低成本机器人平台实现矿物材料自动化学表征,助力锂电池供应链
Autonomous Elemental Characterization Enabled by a Low Cost Robotic Platform Built Upon a Generalized Software Architecture
- 基于双层架构的软件系统,支持网页操作与任务规划
- 1071点高密度扫描,每秒传输1520比特,完成2D元素成像
- 开源低成本机械臂+手持LIBS,适合科研与资源勘探场景
尽管机器人在工业中应用迅速增长,但其在科学实验室自动化中的使用仍受限于缺乏通用方法和高昂硬件成本。本文聚焦于降低实验成本的同时保持系统通用性,提出一种面向科研实验室的机器人软件架构。该架构采用双层(Socket.IO与ROS)动作服务器设计,支持基于网页的用户界面及基于ROS行为树的任务规划与执行。在此基础上构建了一套用于矿物与材料样品表征的机器人平台,核心为开源、低成本的三轴数控龙门系统。将手持激光诱导击穿光谱仪(LIBS)通过3D打印适配器集成,实现自动化二维化学成像。通过采集含锂辉石伟晶岩岩心样本表面的1071点密集超光谱图,数据传输速率达1520比特/秒,验证了该系统在实验室中实现可控化学定量的能力,可与现场手持设备测量数据互补,打通锂基电池材料从勘探到加工的供应链环节。
原文摘要 · Abstract (English)
Despite the rapidly growing applications of robots in industry, the use of robots to automate tasks in scientific laboratories is less prolific due to lack of generalized methodologies and high cost of hardware. This paper focuses on the automation of characterization tasks necessary for reducing cost while maintaining generalization, and proposes a software architecture for building robotic systems in scientific laboratory environment. A dual-layer (Socket.IO and ROS) action server design is the basic building block, which facilitates the implementation of a web-based front end for user-friendly operations and the use of ROS Behavior Tree for convenient task planning and execution. A robotic platform for automating mineral and material sample characterization is built upon the architecture, with an open source, low-cost three-axis computer numerical control gantry system serving as the main robot. A handheld laser induced breakdown spectroscopy (LIBS) analyzer is integrated with a 3D printed adapter, enabling automated 2D chemical mapping. We demonstrate the utility of automated chemical mapping by scanning of the surface of a spodumene-bearing pegmatite core sample with a 1071-point dense hyperspectral map acquired at a rate of 1520 bits per second. Automated LIBS scanning enables controlled chemical quantification in the laboratory that complements field-based measurements acquired with the same handheld device, linking resource exploration and processing steps in the supply chain for lithium-based battery materials.
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