• Title/Summary/Keyword: 하이드록실암모늄

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Performance Evaluation of 1 N Class HAN/Methanol Propellant Thruster (HAN/메탄올 추진제를 사용하는 1 N급 추력기 성능 평가)

  • Lee, Jeongsub;Huh, Jeongmoo;Cho, Sungjune;Kim, Suhyun;Park, Sungjun;Kim, Sukyum;Kwon, Sejin
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.41 no.4
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    • pp.299-304
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    • 2013
  • The HAN which is an ionic liquid is a non-toxic monopropellant with high storability, and its specific impulse can be increased by blending methanol, thereby it can substitute the hydrazine. The HAN was synthesized by acid-base reaction of hydroxylamine and nitric acid, and the blending ratio of HAN and methanol is 8.2:1. The iridium catalyst was used to decompose the HAN, and 1 N class thruster with shower head type injector having one orifice was used to evaluate the HAN/Methanol propellant. The thermal stability of distributor was increased by using ceramic material to endure the high temperature of product gas. The preheating temperature of catalyst should be $400^{\circ}C$ at least for the complete decomposition. The feeding pressure should be increased to increase the $C^*$ efficiency, thereby the decomposition performance was decreased upstream catalyst, and the performance of thruster was decreased. The fine metal mesh was inserted after the injector to improve the atomization of propellant, thereby it can settle the performance decrease problem. The phenomenon of performance decrease was remarkably improved owing to the insertion of fine metal mesh.

Synthesis of Energetic Metal-free Cyclo-pentazolate Salts Through Efficient Preparation Method (효율적인 제조 방법을 통한 비금속-펜타졸 염화합물의 합성)

  • Kown, Kuktae;Kim, Seunghee;Lee, Sojung;Yoo, Hae-Wook
    • Journal of the Korean Society of Propulsion Engineers
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    • v.25 no.6
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    • pp.66-73
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    • 2021
  • The development of excellent high-energy materials has progressed in the direction of synthesizing compounds with high nitrogen content, ultimately oriented toward the form of polynitrogen. As cyclo-N5-, a type of polynitrogen, is synthesized as sodium pentazolate(NaN5) and the results of various metal and non-metal compounds have been studied, the usage of polynitrogen compounds is attracting attention. However, since the known synthesis and purification method of NaN5 are very extreme and complicated, it is essential to improve the process in order to increase the utility of the pentazolate compounds in the future. In this study, only a simple filtration method was applied to purify the NaN5, and based on this, two non-metal pentazolate salt compounds were successfully synthesized.

Lithoautotrophic Nitrogen Removal from Ammonium-rich Wastewater in Aerobic Upflow Sludge Bed(AUSB) Reactor (호기성 상향류 슬러지상 반응조를 이용한 고농도 암모늄 함유폐수의 독립영양 질소제거)

  • Ahn, Young-Ho;Choi, Hoon-Chang
    • Journal of Korean Society of Environmental Engineers
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    • v.28 no.8
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    • pp.852-859
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    • 2006
  • The novel microbial process such as Anammox(anaerobic ammonium oxidation) and Canon(completely autotrophic nitrogen removal over nitrite) processes is promising biotechnology to remove nitrogen from ammonium-rich wastewater like anaerobic sludge digester liquid. In this research, a new Canon-type nitrogen removal process adopting upflow granular sludge bed type configuration was investigated on its feasibility and process performance, using synthetic wastewater and sludge digester liquids. Air as an oxygen source was provided in an external aeration chamber with flow recirculation. In the first experiment using the synthetic wastewater(up to 110 mg $NH_4$-N $L^{-1}$), the ammonium removal was about 95%(92% for T-N) at effective hydraulic retention time(HRT) for 3.8 days. In the second experiment using the sludge digester liquids($438{\pm}26$ mg $NH_4$-N $L^{-1}$), the total nitrogen removal was $94{\pm}1.7%$ at HRT for 5.4 days and $76{\pm}1.5%$ at HRT for 3.8 days, respectively. Little nitrite and nitrate were observed in the effluent of both experiments. The process revealed quite a lower oxygen($0.29{\sim}0.59$ g $O_2$ $g^{-1}N$) and less alkalinity($3.1{\sim}3.4$ g $CaCO_3$ $g^{-1}N$) consumption as compared to other new technology in microbial nitrogen removal. The process also offers the economical compact reactor configuration with excellent biomass retention, resulting in lower cost for investment and maintenance.