共查询到18条相似文献,搜索用时 796 毫秒
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提出一种基于Sagnac干涉原理的光纤传感器,并将其用于温度和应变的环境检测。实验中,选用乙醇溶液填充前后的保偏光子晶体光纤(PM-PCF)作为传感单元。首先,将未填充乙醇溶液的PM-PCF熔接到Sagnac干涉环路中,依靠PM-PCF基底材料的光热效应和光弹性效应,分别在26~50℃温度范围内和0~900μ?应变范围内,实现了-1.72 nm/℃的温度传感灵敏度和35.35 pm/μ?的应变灵敏度。然后,利用氮气加压装置,将乙醇溶液填充到PM-PCF包层空气孔内。这是利用功能材料的外场调谐作用来增强Sagnac干涉仪的传感性能。填充乙醇溶液后,该传感器的温度灵敏度达到-2.66 nm/℃,约为原始PM-PCF温度灵敏度的1.55倍。所提出的用于温度和应变测量的Sagnac干涉传感器结构较为简单,具有良好的迟滞性,对提升光纤传感灵敏度具有一定的借鉴意义。 相似文献
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设计了基于双光纤布拉格光栅(FBG)的高灵敏度应变光纤传感实验教学系统.两只具有不同反射中心波长(1 546.209 nm和1 541.713 nm)的FBG串联熔接后,分别黏贴于等强度悬臂梁的上表面与下表面.通过测量两只FBG的反射中心波长差值与等强度悬臂梁应变量的关系,实现对应变量的传感测量.仿真结果显示,双FBG应变传感的灵敏度为单FBG应变传感的2倍,且具有温度自补偿特性.实验结果验证了仿真分析的结论,测得双FBG应变传感的灵敏度为2.10 pm/με,且传感测量准确性不受环境温度变化影响. 相似文献
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在一段8cm长的保偏光纤两端分别熔接两段普通的单模光纤,在保偏光纤的侧面均匀地镀上一层聚二甲基硅氧烷材料,聚二甲基硅氧烷材料经该段保偏光纤接入到一个光纤耦合器中,从而形成一个光纤Sagnac干涉仪.聚二甲基硅氧烷材料吸附挥发性有机物分子时,会引起聚二甲基硅氧烷材料体积上的膨胀,导致Sagnac干涉波长的漂移,通过对Sagnac干涉光波长漂移的测量即可实现对挥发性有机物气体的检测.实验测量了传感器对挥发性有机物浓度的响应,结果表明,在0~6 000ppm浓度范围内,传感器的灵敏度为1.03pm/ppm,由光谱仪的最小分辨率为0.02nm可知,该传感器对挥发性有机物的检测下限约为19.4ppm.该传感器相比聚二甲基硅氧烷材料与光纤光栅结合的传感器,灵敏度提高了4 300倍. 相似文献
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基于长周期光纤光栅嵌入型Sagnac环光谱的折射率测量 总被引:1,自引:0,他引:1
将长周期光纤光栅(LPG)和光纤Sagnac环相结合,实现了折射率和温度的同时测量.首先利用二氧化碳激光器在保偏光纤上制作了长周期光纤光栅(PM-LPG),然后把该PM-LPG和普通单模光纤耦合器组成Sagnac环,作为传感单元.实验选择其某一透射峰作为测试对象,其波长随温度变化,强度随折射率变化,因此可实现两个参量的... 相似文献
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基于纤芯失配和光纤布拉格光栅实现温度和应变同时测量 总被引:1,自引:0,他引:1
基于纤芯失配理论,提出了一种多模单模多模(MSM)结构与光纤布拉格光栅(FBG)级联实现温度和应变同时测量的光纤传感器。利用MSM结构的干涉谱和FBG对温度和应变的不同响应灵敏度,实现了对温度、应变的同时测量。实验结果表明,在20 ℃~80 ℃的温度范围内,MSM结构的干涉谱和FBG的温度灵敏度分别为0.091 nm/℃和0.0102 nm/℃;在0~650 με的应变范围内,应变灵敏度分别为 -0.0013 nm/με和0.0012 nm/με。因此利用敏感矩阵,即可实现对温度和应变的同时测量,且温度和应变的最大测量误差分别为±0.2 ℃和±8.25 με。该结构灵敏度高,结构简单,且不易受电磁等干扰,实验结果具有良好的线性度,在工程领域应用前景良好。 相似文献
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提出了一种可用于振动检测的新型光纤光栅传感技术. 用偏振控制器和高双折射保偏光纤构建成Sagnac环, 结合掺铒光纤、单模光纤和隔离器, 形成了单波长光纤激光器, 由粘有光纤Bragg光栅的悬臂梁作为传感探头, 并利用Sagnac环本身的线性边缘, 解调振动信号. 阐述了Sagnac环原理及其产生的边缘效应, 并进行了数值模拟计算, 对振动信号进行了检测实验, 检测系统从L1到L1+L2之间对应的周期可调, 灵敏度高达38.2 μ W/nm, 线性度为0.9996, 动态范围在40–70 dB, 可满足振动传感检测的技术参数要求.
关键词:
光纤光学
振动检测
保偏光纤Sagnac环
光纤激光器 相似文献
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《光学学报》2018,(12)
提出一种新颖的温度和应变双参数同时测量的光纤传感器。该传感器由空芯光纤和光纤布拉格光栅级联而成。空芯光纤通过反谐振机理将光限制在空气纤芯内传输,满足谐振条件的光泄露出空气芯,在传输光谱上表现为周期性损耗峰。由于空芯光纤和光纤布拉格光栅的物理机理不同,对外界温度、应变的响应存在差异,利用耦合矩阵则可以精确地实现温度和应变双参数的同时测量。实验结果表明,在1550nm波长附近,空芯光纤和光纤布拉格光栅对应的温度灵敏度分别为24.55 pm/℃和12.76 pm/℃,应变灵敏度分别为-0.70pm/με和1.02pm/με,该级联结构的传感器制作简单且具有较高的测量精度。 相似文献
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A Sagnac interferometer with a long-period fiber grating (LPG) inscribed in the polarization-maintaining fiber (PMF) is proposed and experimentally demonstrated for simultaneous measurement of strain and temperature. Due to the different responses of the LPG and the Sagnac interferometer to strain and temperature, simultaneous measurement can be achieved by monitoring the wavelength shifts and the intensity changes of a resonance dip of the sensor setup. The experimental results show that the achieved sensitivities to strain and temperature are 6.4 × 10− 3 dB/με and 0.65 nm/°C, respectively. 相似文献
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Discrimination of strain and temperature based on a polarization-maintaining photonic crystal fiber incorporating an erbium-doped fiber 总被引:1,自引:0,他引:1
A simple sensing method for simultaneous measurement of temperature and strain is investigated by using a Sagnac fiber loop mirror composed of a polarization-maintaining photonic crystal fiber (PM-PCF) incorporating an erbium-doped fiber (EDF). Amplified spontaneous emission created by a pumped EDF is transmitted to a Sagnac fiber loop mirror. The interference between two counter-propagating signals in a Sagnac fiber loop mirror generates a periodic transmission spectrum with respect to wavelength. When external temperature is increased, the transmission peak power reduces because the amplified spontaneous emission of the EDF is decreased by the applied temperature change (0.04 dB/°C). The peak wavelength is shifted into the shorter wavelength because of the negative temperature dependence of the birefringence of the PM-PCF (0.3 pm/°C). As the applied strain increases, the peak wavelength of the transmission spectrum of the Sagnac loop mirror incorporating the EDF shifts into a longer wavelength (1.3 pm/με) because the phase change of the proposed sensing probe is directly proportional to the applied strain. The transmission peak power, however, is not changed by the applied strain. Since the source and the sensing probe are integrated, the overall system configuration is significantly simplified without requiring any additional broadband light source. Therefore, it is possible to simultaneously measure temperature and strain by monitoring the variation of transmission peak power and peak wavelength, respectively. 相似文献
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温度/应变/扭曲三参量同时测量低成本传感系统 总被引:9,自引:3,他引:6
提出了一种利用布喇格光纤光栅反射光作信号源、高频CO2激光脉冲写入的长周期光纤光栅和超周期光纤光栅作传感器实现温度、应变和扭曲同时测量的全光栅型低成本强度解调传感方案.文中利用长周期光纤光栅边缘滤波效应实现了温度、应变和扭曲传感信号的实时解调.实验结果表明,其温度和应变的测量灵敏度分别为-0.211 dB/℃和-0.012 dB/10με;而扭曲率的测量灵敏度为0.4394 dB/(rad·m-1),是该法写入普通LPFG的4倍以上. 相似文献
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A fiber sensor configuration suitable for discrimination of temperature and strain is presented. The sensor head is composed of two parallel concatenated Sagnac loops based on character-1 shaped polarization-maintaining fiber (PMF). The two Sagnac loops include different sections of character-1 shaped PMFs, and show different sensitivity to temperature and strain. By monitoring the wavelength shift of the two dips in the transmission spectrum, simultaneous measurement of temperature and strain is obtained. The sensitivity for strain and temperature are measured to be 14.46 pm and ? 0.54 nm. 相似文献
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报道了一种基于掺铒光纤激光器瞬态特性的新型应变传感系统.用光纤环反射镜和光纤Bragg光栅(FBG)构成Fabry-Perot线型腔.腔内插入一个长周期光纤光栅(LPG),其透射谱的中心波长为1574.4nm.FBG的带宽为0.23nm,不受力时其反射波长为1557.98nm,位于LPG的透射谱左沿;当FBG受力时激射波长向长波方向移动,激光通过LPG时透射损耗增大,腔损耗的增加将使激光激射延迟时间增加.因此,应变的大小可以通过激光产生的延迟时间来测量.这种新型应变传感器的分辨率和灵敏度由抽运光脉冲的高、
关键词:
应变传感
光纤激光器
时域测量
光纤Bragg光栅 相似文献