Takeshi Kudo 1, Yukihiro Takahashi 1, Mitsuteru Sato 1, Taishi Yamada 1, Nui Kobayashi 1, Yusuke Sanmiya 1, Tomohiro Inoue 2, H C Stenbaek- Nielsen 3,

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1 Takeshi Kudo 1, Yukihiro Takahashi 1, Mitsuteru Sato 1, Taishi Yamada 1, Nui Kobayashi 1, Yusuke Sanmiya 1, Tomohiro Inoue 2, H C Stenbaek- Nielsen 3, Ma@hew G McHarg 4, Ryan K Haaland 5, Takeshi Kammae 3, Yoav Yair 6, Walter A Lyons 7,Steven A Cummer 8 1. Hokkaido University 2. Japan Broadcas;ng Corp. NHK Cosmic Shore Project 3. University of Alaska 4. US Airfoce Academy 5. Fort Lewis Collage 6. Open University 7. FMA Research 8. Duke University

2 Sprite QE- Model Fig.1 IllustraQon of TLEs. [Sato, 2004]. 1 (+CG)

3 E ε 0 c r M : : : : [Pasko et al., 1997] Fig.3 Decay Qme constants versus NLDN peak current for selected sprite events. [Gerken et al., 2004] sprite Charge Moment Changesprite [Hu et al., 2002]

4 1/ 1/ sprite CMCsprite sprite spritecmc S/N High- Speed Camera sprite sprite

5 NHK NHK & Hokudai UAF Fig.4 picture of the jets used for the campaign. Fig.5 Inside the NHK aircrac. Fig. 6 GEON (Global ELF ObservaQon Network) operated by Hokkaido University. GEON (Global ELF ObservaQon NetworkELFsferic

6 Fig. 7 NHK high- speed camera and EMCCD. High- Speed Camera (Phantom V710) Pixel size: FOV: Frame Rate: 8,000 or 10,000 panchromaqc EM- CCD Camera Pixel size: FOV: Frame Rate: 30fps color staqon name LocaQon Sampling frequency Low pass filter High pass filter GPS Syowa(SYO) E, S 400Hz 100Hz 1Hz IRIG- E Fig.8 MagneQc search- coil antenna

7 64High- Speed ImageNHK Camera FOVS/NELF 22 Table1. 22sprite events. Clione Jellyfish (Large Carrot) Fig.9 Clione type. Fig.10 Jellyfish type.

8 CMC(Charge Moment Change)[Ckm] Ipeak[kA] CMCCharge Moment Change) CMCNormalized Amplitude Method [Yamashita et al., 2011] 1000kmELF1 ELFCMC IpeakNLDN(NaQonal lightning DetecQon Network) rise ;me(t1), decay ;me(t2) NHK High- speed Camera light- curve Light- curve20% rise Qme(t1) 20%decay Qme(2) Fig. 11 SchemaQc diagram of Light- curve.

9 22 20 RelaQve Intensity RelaQve Time (ms) Fig.12 Light- curve at 6:35:11UT on 07/05/ rise Qme(t1), decay Qme(t2) S/N5 RelaQve Intensity S/N 0 RelaQve Time (ms) Fig.13 Light- curve at 5:7:55UT on 07/11/2011.

10 7 comparisons Ipeak vs CMC rise Qme (t1) vs decay Qme (t2) CMC vs decay Qme (t2) Ipeak vs decay Qme (t2) CMC vs decay Qme (t2) sprite elves,halo

11 CMC vs Ipeak Column Carrot Clione Jellyfish (Large Carrot) Hybrid (Co: Column, Ca: Carrot, J:Jellyfish) rise ;me (t1) vs decay ;me(t2) R 2 =0.48 Co+Ca Fig.14 Charge Moment Change vs Ipeak. Fig.15 rise Qme (t1) vs decay Qme (t2).

12 CMC vs decay ;me (t2) Column Carrot Clione Jellyfish (Large Carrot) Hybrid (Co: Column, Ca: Carrot, J:Jellyfish) Ipeak vs decay ;me (t2) R 2 =0.63 R 2 =0.39 Fig.16 CMC vs decay Qme (t2) Fig.17 Ipeak vs decay Qme (t2)

13 CMC vs decay ;me (t2) Column Carrot Clione Jellyfish (Large Carrot) Hybrid (Co: Column, Ca: Carrot, J:Jellyfish) R 2 =0.68 R 2 =0.73 Fig.18 CMC vs decay Qme (t2) Fig.19 CMC vs decay Qme (t2)

14 CMC vs decay ;me (t2) R 2 =0.65 Column Carrot Clione Jellyfish (Large Carrot) Hybrid (Co: Column, Ca: Carrot, J:Jellyfish) elves, halo Fig.20 CMC vs decay Qme (t2). Fig.21 CMC vs decay Qme (t2).

15 CMCdecay Qme CMC CMC elves, halosprite elves, halocarrotclione elveselectro MagneQc Pulse EMPsprite 15

16 NHK sprite High- Speed Camerasprite ELFsfericGEON spritehigh- Speed CameraS/NELF 20spriteCMCIpeak CMCdecay timer 2 ~0.63. CMCdecay timeqe-model sprite100ms1spritedecay time elveshalodecay timecmc elves, halodecay time elves, halo elves, halo 16

; 200 µs 0 1 ms 4 exponential 80 km 5 4 10 7 m/s 10 km 1 ms 5 E k N = e z/h n 6 ; N, H n :, z: ( ) 1 0 7 t ρ + (σe) = 0 E σ 1 σ σ σ e e (1/H e+1/h n )

; 200 µs 0 1 ms 4 exponential 80 km 5 4 10 7 m/s 10 km 1 ms 5 E k N = e z/h n 6 ; N, H n :, z: ( ) 1 0 7 t ρ + (σe) = 0 E σ 1 σ σ σ e e (1/H e+1/h n ) - [ : ( ) ] 1 (contact) (interaction) 1 2 19 MTI c Mesosphere Thermosphere Ionosphere (MTI) Research Group, Japan 1 2 (1) : (2 ) (2) : (3 ) (3) : (2, 3 ) (4) : - (4 ) 2 3 3 X 1 ; 200 µs 0 1 ms 4 exponential

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