile during the manufacturing processes. This causes low density of graphite, which is unsuitable for the mechanical sealing materials. Thus, further impregnation process is generally needed to enhance the graphite density. In this work, high density graphite is prepared with the principle of densification when coke and pitch binder, prepared from thermal treatment of coal tar pitch, become dehydrogenation during graphitization or carbonization.

KOH 활성화가 슈퍼커패시터용 콜타르 피치 활성탄소의 전기화학적 성능에 미치는 영향 (Influence of KOH Activation on Electrochemical Performance of Coal Tar Pitch-based Activated Carbons for Supercapacitor)

  • 허지훈;서민강;김학용;김익준;박수진
    • 폴리머
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    • 제36권6호
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    • pp.756-760
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    • 2012
  • 본 연구에서는 콜타르 피치를 출발물질로 하여 KOH로 활성화시킨 슈퍼커패시터용 전극소재를 제작하였다. 콜타르 피치와 KOH의 활성화 비율을 1:4로 설정한 후 활성화 온도를 $600{\sim}900^{\circ}C$까지 $100^{\circ}C$ 단위로 4종류의 활성탄소를 제조한 후 피치계 활성탄소의 전기화학적 성능에 대한 KOH 활성화 온도의 영향에 관하여 고찰하였다. 또한 활성탄소의 형태학적 특성 변화를 흡착등온선과 FE-SEM을 통하여 분석하였다. 실험결과, 활성탄소의 커패시턴스는 전극 내 내부저항의 감소에 따라 증가하였는데, 이는 활성화 온도가 증가함에 따라 활성탄소 내 미세기공이 발달했기 때문이라 판단된다.

불소전해용 양극탄소전극의 전극특성에 미치는 첨가 결합제의 영향 (Effects of Additive Binder Contents on Electrode Properties of Carbon Anode for Fluorine Electrolysis)

  • 안홍주;오한준;지충수;김영철;고영신
    • 대한화학회지
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    • 제45권5호
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    • pp.413-421
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    • 2001
  • 결합제인 coal tar pitch와 petroleum cokes를 주원료로 결합제 함량을 변화시켜 불소 전해용 탄소 전극을 제조한 후 결합제 함량의 변화가 전극특성에 미치는 영향을 조사하였다. 탄소 전극의 특성 조사는 1mM의 $[Fe$(CN)_6$]^{3-}$/$[Fe$(CN)_6$]^{4-}$가 첨가된 0.5M $K_2SO_4$용액에서의 cyclic voltammogram 거동, 기계적 강도, 그리고 $KF{\cdot}2HF$ 용액에서의 전기화학적 거동을 통하여 평가되었으며 이 결과 40 wt%의 결합제가 첨가된 경우 제일 양호한 전기특성을 나타내었다. 이러한 양호한 전극특성은 탄소전극 표면에 생성된 기공이 적절하게 분포하여 실질적으로 전극의 비표면적을 향상시켰기 때문이다.

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Preparation and Properties of Pelletized Activated Carbons Using Coconut Char and Coal-Tar Pitch

  • Yang, Seung-Chun;Lee, Young-Seak;Kim, Jun-Ho;Lim, Chul-Kyu;Park, Young-Tae
    • Carbon letters
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    • 제2권3_4호
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    • pp.176-181
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    • 2001
  • A series of activated carbons were prepared from coconut shells and coal-tar pitch binder by physical activation with steam in this study. The effect of variable processes such as activation temperature, activation time and ratio of mixing was investigated for optimizing those preparation parameters. The activation processes were carried out continuously. The nitrogen adsorption isotherms at 77 K on pellet-shaped activated carbons show the same trend of Type I by IUPAC classification. The average pore sizes were about 19-21${\AA}$. The specific surface areas ($S_{BET}$) of pellet typed ACs increased with increasing the activation temperature and time. Specific surface area of AC treated for 90 min at temperature $900^{\circ}C$ was 1082 $m^2/g$. The methylene blue numbers continuously increased with increasing the activation temperature and time. On the other hand, iodine numbers highly increased till activation time of 60 min, but the rate of increase of iodine numbers decreased after that time. This indicates that new micropores were created and the existing micropores turned into mesopores and macropores because of increased reactivity of carbon surface and $H_2O$.

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