New Technologies for Efficient Wireless Power Transfer at Distance
New Technologies for Efficient Wireless Power Transfer at Distance
批准号:
EP/S007954/1
负责人:
Neil Buchanan
金额:
$111.54万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2019
资助国家:
英国
项目状态:
已结题
起止时间:
2019 至 --
中文摘要
远距离无线传输高功率的能力是一个潜在的游戏规则改变者。在这个项目中,我们正在雄心勃勃地研究中等功率(200 W)中等距离(25 m)微波无线电力传输(WPT)的领域。目前对微波WPT的研究往往集中在低功率“清除”技术上,功率水平<1 mW。这对于低功耗传感器等应用可能很有用,但对于需要更高功率的常用无线设备(如智能手机,甚至电动汽车)来说不太可能是破坏性的。高功率WPT可以使用低频电感耦合技术来实现,尽管范围非常短(<20 cm)。因此,我们认为微波WPT是打破更长距离和更高功率障碍的唯一途径。我们打算将商用无人机(Drones)作为一个要求高、附加值高且尚未解决的应用示例。目前的无人机技术是电池供电的,飞行时间只有20分钟左右。持续无人机飞行的能力将是高度破坏性的,允许该技术的许多新应用目前无法访问,例如第一响应情况,如紧急医疗用品的交付。中等(<25米)距离无线电力传输(WPT)新策略的开发将改变游戏规则,因为它将在很大程度上抵消当前对可充电电池技术的严重依赖。该提议将提供微波WPT技术的阶跃变化,以便允许以能量有效的方式在距离上完全无线地对任意定位的移动的电气系统进行连续供电。我们不知道有任何其他研究项目已经研究了有效的端到端WPT到移动平台,具有任意方向,能够近场和远场功率传输,确保24/7的耐久性。我们打算解决微波WPT中关于发射和接收整流天线(整流天线)技术的复杂研究挑战。我们提出了一种创新的微波WPT系统,(i)可以将功率传输到相对于无线电源的位置先验未知的一个或多个对象,(ii)可以在视线和非视线情况下以任意取向位于彼此的近场或远场中(iii)可以使用小的、任意间隔的发射子阵列进行操作,人为地增强发射孔径,因为具有单个传统天线的WPT需要大孔径来产生合理的效率。这将需要目前超出现有技术水平的重大创新。(a)近/远场自动聚焦跟踪天线阵列技术,具有来自分布式阵列发射机的高度聚焦,允许极低的自由空间路径损耗(B)可以在功率电平范围内保持极高效率的功率放大器(c)保形,除了上述内容之外,我们意识到,如果无人机仍然能够有效且稳定地飞行,则在无人机周围应用共形整流天线将是非常具有挑战性的。因此,来自昆士兰大学机械和航空航天工程学院的工作人员也参与了该项目,以建立新型的共形整流天线飞行准备解决方案。作为研究计划的压轴,我们建议展示两个高影响力的实际演示。我们打算展示高效微波WPT的实验室测量,但是,为了将这个研究项目推向世界舞台,我们计划通过连续飞行无人机来展示长时间的垂直起降(VTOL)飞行,完全由微波无线电源供电。
英文摘要
The ability to transmit high power wirelessly over long distances is a potential game changer. In this project we are ambitiously investigating the area of medium power (200 W) medium distance (25 m) microwave wireless power transmission (WPT). Current research on microwave WPT tends to focus on low power "scavenging" techniques, with power levels of < 1mW. This can be useful for applications such as low power sensors, but is unlikely to be disruptive for commonly used wireless devices requiring higher power such as smartphones, or even electric vehicles. Higher powered WPT can be carried out using low frequency inductive coupling techniques, although range is very short (<20 cm). Therefore we see microwave WPT, as the only way of breaking the barrier of longer distance and higher power.We intend to take commercial Unmanned Aerial Vehicles (Drones) as a demanding, high added value, and un-resolved application example. Current drone technology is battery powered with a flight time of around only 20 minutes. The ability for continuous drone flight would be highly disruptive allowing many new applications for the technology that currently cannot be accessed e.g. first response situations such as delivery of emergency medical supplies. The development of new strategies for medium (<25m) range wireless power transmission (WPT) that permit high efficiency end to end energy transfer delivering up to 200W d.c. power will be a game changer, as it will largely offset the current critical dependence on rechargeable battery technology. This proposal will provide a step change in microwave WPT technology in order to allow continuous powering of arbitrarily located mobile electrical systems entirely wirelessly over distance in an energy effective way. We are not aware of any other research programme that has studied efficient end to end WPT to moving platforms with arbitrary orientation that are capable of both near and far field power delivery ensuring 24/7 endurance.We intend to address complex research challenges in microwave WPT regarding both transmit and receive rectifying antenna (rectenna) technology. We propose an innovative microwave WPT system that; (i) can transfer power to an object or objects whose position relative to the wireless power source is/are unknown a-priori, (ii) can lie in either the near or the far-field of each other with arbitrary orientation in both line of sight and non-line sight situations (iii) can operate using small, arbitrarily spaced, transmit sub-arrays, to artificially enhance the transmit aperture, since WPT with a single, conventional antenna, requires a massive aperture to produce reasonable efficiency. This will require major innovations that currently lie beyond state of the art. (a) Near/far field auto focusing tracking antenna array technology, with a high degree of focusing from a distributed array transmitter, allowing for extremely low free space path loss (b) Power amplifiers that can maintain extremely high efficiency over a range of power levels (c) Conformal, orientation agnostic rectifying antenna (rectenna) systems.In addition to the above we are aware that applying a conformal rectenna around a drone will be highly challenging, if the drone is still to be capable of efficient and stable flight. Therefore staff from the QUB school of Mechanical and Aerospace engineering are also involved in the project to establish novel conformal rectenna flight-ready solutions. As a grand finale to the research programme we propose to show two high impact practical demonstrations. We intend to show a laboratory measurement of high efficiency microwave WPT, but, to put this research project on the world stage, we plan to show a long duration vertical take-off and landing (VTOL) flight, by flying a drone continuously, powered entirely by microwave wireless power.
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DOI:
10.1109/imarc49196.2021.9714524
发表时间:
2021-12
期刊:
2021 IEEE MTT-S International Microwave and RF Conference (IMARC)
影响因子:
--
作者:
[Sandhya Chandravanshi;Ecit Cwi;N. Buchanan;M. J. Akhtar]
通讯作者:
Sandhya Chandravanshi;Ecit Cwi;N. Buchanan;M. J. Akhtar
DOI:
10.1109/tap.2019.2935113
发表时间:
2020-01-01
期刊:
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION
影响因子:
5.7
作者:
[El-Saboni, Yomna, Zelenchuk, Dmitry E., Scanlon, William G.]
通讯作者:
Scanlon, William G.
DOI:
10.1038/s41598-021-02058-9
发表时间:
2021-11-23
期刊:
Scientific reports
影响因子:
4.6
作者:
[Abbasi MAB, Ansari RI, Machado GG, Fusco VF]
通讯作者:
Fusco VF
DOI:
10.1038/s41598-022-08665-4
发表时间:
2022-03-28
期刊:
Scientific reports
影响因子:
4.6
作者:
[Assimonis SD, Machado GG, Fusco V]
通讯作者:
Fusco V
High Efficiency RF Energy Harvester for IoT Embedded Sensor Nodes
适用于物联网嵌入式传感器节点的高效射频能量采集器
DOI:
10.1109/apusncursinrsm.2019.8888685
发表时间:
2019
期刊:
影响因子:
--
作者:
[Assimonis S]
通讯作者:
Assimonis S
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