Inclusion of Rotor Blade Modulation in Hardware-in-the-Loop Testing of RF Systems

被引:1
|
作者
Griffith, Khadir A. [1 ]
Gupta, Inder J. [1 ]
机构
[1] Ohio State Univ, Dept Elect & Comp Engn, Columbus, OH 43212 USA
关键词
HELICOPTER ROTOR; ELECTROMAGNETIC BACKSCATTERING;
D O I
10.1109/TAES.2011.5937251
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
RF systems onboard rotorcrafts are susceptible to a periodic variation in both the magnitude and phase of the received signals due to the rotation of the rotor blades. This is often referred to as rotor blade modulation (RBM). As one might imagine, RBM has the potential to degrade a given RF system; therefore, RBM must be accounted for when characterizing the performance of any RF system onboard a rotorcraft. One can use field tests or hardware-in-the-loop (HITL) testing to characterize a particular RF system. Typically field tests are very expensive, and therefore it is beneficial to use HITL testing. In this paper we present three approaches that can be used to include RBM in HITL testing of RF systems. The first two approaches make no approximations and thus provide an exact model of the RBM. The main drawback of these two approaches is that they are not suitable for implementation in HITL testing. Thus we have developed the "approximate simulator," which can be used to include RBM in HITL testing of RF systems. The accuracy of the approximate simulator is demonstrated by comparing the approximated signal received by an antenna mounted on a model rotorcraft with the measured signal received by the antenna. The results show that a very accurate model of the RBM is obtained using the approximate simulator. Furthermore this accuracy is achieved with implementation costs that are far less than that of the two exact approaches.
引用
收藏
页码:1580 / 1593
页数:14
相关论文
共 50 条
  • [31] An investigation into the use of hardware-in-the-loop simulation testing for automotive electronic control systems
    Kendall, IR
    Jones, RP
    CONTROL ENGINEERING PRACTICE, 1999, 7 (11) : 1343 - 1356
  • [32] Credibility Evaluation of Hardware-in-the-Loop Simulation Systems
    Fang, Ke
    Zhou, Yuchen
    Ma, Ping
    Yang, Ming
    PROCEEDINGS OF THE 30TH CHINESE CONTROL AND DECISION CONFERENCE (2018 CCDC), 2018, : 3794 - 3799
  • [33] Hardware-in-the-loop evaluation of traffic signal systems
    Bullock, D
    Urbanik, T
    TENTH INTERNATIONAL CONFERENCE ON ROAD TRANSPORT INFORMATION AND CONTROL, 2000, (472): : 177 - 181
  • [34] RF Hardware-in-the-Loop Technologies Drive Embedded System Test
    Hall, David A.
    MICROWAVE JOURNAL, 2017, 60 (03) : 32 - +
  • [35] Hardware-in-the-Loop Simulation testing and integration into a CACSD toolset
    Hanselmann, H
    PROCEEDINGS OF THE 1996 IEEE INTERNATIONAL SYMPOSIUM ON COMPUTER-AIDED CONTROL SYSTEM DESIGN, 1996, : 152 - 156
  • [36] Simulating Distributed Systems with SDL and Hardware-in-the-Loop
    Braun, Tobias
    Christmann, Dennis
    SDL 2015: MODEL-DRIVEN ENGINEERING FOR SMART CITIES, 2015, 9369 : 49 - 64
  • [37] Hardware-in-the-loop Testing of Virtual Distance Protection Relay
    Camarillo-Penaranda, Juan R.
    Aredes, Mauricio
    Ramos, Gustavo
    2020 IEEE/IAS 56TH INDUSTRIAL AND COMMERCIAL POWER SYSTEMS TECHNICAL CONFERENCE (I&CPS), 2020,
  • [38] Dynamic Hardware-in-the-loop UAV Ground Testing System
    Sineglazov, V. M.
    Dolgorukov, S. O.
    2015 IEEE 3RD INTERNATIONAL CONFERENCE ACTUAL PROBLEMS OF UNMANNED AERIAL VEHICLES DEVELOPMENTS (APUAVD), 2015, : 91 - 94
  • [39] Hardware-in-the-Loop Testing of a Fuel Cell Aircraft Powerplant
    Bradley, Thomas H.
    Moffitt, Blake A.
    Mavris, Dimitri N.
    Fuller, Thomas F.
    Parekh, David E.
    JOURNAL OF PROPULSION AND POWER, 2009, 25 (06) : 1336 - 1344
  • [40] Integrated three tiered approach to hardware-in-the-loop testing
    DeCesaris, C
    Millner, P
    TECHNOLOGIES FOR SYNTHETIC ENVIRONMENTS: HARDWARE-IN-THE-LOOP TESTING II, 1997, 3084 : 9 - 19