Unmanned aerial vehicle wireless energy security transaction mechanism based on block chain
A secure transaction and wireless energy technology, applied in vehicle energy storage, instruments, payment systems, etc., can solve problems such as single point of failure, vulnerability to attack, and denial of service
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Embodiment 1
[0053] This embodiment provides a blockchain-based UAV wireless energy security transaction mechanism, such as figure 1 As shown, including pricing mechanism and consensus mechanism;
[0054] The pricing mechanism designs the transaction pricing between the energy provider and the energy demander from the perspective of service time and remuneration;
[0055] The consensus mechanism is designed based on drones and base stations. New transactions are verified by all nodes in the blockchain and recorded by a certain miner to the blockchain. Select 21 miners from the base station to be responsible for verifying and linking the new transactions generated in the network to the main chain of the blockchain. Other base stations and all drones that have not selected miners can become verification nodes, responsible for verifying the upcoming link A new block of the blockchain.
[0056] Such as figure 2 As shown, there are multiple energy demanders and energy providers, and the ene...
Embodiment 2
[0090] This embodiment provides a specific embodiment of the pricing mechanism.
[0091] First, get the concrete value for the drone type. Assume that all UAVs are equipped with wireless energy transmitters of the same type, and their power p=100W. After research, the hovering power range of UAVs on the market is about [200W, 2000W], and the hovering power is divided into 36 types. Assume the energy unit cost c of different UAVs i are the same, and c i =1 / 3600000 yuan / joule. It can be calculated by the UAV type formula: θ 1 =12000, θ 36 =1714.
[0092] Secondly, DAP calculates the optimal hovering position of the UAV according to the position distribution of the sensors that need to be charged, and calculates the channel power gain G between the UAV and the sensor k .
[0093] Then, the specific optimization equation can be obtained:
[0094]
[0095] Solving the equation yields 36 contracts (T i , R i ). The DPA base station broadcasts 36 contracts to drones ...
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