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1.
采用Hummers方法制备了氧化石墨烯(GO),并通过扫描电镜(SEM)和原子力显微镜(AFM)对GO微观形貌进行了表征.详细研究了GO与硅磷低聚物(DMS-DOPO)在环氧树脂(EP)力学性能和阻燃性能中的协同作用.万能材料试验测试结果表明,GO和DMS-DOPO分别对拉伸强度和断裂伸长率提高效果明显,二者协同后,可使EP拉伸强度和断裂伸长率分别提高17.1%和42.2%.采用热重分析(TG)、极限氧指数(LOI)、垂直燃烧(UL-94)、锥型量热(CONE)和SEM对EP及其阻燃材料的热性能、燃烧性能以及炭层微观形貌进行了表征.EP/DMS-DOPO/GO在600℃残留量为EP的5.2倍,比EP/DMS-DOPO和EP/GO分别提高4.4%和208.6%.EP/DMS-DOPO/GO的LOI值大于30,并能通过UL-94 V-0级别,燃烧过程中可形成内部结构疏松多孔、外表面致密的膨胀炭层.DMS-DOPO和GO协同后使EP热释放速率峰值由1154 k W·m-2降低到710 k W·m-2,总烟释放量降低30%.  相似文献   

2.
以聚苯氧基磷酸联苯二酚酯(PBPP)与聚磷酸铵(APP)组成复合阻燃剂,对环氧树脂(EP)进行阻燃改性.通过氧指数(LOI)、垂直燃烧(UL-94)、热失重(TGA)、锥形量热(CONE)和扫描电镜(SEM)等方法研究改性环氧树脂的阻燃性能和阻燃机理.结果表明,PBPP/APP体系对EP具有较好的阻燃性能,阻燃剂添加量为10%时能使环氧树脂的氧指数提高到29.6%,垂直燃烧等级达到UL94 V-0级,残炭量大大增加;平均热释放速率下降45.7%,热释放速率峰值下降51.0%,有效燃烧热平均值下降21.1%;TGA、CONE、SEM等综合分析显示了PBPP/APP改性后的环氧树脂比纯环氧树脂具有更高的热稳定性,燃烧后能够形成连续、致密、封闭、坚硬的焦化炭层,在聚合物表面产生有效覆盖、隔绝了氧气,改善了环氧树脂的燃烧性能.  相似文献   

3.
从分子结构设计出发,以六氯环三磷腈、对羟基苯甲醛、三氯氧磷及新戊二醇等为原料,制备了一种新型阻燃剂六[4-(5,5-二甲基-1,3,2-二氧杂己内磷酰基)苯氧基]环三磷腈(HDDCPPCP),并将其与聚磷酸铵(APP)和多壁碳纳米管(MWCNT)复配,应用于环氧树脂(EP)中,制备了HDDCPPCP/APP/MWCNT/EP阻燃复合材料.利用极限氧指数(LOI)、水平燃烧(UL-94)、锥形量热(CONE)、拉伸、弯曲和冲击等方法研究该阻燃复合材料的燃烧性能、热性能及力学性能.实验结果表明,保持阻燃体系总质量分数为30%,当MWCNT质量分数为2%时,EP2(HDDCPPCP/APP/MWCNT/EP)的各项燃烧参数综合表现较好,其LOI值达到42. 8%,热释放速率峰值(pk-HRR)、热释放速率平均值(av-HRR)、有效燃烧热平均值(av-EHC)及一氧化碳释放率平均值(av-CO)相对EP0分别降低92. 5%,93. 0%,65. 2%和66. 6%,呈现出良好的阻燃、抑烟和抑毒性能; EP2的拉伸强度、断裂伸长率、弯曲强度和弯曲模量较好,分别为110. 46 MPa,6. 24%,1259. 99 MPa,377. 72 MPa.  相似文献   

4.
以9,10-二氢-9-氧杂-10-磷杂菲-10-氧化物(DOPO)、五硫化二磷(P2S5)为原料合成9,10-二氢-9-氧杂-10-磷杂菲-10-硫化物(DOPS),并将DOPS与聚磷酸铵(APP)组成复合阻燃剂,用于环氧树脂(EP)的阻燃改性.通过氧指数(LOI)、垂直燃烧(UL-94)、热失重(TGA)、锥形量热(CONE)和扫描电镜(SEM)等方法对改性后的环氧树脂的阻燃性能和阻燃机理进行了测试和分析.实验结果表明,DOPS/APP阻燃体系对EP具有很好的阻燃性能,且复配阻燃剂的阻燃效果比单一的阻燃剂阻燃效果好;其中,当阻燃剂的总添加量达到30%时即W_(DOPS)=10%、W_(APP)=20%时,阻燃EP复合材料的LOI值可达到29.2%,垂直燃烧等级达到UL-94 V-0级,残炭量可达49.3%.  相似文献   

5.
本文以可膨胀石墨(EG)和1-丁基-3-甲基咪唑六氟磷酸盐离子液体([BMIM]PF_6)为原料,在去离子水中通过绿色、简单的球磨法成功制备出了石墨烯负载离子液体杂化物(GnP@ILs),并对其结构组成进行表征.将GnP@ILs单独或与六苯氧基环三磷腈(HPCTP)混合加入到环氧树脂(EP)中,研究其对EP复合材料综合性能的影响.极限氧指数(LOI)、垂直燃烧(UL-94)和锥形量热测试结果表明,GnP@ILs能提高EP复合材料的阻燃性能,同时与HPCTP复配的EP复合材料(EP/7.2wt%HPCTP/1.8wt%GnP@ILs)的阻燃性能最好,LOI达到33.8%,并通过了UL-94V 0级.EP/7.2wt%HPCTP/1.8wt%GnP@ILs的热释放速率峰值和总热释放量分别降低了55.54%和44.28%.同时,[BMIM]PF_6的加入增强了阻燃剂与EP的界面相容性,EP复合材料的拉伸强度和抗冲强度均明显提高.  相似文献   

6.
以KOH为致孔剂,制备了竹基微孔多孔碳材料(PCM);将PCM与聚磷酸铵(APP)添加于环氧树脂(EP),研究了PCM协同APP阻燃EP复合材料的作用及机理.BET吸附、扫描电子显微镜(SEM)及X射线光电子能谱(XPS)分析显示,PCM6的比表面积、孔容、孔径分别为2063 m2/g、0.9 cm2/g、1.8 nm;粒径为1~5μm;表面存在C—C,C—O—,C O及COO—等活性基团.极限氧指数(LOI)、UL 94垂直燃烧及锥形量热仪(Cone)研究表明,0.8 wt%的PCM6与3.1 wt%的APP复合可使EP复合材料的LOI由24.6%提高到27.3%,热释放速率峰值降低45.4%,PCM6表现出良好的协同阻燃作用.热失重分析及XPS研究表明,PCM6提高了阻燃EP复合材料的热稳定性,催化APP释放NH3、H2O,加快了交联成炭的速度及热解产物焦磷酸(酯)的形成,由此揭示了PCM协同APP阻燃EP的作用机理.  相似文献   

7.
以氯化钡提纯k-卡拉胶, 经过氧化氢降解, 通过反相乳液聚合的方式制备了一系列卡拉胶包覆聚磷酸铵(APP)阻燃微球(k-CM/APP); 将其加入到水性环氧树脂(EP)中, 制备了3种钢结构防火涂层EP2, EP3和EP4. 利用红外光谱(IR)、 扫描电子显微镜(SEM)及元素分析(EDS)对k-CM/APP的结构及形貌进行了表征. 利用极限氧指数(LOI)、 垂直燃烧(UL-94)、 背温测试法、 热重分析(TG)、 锥形量热(CONE)、 附着力测试、 IR和SEM等方法分析了涂层的阻燃、 隔热及力学性能. 结果表明, k-CM/APP(3/1)球形结构完整, 800 ℃时的残炭量高达59.5%. 与其它阻燃涂层体系相比, 添加了k-CM/APP(3/1)的EP3防火涂层的极限氧指数达到28.5%, UL-94达到了V-0级, 60 min防火涂层耐火温度为253 ℃. 相比于纯EP涂层, EP3涂层的热释放速率峰值降低了58.26%, 总热释放量降低了20.84%, 附着力达到8.74 MPa.  相似文献   

8.
将制备的4种植物基多孔碳,甘蔗渣炭(SBC)、竹叶炭(BLC)、稻壳炭(RHC)及竹茎炭(BSC),以及购置的椰壳炭(CSC)、果壳炭(NSC)、碳纳米管(CNTs)及可膨胀石墨(EG)分别与聚磷酸铵(APP)复合用于阻燃环氧树脂(EP),研究了碳材料比表面积、表面活性及微观形貌对APP阻燃EP燃烧和热解行为的影响.物理吸附仪、X射线光电子能谱仪(XPS)、扫描电镜研究指出,颗粒状竹茎多孔碳(BSC)的比表面积(2063m2/g)及表面活性基团C—O—、C≡O及COO—的比例显著大于其他碳材料;各种碳材料均以微米级尺度分布于阻燃EP基体.氧指数(LOI)、UL 94垂直燃烧及锥形量热仪研究表明,0.8 wt%BSC或CNTs与3.1 wt%APP协同阻燃EP的LOI分别由EP的24.6%提高到27.3%和27.6%,UL 94均为V-1级,峰值热释放速率分别比EP/APP降低了27%和28%.碳材料的协同阻燃效果主要取决于微观形貌;对于颗粒状多孔碳,其比表面积、O/C比及表面活性基团比例越大,协同阻燃效果越好.热失重分析、共聚焦拉曼光谱及XPS研究证实,碳材料提高了EP/APP复合材料的初始分解温度和残炭量;大的比表面及表面活性,以及管状形貌能够提高环氧树脂复合材料高温残炭量、促进残炭类石墨化转变、改善残炭耐高温氧化性能.  相似文献   

9.
聚磷酸铵的疏水改性及聚丙烯阻燃性能   总被引:2,自引:0,他引:2  
首先以γ-氨丙基三乙氧基硅烷(KH550)对聚磷酸铵(APP)进行表面化学修饰,然后用水解后的正硅酸四乙酯在其表面引发原位聚合,最后用十七氟癸基三乙氧基硅烷(氟硅烷)进行外表面修饰,制备了疏水聚磷酸铵(M-APP).M-APP的静态接触角为134°,表明M-APP具有很好的疏水性.通过傅里叶变换红外光谱(FTIR)和X射线光电子能谱(XPS)对M-APP的结构及表面元素进行分析,结果表明,M-APP即为目标产物.将M-APP与三嗪成炭发泡剂(CFA)以质量比4∶1复配制备改性膨胀型阻燃剂(M-APP/CFA),并添加到聚丙烯(PP)中,制备阻燃PP(PP/M-APP/CFA).通过极限氧指数(LOI)和垂直燃烧(UL-94)研究了其阻燃性能,用热重分析(TGA)研究了材料的热降解行为,通过耐水测试研究了耐水性能,通过拉伸、弯曲和冲击强度研究了材料的力学性能,通过扫描电子显微镜(SEM)研究了改性膨胀型阻燃剂与聚合物的相容性.结果表明,当m IFR的添加量为23%时,PP/M-APP/CFA通过UL-94 V-0级,LOI值达到30.8%,且经过耐水测试后,依然能通过UL-94 V-0级,PP/M-APP/CFA的失重率仅为0.92%.在相同实验条件下,由APP制备的PP/M-APP/CFA材料在耐水测试后UL-94测试无级别,失重率达2.45%,表明APP的表面疏水改性大大提高了PP/M-APP/CFA材料的耐水性能.M-APP/CFA的加入提高了材料的热稳定性及成炭性能,燃烧时形成的膨胀炭层能很好地保护内部材料的降解和燃烧,从而提高了材料的阻燃性能.APP的改性提高了M-APP/CFA与PP的相容性,从而提高了材料的力学性能.  相似文献   

10.
采用原位聚合法制备了蜜胺树脂(MF)和环氧树脂(EP)双层包裹聚磷酸铵(APP),得到一种新型核壳结构的微胶囊阻燃剂(EMFAPP).用傅里叶红外光谱(FTIR)和扫描电镜(SEM)对微胶囊的核壳结构进行了表征;用极限氧指数(LOI)、垂直燃烧等级测试(UL 94)对EMFAPP在EP中的阻燃性能进行了研究.EMFAPP在EP基体中阻燃性能优异,当其添加量大于7%时EP/EMFAPP均通过UL 94 V-0级,LOI值达27.0%以上.与未包裹APP相比,EMFAPP耐水性明显提高;经水处理(75℃,6天)后,EMFAPP/EP仍可保持良好的阻燃性能.采用热重分析对EMFAPP及其阻燃复合物的热降解行为进行了研究,EMFAPP能够促进成炭,EP/EMFAPP(8 wt%)在700℃残炭率达16.2%,但其低温稳定性有所下降.此外,利用热失重-红外联用对EMFAPP/EP的热降解行为进行了研究,探讨相关阻燃机理.  相似文献   

11.
A series of FR-RPUF composites were prepared by a one-step water foaming process with ammonium polyphosphate (APP) and steel slag (SS) as flame retardants. Thermogravimetric analysis (TG), limiting oxygen index (LOI), UL-94 vertical combustion test, microscale combustion calorimetry (MCC), TG-Fourier transform infrared spectrometry (TG-FTIR), scanning electron microscopy (SEM), Raman spectra and FTIR were used to investigate the thermal stability, flame retardancy, combustion performance, gas phase products, and char residue morphology of FR-RPUF composites. TG test results showed that the initial decomposition temperature (T-5wt%) and char residue rate at 700°C of RPUF/APP/SS composites were significantly enhanced by the addition of APP and SS, and the thermal stability of the composites was improved. Flame retardant test results confirmed the significantly increased LOI values of RPUF/APP/SS composites with V-0 rating. TG-FTIR also confirmed the obviously decreased release of toxic gases and flammable gases in the combustion of RPUF/APP/SS composites. SEM and Raman spectra of char residues for the composites suggested that APP/SS system improved the compactness and graphitization degree of char layer for RPUF/APP/SS composite. The above researches provide a new strategy for the utilization of SS in fire safety engineering.  相似文献   

12.
合成了一种9,10-二氢-9-氧杂-10-磷杂菲-10-氧化物(DOPO)的衍生物——聚苯氧基磷酸-2-10-氢-9-氧杂-磷杂菲基对苯二酚酯(POPP), 以间苯二胺(m-PDA)为固化剂, 环氧树脂(EP)为基料, POPP为阻燃剂, 复配聚磷酸铵(APP), 制备了不同磷含量的阻燃环氧树脂. 利用极限氧指数(LOI)和垂直燃烧(UL94)实验表征了环氧树脂的阻燃性能; 以热重分析、 锥型量热和扫描电镜分析了阻燃环氧树脂的热性能和表面形态. 研究结果表明, 阻燃剂总加入量(质量分数)为5%时即可达到UL94 V-0级, 同时LOI值为27.7%; 当总加入量为15%, 即wPOPP=5%, wAPP=10 %时, 其LOI值可达到33.8%. 随着磷含量的增加, 阻燃环氧树脂的初始降解温度略有降低, 但高温下的残炭率明显增加. POPP/APP的加入在很大程度上降低了环氧树脂的热释放速率、 有效燃烧热、 烟释放量和有毒气体释放量. 阻燃环氧树脂在高温下形成比较稳定的致密膨胀炭层, 为底层的环氧树脂主体隔绝了分解产物及热量和氧气交换, 增强了高温下的热稳定性.  相似文献   

13.
采用热失重、X-射线光电子能谱分析、氧指数及烟密度测试等方法研究了可膨胀石墨(EG)与聚磷酸铵(APP)复配膨胀阻燃硬质聚氨酯泡沫塑料(RPUF)的热降解、燃烧性能及产烟行为.在此基础上利用锥形量热仪考察了EG/APP对磷酸三(β-氯异丙基)酯(TCPP)阻燃RPUF体系燃烧性能的影响.研究表明,EG与APP间的相互作用导致了EG/APP体系高温阶段失重速率下降、残炭量显著上升;EG/APP与RPUF之间的成炭作用以APP的化学成炭为主.与RPUF比较,RPUF/EG/APP的氧指数由19.8%提高至35.4%的同时,烟密度没有显著上升.对比EG、APP及EG/APP阻燃RPUF,体系残炭量越高、炭层耐热氧化能力越强,氧指数就越大;残炭表面越致密,产烟量就越少.添加EG/APP可显著降低含卤体系RPUF/TCPP的热释放、烟释放及CO释放速率,体现了EG与APP复合体系物理与化学膨胀结合的优势.  相似文献   

14.
The charring agent (CNCA‐DA) containing triazine and benzene rings was combined with ammonium polyphosphate (APP) to form intumescent flame retardant (IFR), and it was occupied to modify polylactide (PLA). The flame retardant properties and mechanism of flame retardant PLA composites were investigated by the limited oxygen index (LOI), vertical burning test (UL‐94), thermogravimetric analysis, microscale combustion calorimetry, scanning electron microscopy, laser Raman spectroscopy analysis and X‐ray photoelectron spectroscopy. The analysis from LOI and UL‐94 presented that the IFR was very effective in flame retardancy of PLA. When the weight ratio of APP to CNCA‐DA was 3:1, and the IFR loading was 30%, the IFR showed the best effect, and the LOI value reached 45.6%. It was found that when 20 wt% IFR was loaded, the flame retardancy of PLA/IFR still passed UL‐94 V‐0 rating, and its LOI value reached 32.8%. The microscale combustion calorimetry results showed that PLA/IFR had lower heat release rate, total heat release, and heat release capacity than other composites, and there was an obvious synergistic effect between APP and CNCA‐DA for PLA. IFR containing APP/CNCA‐DA had good thermal stability and char‐forming ability with the char residue 29.3% at 800°C under N2 atmosphere. Scanning electron microscopy observation further indicated that IFR could promote forming continuous and compact intumescent char layer. The laser Raman spectroscopy analysis and X‐ray photoelectron spectroscopy analysis results indicated that an appropriate graphitization degree of the residue char was formed, and more O and N were remained to form more cross‐linking structure. Copyright © 2016 John Wiley & Sons, Ltd.  相似文献   

15.
Intumescent flame retardant (IFR) has received the considerable attention ascribed to the inherent advantages including non‐halogen, low toxicity, low smoke release and environmentally friendly. In this work, a novel charring agent poly (piperazine phenylaminophosphamide) named as PPTA was successfully synthesized and characterized by Fourier transform infrared spectra (FTIR) and X‐ray photoelectron spectroscopy (XPS). Then, a series of flame‐retardant EP samples were prepared by blending with ammonium polyphosphate (APP) and PPTA. Combustion tests include oxygen Index (LOI), vertical Burning Test (UL‐94) and cone calorimeter testing,these test results showed that PPTA greatly enhances the flame retardancy of EP/APP. According to detailed results, EP containing 10 wt% APP had a LOI value of 30.2%,but had no enhancement on UL‐94 rating. However, after both 7.5 wt% APP and 2.5 wt% PPTA were added, EP‐7 passed UL‐94 V‐0 rating with a LOI value of 33.0%. Moreover, the peak heat release rate (PHRR) and peak of smoke product rate (PSPR) of EP‐7 were greatly decreased. Meanwhile, the flame‐retardant mechanism of EP‐7 was investigated by scanning electron microscopy (SEM), thermogravimetric analysis/infrared spectrometry (TG‐IR) and X‐ray photoelectron spectroscopy (XPS). The corresponding results presented PPTA significantly increased the density of char layer, resulting in the good flame retardancy.  相似文献   

16.
A phosphorus-nitrogen containing flame retardant additive of poly(phosphoric acid piperazine),defined as PPAP,was synthesized by the salt-forming reaction between anhydrous piperazine and phosphoric acid,and the dehydration polymerization under heating in nitrogen atmosphere.Its chemical structure was well characterized by Fourier transform infrared (FTIR) spectroscopy,13C and 31p solid-state nuclear magnetic resonance measurements.The synthesized PPAP and curing agent m-phenylenediamine were blended into epoxy resin (EP) to prepare flame retardant EP thermosets.The effects of PPAP on the fire retardancy and thermal degradation behavior of cured EP/PPAP composites were investigated by limiting oxygen index (LOI),vertical burning (UL-94),thermogravimetric analysis/infrared spectrometry (TG-IR) and cone calorimeter tests.The morphologies and chemical compositions of char residues for cured epoxy resin were investigated by scanning electron microscopy (SEM) and X-ray photoelectron spectroscopy (XPS),respectively.The results demonstrated that the flame retardant EP thermosets successfully passed UL-94 V-0 flammability rating and the LOI value was as high as 30.8% when incorporating 5wt% PPAP into the EP thermosets.The TGA results indicated that the synthesized PPAP flame retardant additive possessed high thermal stability and excellent charring capability.Meanwhile,the incorporation of PPAP stimulated the epoxy resin matrix to decompose and charring ahead of time due to its catalytic decomposition effect,which led to a higher char yield at high temperature.The morphological structures and the analysis results of XPS for char residues of EP thermosets revealed that the introduction of PPAP benefited the formation of a sufficient,more compact and homogeneous char layer containing phosphorus-nitrogen flame retardant elements on the material surface during combustion.The formed char layer with high quality effectively prevented the heat transmission and diffusion,limited the production of combustible gases,and inhibited the emission of smoke,leading to the reduction of heat and smoke release.  相似文献   

17.
The influence of microencapsulated ammonium polyphosphate (MFAPP) on flame retardancy, thermal properties and water resistance of epoxy (EP) composite were investigated by LOI, UL-94, DSC, TG, microscale combustion calorimeter (MCC) and TG-FTIR. The results of DSC show that the shell outside MFAPP can increase its compatibility in EP. EP/MFAPP containing only 9 wt% MFAPP can pass V-0 in the UL-94 test, while neat EP cannot pass any rating. Due to the presence of shell, water treatment show few effects on the flame retardancy of EP/MFAPP, while LIO values of EP/APP decrease remarkably after treatment. The presence of MFAPP can reduce the heat release rate and total heat release of EP significantly in MCC test. The reason is that MFAPP can stimulate the dehydration of EP at low temperature and retard the release of pyrolysis gas at high temperature. Moreover, a char formed via the reaction of EP and MFAPP has excellent thermal stability and can prevent underlying materials from further combustion during a fire.  相似文献   

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