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一种系统设计简单的新型低功耗全光纤风速仪。

A Novel Low-Power-Consumption All-Fiber-Optic Anemometer with Simple System Design.

作者信息

Zhang Yang, Wang Fang, Duan Zhihui, Liu Zexu, Liu Zigeng, Wu Zhenlin, Gu Yiying, Sun Changsen, Peng Wei

机构信息

School of Physics and Optoelectronic Technology, Dalian University of Technology, 2 Linggong Road, Ganjingzi District, Dalian 116024, China.

出版信息

Sensors (Basel). 2017 Sep 14;17(9):2107. doi: 10.3390/s17092107.

Abstract

A compact and low-power consuming fiber-optic anemometer based on single-walled carbon nanotubes (SWCNTs) coated tilted fiber Bragg grating (TFBG) is presented. TFBG as a near infrared in-fiber sensing element is able to excite a number of cladding modes and radiation modes in the fiber and effectively couple light in the core to interact with the fiber surrounding mediums. It is an ideal in-fiber device used in a fiber hot-wire anemometer (HWA) as both coupling and sensing elements to simplify the sensing head structure. The fabricated TFBG was immobilized with an SWCNT film on the fiber surface. SWCNTs, a kind of innovative nanomaterial, were utilized as light-heat conversion medium instead of traditional metallic materials, due to its excellent infrared light absorption ability and competitive thermal conductivity. When the SWCNT film strongly absorbs the light in the fiber, the sensor head can be heated and form a "hot wire". As the sensor is put into wind field, the wind will take away the heat on the sensor resulting in a temperature variation that is then accurately measured by the TFBG. Benefited from the high coupling and absorption efficiency, the heating and sensing light source was shared with only one broadband light source (BBS) without any extra pumping laser complicating the system. This not only significantly reduces power consumption, but also simplifies the whole sensing system with lower cost. In experiments, the key parameters of the sensor, such as the film thickness and the inherent angle of the TFBG, were fully investigated. It was demonstrated that, under a very low BBS input power of 9.87 mW, a 0.100 nm wavelength response can still be detected as the wind speed changed from 0 to 2 m/s. In addition, the sensitivity was found to be -0.0346 nm/(m/s) under the wind speed of 1 m/s. The proposed simple and low-power-consumption wind speed sensing system exhibits promising potential for future long-term remote monitoring and on-chip sensing in practical applications.

摘要

本文提出了一种基于单壁碳纳米管(SWCNT)涂层倾斜光纤布拉格光栅(TFBG)的紧凑型低功耗光纤风速计。TFBG作为一种近红外光纤传感元件,能够激发光纤中的多个包层模式和辐射模式,并有效地将纤芯中的光耦合到与光纤周围介质相互作用。它是一种理想的光纤器件,可用于光纤热线风速计(HWA)中作为耦合和传感元件,以简化传感头结构。制备的TFBG通过SWCNT薄膜固定在光纤表面。SWCNTs作为一种创新的纳米材料,由于其优异的红外光吸收能力和有竞争力的热导率,被用作光热转换介质,取代了传统的金属材料。当SWCNT薄膜强烈吸收光纤中的光时,传感头会被加热并形成“热线”。当传感器置于风场中时,风会带走传感器上的热量,导致温度变化,然后由TFBG精确测量。受益于高耦合和吸收效率,加热和传感光源仅由一个宽带光源(BBS)共享,而无需任何额外的泵浦激光器使系统复杂化。这不仅显著降低了功耗,还以较低的成本简化了整个传感系统。在实验中,对传感器的关键参数,如薄膜厚度和TFBG的固有角度进行了充分研究。结果表明,在9.87 mW的极低BBS输入功率下,当风速从0变为2 m/s时,仍可检测到0.100 nm的波长响应。此外,发现在1 m/s的风速下灵敏度为-0.0346 nm/(m/s)。所提出的简单低功耗风速传感系统在未来实际应用中的长期远程监测和片上传感方面显示出有前景的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e85/5621000/52e387d32d72/sensors-17-02107-g001.jpg

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