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      붕소/실리콘 졸 화합물로 도포된 편백 목재의 연기유해성 평가 = Smoke Hazard Assessment of Cypress Wood Coated with Boron/Silicon Sol Compounds

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      https://www.riss.kr/link?id=A106606108

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      국문 초록 (Abstract)

      본 연구는 건축 및 내구재용 목재인 편백 목재에 붕소/실리콘 졸 화합물을 처리한 후 화재위험성을 연기 유해성에 대하여 연기성능지수(SPI), 연기성장지수(SGI)와 연기강도(SI)를 중심으로 조사하였다. 화합물은 Tetraethoxyorthosilicate를 Boronic acid와 Boric acid 유도체와 반응시켜 합성하였다. 연기 특성은 편백목재에 대하여 Cone calorimeter (ISO 5660-1) 장비를 이용하여 조사하였다. 화재강도는 50 kW/m2의 외부 열 유속(External heat flux)으로 고정시켰다. 연소반응 후 측정된 연기성능지수는 편백목재와 비교하여 13.4∼126.7% 증가하였다. 연기성능지수에 의한 화재위험성은 편백목재, PBA/Si, IBBA/Si, BA/Si 순서로 감소하였다. 연기성장지수는 편백목재와 비교하여 12.0∼57.5% 감소하였다. 연기성장지수에 의한 화재위험성은 편백목재, PBA/Si, IBBA/Si, BA/Si 순서로 낮아졌다. 연기강도에 의한 화재위험성은 3.2∼57.8% 감소하였으며 편백목재, PBA/Si, IBBA/Si, BA/Si 순서로 낮아졌다. COpeak 농도는 85∼93 ppm였으며 공시편과 비교하여 37∼43% 감소하였다. 화재위험성을 연기유해성에 대해 종합적으로 평가하면 편백목재, PBA/Si, IBBA/Si, BA/Si순서로 낮아졌다.
      번역하기

      본 연구는 건축 및 내구재용 목재인 편백 목재에 붕소/실리콘 졸 화합물을 처리한 후 화재위험성을 연기 유해성에 대하여 연기성능지수(SPI), 연기성장지수(SGI)와 연기강도(SI)를 중심으로 조...

      본 연구는 건축 및 내구재용 목재인 편백 목재에 붕소/실리콘 졸 화합물을 처리한 후 화재위험성을 연기 유해성에 대하여 연기성능지수(SPI), 연기성장지수(SGI)와 연기강도(SI)를 중심으로 조사하였다. 화합물은 Tetraethoxyorthosilicate를 Boronic acid와 Boric acid 유도체와 반응시켜 합성하였다. 연기 특성은 편백목재에 대하여 Cone calorimeter (ISO 5660-1) 장비를 이용하여 조사하였다. 화재강도는 50 kW/m2의 외부 열 유속(External heat flux)으로 고정시켰다. 연소반응 후 측정된 연기성능지수는 편백목재와 비교하여 13.4∼126.7% 증가하였다. 연기성능지수에 의한 화재위험성은 편백목재, PBA/Si, IBBA/Si, BA/Si 순서로 감소하였다. 연기성장지수는 편백목재와 비교하여 12.0∼57.5% 감소하였다. 연기성장지수에 의한 화재위험성은 편백목재, PBA/Si, IBBA/Si, BA/Si 순서로 낮아졌다. 연기강도에 의한 화재위험성은 3.2∼57.8% 감소하였으며 편백목재, PBA/Si, IBBA/Si, BA/Si 순서로 낮아졌다. COpeak 농도는 85∼93 ppm였으며 공시편과 비교하여 37∼43% 감소하였다. 화재위험성을 연기유해성에 대해 종합적으로 평가하면 편백목재, PBA/Si, IBBA/Si, BA/Si순서로 낮아졌다.

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      다국어 초록 (Multilingual Abstract)

      In this study, boron/silicon sol compounds were applied to wood for construction and durable materials, and fire risks were investigated in terms of smoke performance index (SPI), smoke growth index (SGI), and smoke intensity (SI). The compound was synthesized by reacting tetraethoxyorthosilicate with boric acid and boronic acid derivatives. Smoke characteristics were investigated using a cone calorimeter (ISO 5660-1) equipment for cypress wood. The fire intensity fixed the external heat flux at 50 kW/m2. The smoke performance index measured after the combustion reaction increased between 13.4% and 126.7% compared with cypress wood. The fire risk due to the smoke performance index decreased in the order of cypress, phenylboronic acid/silicon sol (PBA/Si), (2-methylpropyl) boronic acid/silicon sol (IBBA/Si), boric acid/silicon sol (BA/Si). The smoke growth index decreased between 12.0% and 57.5% compared to the base specimen. The risk of fire caused by the smoke growth index decreased in the order of cypress, PBA/Si, IBBA/Si, BA/Si. The fire risk due to smoke intensity decreased between 3.2% and 57.8%, and in the order of cypress, PBA/Si, IBBA/Si, BA/Si. COpeak concentrations ranged between 85 and 93 ppm, and decreased between 37% and 43% compared to the base specimen. A comprehensive assessment of the fire risk on smoke hazards decreased in the order of cypress, PBA/Si, IBBA/Si, BA/Si.
      번역하기

      In this study, boron/silicon sol compounds were applied to wood for construction and durable materials, and fire risks were investigated in terms of smoke performance index (SPI), smoke growth index (SGI), and smoke intensity (SI). The compound was sy...

      In this study, boron/silicon sol compounds were applied to wood for construction and durable materials, and fire risks were investigated in terms of smoke performance index (SPI), smoke growth index (SGI), and smoke intensity (SI). The compound was synthesized by reacting tetraethoxyorthosilicate with boric acid and boronic acid derivatives. Smoke characteristics were investigated using a cone calorimeter (ISO 5660-1) equipment for cypress wood. The fire intensity fixed the external heat flux at 50 kW/m2. The smoke performance index measured after the combustion reaction increased between 13.4% and 126.7% compared with cypress wood. The fire risk due to the smoke performance index decreased in the order of cypress, phenylboronic acid/silicon sol (PBA/Si), (2-methylpropyl) boronic acid/silicon sol (IBBA/Si), boric acid/silicon sol (BA/Si). The smoke growth index decreased between 12.0% and 57.5% compared to the base specimen. The risk of fire caused by the smoke growth index decreased in the order of cypress, PBA/Si, IBBA/Si, BA/Si. The fire risk due to smoke intensity decreased between 3.2% and 57.8%, and in the order of cypress, PBA/Si, IBBA/Si, BA/Si. COpeak concentrations ranged between 85 and 93 ppm, and decreased between 37% and 43% compared to the base specimen. A comprehensive assessment of the fire risk on smoke hazards decreased in the order of cypress, PBA/Si, IBBA/Si, BA/Si.

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      목차 (Table of Contents)

      • 1. 서 론 2. 실험 재료 및 방법 3. 결과 및 고찰 4. 결 론 후 기 References
      • 1. 서 론 2. 실험 재료 및 방법 3. 결과 및 고찰 4. 결 론 후 기 References
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      참고문헌 (Reference)

      1 진의, "붕소/실리콘 졸로 도포된 목재의 열위험성 평가" 한국화재소방학회 33 (33): 9-20, 2019

      2 정영진, "붕소 화합물로 처리된 편백목재의 연소시험에 의한 연기발생" 한국공업화학회 29 (29): 670-676, 2018

      3 R. H. White, "Wood Handbook:Wood as an Engineering Material, Ch.17: Fire Safety" Forest Product Laboratory U.S.D.A., Forest Service Madison 1999

      4 U. S. Forest Service (USFS), "Wood Handbook: Wood as an Engineering Material"

      5 J. Alongi, "Thermal and Fire Stability of Cotton Fabrics coated with Hybrid Phosphorus-doped Silica Films" 110 : 1207-1216, 2012

      6 G. You, "The Synthesis and Characterization of a Novel Phosphorus-Nitrogen containing Flame Retardant and its Application in Epoxy Resins" 131 (131): 1-10, 2014

      7 S. Yang, "Synthesis of a Phosphorus/Nitrogen containing Compound based on Maleimide and Cyclotriphosphazene and its Flame Retardant Mechanism on Epoxy Resin" 126 : 9-16, 2016

      8 F. Zhou, "Synthesis of a Novel Liquid Phosphoruscontaining Flame Retardant for Flexible Polyurethane foam : Combustion Behaviors and Thermal Properties" 171 : 109029-109039, 2020

      9 T. Zhang, "Synthesis of a Boron/Nitrogen containing Compound based on Triazine and Boronic Acid and its Flame Retardant Effect on Epoxy Resin" 29 (29): 513-523, 2017

      10 F. Ximenes, "Protection of Wood using Oxy-Aluminum Compounds" 56 (56): 116-122, 2006

      1 진의, "붕소/실리콘 졸로 도포된 목재의 열위험성 평가" 한국화재소방학회 33 (33): 9-20, 2019

      2 정영진, "붕소 화합물로 처리된 편백목재의 연소시험에 의한 연기발생" 한국공업화학회 29 (29): 670-676, 2018

      3 R. H. White, "Wood Handbook:Wood as an Engineering Material, Ch.17: Fire Safety" Forest Product Laboratory U.S.D.A., Forest Service Madison 1999

      4 U. S. Forest Service (USFS), "Wood Handbook: Wood as an Engineering Material"

      5 J. Alongi, "Thermal and Fire Stability of Cotton Fabrics coated with Hybrid Phosphorus-doped Silica Films" 110 : 1207-1216, 2012

      6 G. You, "The Synthesis and Characterization of a Novel Phosphorus-Nitrogen containing Flame Retardant and its Application in Epoxy Resins" 131 (131): 1-10, 2014

      7 S. Yang, "Synthesis of a Phosphorus/Nitrogen containing Compound based on Maleimide and Cyclotriphosphazene and its Flame Retardant Mechanism on Epoxy Resin" 126 : 9-16, 2016

      8 F. Zhou, "Synthesis of a Novel Liquid Phosphoruscontaining Flame Retardant for Flexible Polyurethane foam : Combustion Behaviors and Thermal Properties" 171 : 109029-109039, 2020

      9 T. Zhang, "Synthesis of a Boron/Nitrogen containing Compound based on Triazine and Boronic Acid and its Flame Retardant Effect on Epoxy Resin" 29 (29): 513-523, 2017

      10 F. Ximenes, "Protection of Wood using Oxy-Aluminum Compounds" 56 (56): 116-122, 2006

      11 M. Saxena, "Plant Fiber - Industrial Waste Reinforced Polymer Composites as a Potential Wood Substitute Material" 42 (42): 367-384, 2008

      12 J. Ding, "Occurrence and Exposure to Polycyclic Aromatic Hydrocarbons and their Derivatives in a Rural Chinese Home through Biomass Fuelled Cooking" 169 : 160-166, 2012

      13 C. Mai, "Modification of Wood with Silicon Compounds. Treatment Systems based on Organic Silicon Compounds - a Review" 37 (37): 453-461, 2004

      14 Q. Liu, "Investigation on the Effects of Fire Retardants on the Thermal Decomposition of Wood-Derived Rayon Fiber in an Inert Atmosphere by Thermogravimetry-Mass Spectrometry" 419 (419): 205-209, 2004

      15 "ISO 5660-1, Reaction-to-Fire Tests-Heat Release, Smoke Production and Mass Loss Rate-Part 1: Heat Release Rate (Cone Calorimeter Method) and Smoke Production Rate (Dynamic Measurement)"

      16 B. Tawiah, "Highly Efficient Flame Retardant and Smoke Suppression Mechanism of Boron Modified Graphene Oxide/Poly(Lactic Acid)Nanocomposites" 150 : 8-20, 2019

      17 J. Li, "Growth of TiO2 coating on Wood Surface using Controlled Hydrothermal Method at Low Temperatures" 256 (256): 5046-5050, 2010

      18 B. Mahltig, "Functionalisation of Textiles by Inorganic Sol-Gel Coatings" 15 (15): 4385-4398, 2005

      19 M. Dogan, "Flame Retardant Effect of Boron Compounds on Red Phosphorus containing Epoxy Resins" 99 : 12-17, 2014

      20 I. Šimkovic, "Flame Retardance of Insolubilized Silica Inside of Wood Material" 97 (97): 1948-1952, 2005

      21 Q. Zhang, "Flame Retardance and Thermal Stability of Wool Fabric treated by Boron containing Silica Sols" 85 : 796-799, 2015

      22 H. Miyafuji, "Fire-resisting Properties in Several TiO2 Wood-Inorganic Composites and Their Topochemistry" 31 (31): 449-455, 1997

      23 S. Bourbigot, "Fire Retardant Polymers:Recent Developments and Opportunities" 17 (17): 2283-2300, 2007

      24 J. Giancaspro, "Fire Protection of Flammable Materials Utilizing Geopolymer" 40 (40): 42-49, 2004

      25 G. Shen, "Field Measurement of Emission Factors of PM, EC, OC, Parent, Nitro-, and Oxy-Polycyclic Aromatic Hydrocarbons for Residential Briquette, Coal Cake, and Wood in Rural Shanxi, China" 47 (47): 2998-3005, 2013

      26 D. Baer, "Enhancing Coating Functionality using Nanoscience and Nanotechnology" 47 (47): 342-356, 2003

      27 G. Shen, "Emissions of Parent, Nitro, and Oxygenated Polycyclic Aromatic Hydrocarbons from Residential Wood Combustion in Rural China" 46 (46): 8123-8130, 2012

      28 L. Yan, "Effects of Polyethylene Glycol Borate on the Flame Retardancy and Smoke Suppression Properties of Transparent Fire-Retardant Coatings Applied on Wood Substrates" 135 : 123-134, 2019

      29 X. Wang, "Effect of a Triazine Ring containing Charring Agent on Fire Retardancy and Thermal Degradation of Intumescent Flame Retardant Epoxy Resins" 22 (22): 2480-2487, 2011

      30 N. Sharma, "Eco-Friendly Flame-Retardant Treatments for Cellulosic Green Building Materials" 24 (24): 422-432, 2015

      31 H. Schmidt, "Considerations about the Sol-Gel Process:from the Classical Sol-Gel Route to Advanced Chemical Nanotechnologies" 40 (40): 115-130, 2006

      32 Q. Wang, "Chemical Mechanism of Fire Retardance of Boric Acid on Wood" 38 (38): 375-389, 2004

      33 T. Fateh, "Characterization of the Thermal Decomposition of Two Kinds of Plywood with a Cone Calorimeter-FTIR Apparatus" 107 : 87-100, 2014

      34 Y. Zhou, "Catalytic Pyrolysis and Flame Retardancy of Epoxy Resins with Solid Acid Boron Phosphate" 110 : 395-404, 2014

      35 MSHA, "Carbon Monoxide, MSHA’s Occupational Illness and Injury Prevention Program Topic"

      36 D. A. Purser, "A Bioassay Model for Testing the Incapacitating Effects of Exposure to Combustion Product Atmospheres using Cynomolgus Monkeys" 2 : 20-26, 1984

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2026 평가예정 재인증평가 신청대상 (재인증)
      2020-01-01 평가 등재학술지 유지 (재인증) KCI등재
      2017-01-01 평가 등재학술지 유지 (계속평가) KCI등재
      2013-09-03 학술지명변경 외국어명 : JOURNAL OF KOREAN INSTITUTE OF FIRE SCIENCE & ENGINEERING -> Fire Science and Engineering KCI등재
      2013-01-01 평가 등재 1차 FAIL (등재유지) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-10-10 학술지명변경 한글명 : 화재.소방학회지 -> 한국화재소방학회 논문지 KCI등재
      2008-01-01 평가 등재 1차 FAIL (등재유지) KCI등재
      2007-07-02 학술지명변경 외국어명 : TRANSACTION OF KOREAN INSTITUTE OF FIRE SCIENCE & ENGINEERING -> JOURNAL OF KOREAN INSTITUTE OF FIRE SCIENCE & ENGINEERING KCI등재
      2005-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2004-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2002-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.45 0.45 0.46
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.44 0.45 0.613 0.18
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