microchannel array
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2021 ◽  
Vol 9 (1) ◽  
Author(s):  
Kyuyoung Kim ◽  
Junseong Ahn ◽  
Yongrok Jeong ◽  
Jungrak Choi ◽  
Osman Gul ◽  
...  

AbstractElectronic skin (E-skin) capable of detecting various physical stimuli is required for monitoring external environments accurately. Here, we report an all-soft multiaxial force sensor based on liquid metal microchannel array for electronic skin applications. The proposed sensor is composed of stretchable elastomer and Galinstan, a eutectic gallium-indium alloy, providing a high mechanical flexibility and electro-mechanical durability. Liquid metal microchannel arrays are fabricated in multilayer and positioned along a dome structure to detect multi-directional forces, supported by numerical simulation results. By adjusting the height of the dome, we could control the response of the multiaxial sensor with respect to the deflection. As a demonstration of multiaxial force sensing, we were able to monitor the direction of multidirectional forces using a finger by the response of liquid metal microchannel arrays. This research could be applied to various fields including soft robotics, wearable devices, and smart prosthetics for artificial intelligent skin applications.


Author(s):  
Xiaoxuan Tang ◽  
Hongwei Liu ◽  
Lin Xiao ◽  
Maolin Zhou ◽  
Haoyu Bai ◽  
...  

Inspired by the Triarrhena sacchariflora, a hierarchical origami moisture collector was designed to achieve the highly-efficient fogdrop harvesting and long-lasting moisture retention forplant irrigation without an external energy input.


Micromachines ◽  
2020 ◽  
Vol 12 (1) ◽  
pp. 18
Author(s):  
Yufan Xue ◽  
Chunsheng Guo ◽  
Xiaoxiao Gu ◽  
Yanfeng Xu ◽  
Lihong Xue ◽  
...  

As a phase change evaporator, a microchannel array heat exchanger is of great significance in the field of microscale heat dissipation. The performance of which strongly depends on the flow resistance, capillary force, and other factors. In order to improve the heat dissipation efficiency, it is necessary to perform an in-depth study of the characteristics of microchannel flow using numerical simulation. However, the current simulation model requires high computational cost and long simulation time. To solve this problem, this paper simplifies the numerical simulation of the rectangular parallel array microchannels by building the basic flow model based on the concept of porous media. In addition, we explore the effect of aspect-ratio (AR), hydraulic diameter, inlet velocity, and other parameters of fluid flow behavior inside the microchannels. Meanwhile, a user-defined function (UDF) is formulated to add the capillary force into the model to introduce capillary force into the porous media model. Through the above research, the paper establishes the porous media model for single-phase and gas-liquid two-phase flow, which acts as a simplification of microchannel array simulation without grossly affecting the results obtained. In addition, we designed and manufactured experiments using silicon-based microchannel heat exchangers with different-ratios, and combined with the visualization method to measure the performance of the device and compared them with simulation results. The theoretical model is verified through the suction experiment of array microchannel evaporator capillary core. The simplified model of microchannel array significantly saves the computational cost and time, and provides guidance for the related experimental researches.


Molecules ◽  
2020 ◽  
Vol 25 (20) ◽  
pp. 4805
Author(s):  
Takashi Kuroiwa ◽  
Miki Ito ◽  
Yaeko Okuyama ◽  
Kanna Yamashita ◽  
Akihiko Kanazawa

Microchannel (MC) emulsification for the preparation of monodisperse oil-in-water (O/W) and water-in-oil-in-water (W/O/W) emulsions containing palm oil as the oil phase was investigated for application as basic material solid/semi-solid lipid microspheres for delivery carriers of nutrients and drugs. Emulsification was characterized by direct observation of droplet generation under various operation conditions, as such, the effects of type and concentration of emulsifiers, emulsification temperature, MC structure, and flow rate of to-be-dispersed phase on droplet generation via MC were investigated. Sodium caseinate (SC) was confirmed as the most suitable emulsifier among the examined emulsifiers, and monodisperse O/W and W/O/W emulsions stabilized by it were successfully obtained with 20 to 40 µm mean diameter (dm) using different types of MCs.


Lab on a Chip ◽  
2020 ◽  
Vol 20 (15) ◽  
pp. 2717-2723 ◽  
Author(s):  
Soumen Mandal ◽  
Souvik Paul ◽  
Saswata Mukhopadhyay ◽  
Ravi Kumar Arun ◽  
Debeshi Dutta ◽  
...  

Flow of water in a gold-nanoparticle-embedded microchannel power generator generated a power density of 4.3 μW cm−2, a value ∼256 times higher than that last reported.


Talanta ◽  
2019 ◽  
Vol 203 ◽  
pp. 83-89 ◽  
Author(s):  
Fengyun Li ◽  
Yong Zheng ◽  
Jing Wu ◽  
Lei Zhao ◽  
Lingling Shui ◽  
...  

2019 ◽  
Vol 50 (14) ◽  
pp. 1417-1436 ◽  
Author(s):  
Taylor Bevis ◽  
Bryan Burk ◽  
Jensen Hoke ◽  
Jack Kotovsky ◽  
Julie Hamilton ◽  
...  

2018 ◽  
Vol 140 (11) ◽  
Author(s):  
Dhruv C. Hoysall ◽  
Khoudor Keniar ◽  
Srinivas Garimella

Multiphase flow phenomena in single micro and minichannels have been widely studied. Characteristics of two-phase flow through a large array of microchannels are investigated here. An air–water mixture is used to represent the two phases flowing through a microchannel array representative of those employed in practical applications. Flow distribution of the air and water flow across 52 parallel microchannels of 0.4 mm hydraulic diameter is visually investigated using high-speed photography. Two microchannel configurations are studied and compared, with mixing features incorporated into the second configuration. Slug and annular flow regimes are observed in the channels. Void fractions and interfacial areas are calculated for each channel from these observations. The flow distribution is tracked at various lengths along the microchannel array sheets. Statistical distributions of void fraction and interfacial area along the microchannel array are measured. The design with mixing features yields improved flow distribution. Void fraction and interfacial area change along the length of the second configuration, indicating a change in fluid distribution among the channels. The void fraction and interfacial area results are used to predict the performance of different microchannel array configurations for heat and mass transfer applications. Results from this study can help inform the design of compact thermal-fluid energy systems.


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