IP Library › Granted Patent US 12,011,890
Granted Patent B2
US 12,011,890 · App. 17/762,095 · Granted Jun 18, 2024

Device and method for fabricating locally heterogeneous composite material based on time-frequency regulated surface acoustic waves (SAWs)

Inventors: Yancheng Wang (Hangzhou, CN); Chenyang Han (Hangzhou, CN); Deqing Mei (Hangzhou, CN); Chengyao Xu (Hangzhou, CN)
Assignee: ZHEJIANG UNIVERSITY
B29C70/62B29C35/0261B29C35/0805H03B5/326H03H9/02559B29C2033/0005B29C2035/0827B29C2791/008B29K2083/00B29K2105/16
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Quick Facts
Patent No.
US 12,011,890
App. No.
17/762,095
Granted
Jun 18, 2024
Kind
B2
Abstract

A device and method for preparing a locally heterogeneous smart composite material based on time-frequency regulated SAWs are provided. The method includes: mixing functional particles, a photosensitive liquid and a photoinitiator evenly; inputting periodic time-frequency regulated sinusoidal signals defined by a frequency, a duration, an interval time and a time difference to a pair of slanted-finger interdigital transducers, such that the pair of slanted-finger interdigital transducers are excited to produce corresponding standing SAWs; coupling and allowing the standing SAWs to enter a liquid tank to form a local sound field in the photosensitive liquid; forming, by the functional particles in the photosensitive liquid, a stable array distribution under the action of an acoustic radiation force of the local sound field; and turning on an UV light source for curing, thereby completing the preparation.

Claims (5)

1. A method for fabricating a locally heterogeneous composite material based on time-frequency regulated surface acoustic waves (SAWs), applied to a device comprising a pair of slanted-finger interdigital transducers distributed on two side surfaces of a lithium niobate wafer, a liquid tank placed on a central surface of the lithium niobate wafer between the pair of slanted-finger interdigital transducers and filled with a mixture of a photosensitive liquid, functional particles and a photoinitiator, and an ultraviolet (UV) light source provided directly under the lithium niobate wafer, and the method comprising the following steps:

step 1: mixing the functional particles, the photosensitive liquid and the photoinitiator evenly to obtain the mixture, and adding the mixture into the liquid tank by a pipette;

step 2: inputting periodic time-frequency regulated sinusoidal signals defined by a frequency, a duration, an interval time, and a time difference to the pair of slanted-finger interdigital transducers, such that the pair of slanted-finger interdigital transducers are excited to produce corresponding standing SAWs; coupling and allowing the standing SAWs to enter the liquid tank to form a localized acoustic field in the photosensitive liquid; and forming, by the functional particles in the photosensitive liquid, a stable array distribution under an acoustic radiation force inside the localized acoustic field; and

step 3: turning on the UV light source to photocure the photosensitive liquid and fabricate the locally heterogeneous composite material, wherein the functional particles are fixedly distributed in an array within a localized acoustic field.

2. The method for fabricating the locally heterogeneous composite material based on the time-frequency regulated SAWs according to claim 1 , wherein the periodic time-frequency regulated sinusoidal signals comprises a first periodic time-frequency regulated sinusoidal signal and a second periodic time-frequency regulated sinusoidal signal, the first periodic time-frequency regulated sinusoidal signal and the second periodic time-frequency regulated sinusoidal signal are exactly the same in each cycle; each cycle is defined by a sinusoidal signal duration connected to a zero input signal duration; a sinusoidal signal frequency within the sinusoidal signal duration is f 1 ; and a time difference between the first periodic time-frequency regulated sinusoidal signal and the second periodic time-frequency regulated sinusoidal signal is t c .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 21, 2022
From: WANG, YANCHENG; HAN, CHENYANG; MEI, DEQING; XU, CHENGYAO
To: ZHEJIANG UNIVERSITY
Reel/Frame 059317/0456 →
Priority Claims (1)
CN 202010392598.9 · May 11, 2020 · national
Continuity (1)
Related Publication 20220347947A1 · Nov 3, 2022
Cited By (2)
US 12,603,634 US 12,609,670