Integrated surface acoustic wave wireless temperature sensor

A wireless temperature and surface acoustic wave technology, which is applied to thermometers, thermometers, instruments, etc. with physical/chemical changes, can solve the problems of time-domain delay signal extraction, low signal-to-noise ratio, and large device loss. Compensation and sensitivity improvement, improved signal-to-noise ratio performance, and reduced device losses

Inactive Publication Date: 2010-02-10
INST OF ACOUSTICS CHINESE ACAD OF SCI
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  • Abstract
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Problems solved by technology

The interdigitated reflector has a large reflection coefficient, so it can better improve the device loss and signal-to-noise ratio, but due to the reflection between the interdigitated electrodes and the acoustic-electric regeneration, it causes large time-domain noise
The single-finger reflector can reduce the time domain noise of the device, but the small reflection coefficient leads to large device loss and low signal-to-noise ratio
[0007] 3. Due to the attenuation of sound wave propagation, usually the long propagation path of the delay line leads to poor uniformity of the reflection peaks from each reflector. The farther away from ...

Method used

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  • Integrated surface acoustic wave wireless temperature sensor
  • Integrated surface acoustic wave wireless temperature sensor
  • Integrated surface acoustic wave wireless temperature sensor

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Embodiment Construction

[0052] In order to make the purpose, technical solution and advantages of the present invention clearer, the present invention will be further described in detail below in conjunction with the accompanying drawings and embodiments.

[0053] refer to Figure 2a , making an integrated SAW temperature sensor, including: a SAW reflective delay line 11, a surface mount component 12, and an impedance matching network 13 between the SAW reflective delay line 11 and the wireless antenna 14.

[0054] refer to Figure 2b , the SAW reflective delay line 11 of the embodiment of the present invention consists of a piezoelectric substrate 9, and a transducer made on the piezoelectric substrate 9 (the transducer of this embodiment adopts a single-phase electrode width control The unidirectional transducer, namely EWC / SPUDT)2 is composed of eleven short-circuit grid reflectors. The SAW reflective delay line 11 is hermetically packaged with a surface mount component 12 to protect the piezoel...

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Abstract

The invention relates to an integrated surface acoustic wave (SAW) wireless temperature sensor, comprising an interdigital transducer with an EWC/SPUDT structure and 11 reflectors with short-circuit gate structures, which are manufactured on a piezoelectric substrate, wherein, the EWC/SPUDT receives an electromagnetic wave signal transmitted from a wireless reading unit by a wireless antenna and transforms the signal into surface acoustic wave which is propagated along the reflectors on the surface of the piezoelectric substrate and is respectively reflected by the reflectors, the reflected acoustic wave is retransformed into the electromagnetic wave signal by an EWC/SPUDT2, the signal is returned to the wireless reading unit by the wireless antenna, and finally temperature detection is realized by evaluation on a phase change of time-domain response via a signal processing method. In the sensor, the 11 reflectors of a SAW reflection delay line are divided into two paths for reducing multiple reflection among the reflectors, wherein, 8 reflectors on one path are used for 8-bit electronic tags, and 3 reflectors on the other path are used for temperature detection; and a reflection peak of a time domain S11 with even response is obtained by adjusting electrode number of the reflectors.

Description

technical field [0001] The invention relates to a surface acoustic wave (SAW) temperature sensor integrated with an electronic label, in particular to a SAW reflective delay using a single-phase unidirectional transducer with a controlled electrode width and a short-circuit grid reflector structure line of wireless temperature sensors. Background technique [0002] The propagation speed of SAW has a linear relationship with temperature, that is, Δv=v 0 ×TCD×(T-T ref ), where TCD is the first-order delay temperature coefficient of the piezoelectric substrate (depending on the crystal structure and tangential direction of the piezoelectric substrate material), Δv is the velocity change, and v 0 is the SAW speed, T ref as the reference temperature. In this way, some piezoelectric substrates such as LiNbO with higher temperature coefficient, that is, high TCD value, are used 3 , LiTaO 3 and La 3 Ga 5 SiO 4 Can realize the detection of temperature. In recent years, with...

Claims

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Application Information

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IPC IPC(8): G01K11/22
Inventor 王文何世堂
Owner INST OF ACOUSTICS CHINESE ACAD OF SCI
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