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Systems-level designs of portable microfluidic cytometers for operation in the field

机译:用于在现场操作的便携式微流体细胞计的系统级设计

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Designing portable microfluidic-cytometry devices requires systems-level designs with engineering tradeoffs, including small sampling volumes, minimal hydrodynamic focusing avoiding need for most sheath fluid for higher sample throughput, weight/power requirements using super-bright LEDs light sources, "top-hat" focusing optics minimizing cell-positioning requirements, small silicon photomultiplier sensors, with tightly-integrated electronics, all battery-powered and light-weight for portability. Smartphone technology includes CPU, touch-screen, digital speech recognition interface, telecommunications via phone and/or internet, GPS chip to mark the location of the patient using Motorola's Moto Z3 Play, modular/open-architecture smartphone. The device is software-configurable from a Linux workstation running Android Studio IDE with Java and Python programming.Portable microfluidic-cytometry devices for measurements in the field requires a serious overall systems-level design to face the many engineering tradeoffs encountered for true portability, including: (1) sampling systems of small sample volumes with minimal need for sheath hydrodynamic focusing both to avoid the need for large amounts of sheath fluid and to enable higher volumes of actual sample, (2) weight/power requirements that dictate use of super-bright LEDs as light sources, integrated "top hat" focusing optics to minimize the need for cell positioning and very small silicon photomultiplier sensors, with tightly integrated electronics (3) powered by small batteries or regenerative power sources such as solar, and (4) light-weight and robust enough for portability in potentially extreme environments. Initial prototyping used Raspberry Pi credit-card sized microcomputers, but longer-term development is being geared toward smartphone technologies.Smartphone technology can provide a powerful CPU, touch-screen and digital speech recognition interface, telecommunications via phone and internet, with a GPS chip to mark the location of the patient in the field. We are now using Motorola's new Moto Z3 Play, a dual 12-megapixe1/5-megapixel rear camera with 8-megapixel front camera, modular and open-architecture smartphone which allows building custom applications using hot-swappable accessories via Moto Development Kit modules, including externally-mountable Li-battery packs to power linked cytometry optics and electronics modules and microSD card storage with 512GB addressable memory linkable to other special purpose modules via USB-C connections. The device is software-configurable from a Linux workstation running Android Studio IDE with Java and Python programming.
机译:设计便携式微流体 - 细胞仪装置需要具有工程权衡的系统级设计,包括小型采样体积,最小的流体动力学聚焦避免需要大多数鞘液,用于使用超亮LED光源的更高的样品吞吐量,重量/功率要求“”顶帽“ “聚焦光学最小化电池定位要求,小型硅光电倍增管传感器,具有紧密集成的电子设备,所有电池供电和轻量级可移植性。智能手机技术包括CPU,触摸屏,数字语音识别接口,通过电话和/或Internet,GPS芯片使用摩托罗拉Moto Z3播放,模块化/开放式架构智能手机标记患者的位置。该设备可从Linux工作站进行软件配置,该工作站运行Android Studio IDE,具有Java和Python编程。Porterable Microfluidic-Cytorm术装置,用于该领域的测量需要严重的整体系统级设计,面对真正的便携性遇到的许多工程权衡,包括:(1)小型样品的采样系统,需要最小的鞘水动力学聚焦,以避免需要大量的鞘液,并实现更高的实际样品,(2)决定使用超级的重量/功率要求明亮的LED作为光源,集成了“顶帽”聚焦光学器件,最大限度地减少对电池定位和非常小的硅光电倍增器传感器的需求,具有紧密集成的电子设备(3)由小电池或再生动力源(如太阳能)提供动力,(4)轻量级和强大,足以实现潜在极端环境的可移植性。初始原型使用覆盆子PI信用卡大小的微型计算机,但长期开发正在掌握智能手机技术.SmartPhone技术可以提供强大的CPU,触摸屏和数字语音识别接口,通过电话和互联网提供电信,带GPS芯片标记患者在该领域的位置。我们现在正在使用摩托罗拉的新Moto Z3 Play,这是一种双百万像素1/5万像素的后摄像头,带800万像素的前置摄像头,模块化和开放式架构智能手机,允许通过Moto开发套件模块使用热插拔配件的定制应用,包括外部安装的LI-电池组,可通过USB-C连接可连接512GB可寻址内存,包括用于电源连接的锂电池组和电子模块和MicroSD卡存储。该设备可从Linux工作站的软件配置,并使用Java和Python编程运行Android Studio IDE。

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