论文标题
使用碎片技术的分散电压稳定性的基于可扩展区块链的智能合同模型
A Scalable Blockchain-based Smart Contract Model for Decentralized Voltage Stability Using Sharding Technique
论文作者
论文摘要
区块链技术是通过将监视和控制系统级目标(例如电压稳定性保护)的监视和控制来提高智能电网弹性的可能途径。随着区块链的保密性,它们还为数据不可分散性和可追溯性提供了好处。但是,基于区块链的系统在实时网格监测和控制中的性能从未经过经验测试。这项研究建议使用基于区块链的智能合约实施分散的电压稳定性算法,以评估在实时控制中区块链的性能。我们此外,研究碎片机制是通过固定的计算资源来改善系统可扩展性的一种手段。我们将模型作为概念验证原型系统,使用HyperLeDger Fabric作为区块链平台,MATLAB中的MATPOPER库作为我们的电源系统模拟器以及HyperLeDger Caliper作为我们的性能评估工具。我们发现,通过交易成功率和交易延迟衡量,碎片确实确实导致了该领域的系统可伸缩性的实质性提高。
Blockchain technologies are one possible avenue for increasing the resilience of the Smart Grid, by decentralizing the monitoring and control of system-level objectives such as voltage stability protection. They furthermore offer benefits in data immutability and traceability, as blockchains are cryptographically secured. However, the performance of blockchain-based systems in real-time grid monitoring and control has never been empirically tested. This study proposes implementing a decentralized voltage stability algorithm using blockchain-based smart contracts, as a testbed for evaluating the performance of blockchains in real-time control. We furthermore investigate sharding mechanisms as a means of improving the system's scalability with fixed computing resources. We implement our models as a proof-of-concept prototype system using Hyperledger Fabric as our blockchain platform, the Matpower library in MATLAB as our power system simulator, and Hyperledger Caliper as our performance evaluation tool. We found that sharding does indeed lead to a substantial improvement in system scalability for this domain, measured by both transaction success rates and transaction latency.