astrometric vlbi observation of spacecraft with phase delay

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Astrometric VLBI Observation of Spacecraft with Phase Dela y M.Sekido, R.Ichikawa,H.Osaki, T.Kondo,Y.Koyama (National Institute of Information and Communications Technology :NICT,Japan) M.Yoshikawa,T.Ohnishi(ISAS,Japan), W.Cannon, A.Novikov (SGL,Canada), M.Berube (NRCan,Canada), and NOZOMI VLBI group(NICT,ISAS,NAOJ,GSI,Gi fu Univ. Yamaguchi Univ., Hokkaido Uni v., Japan) The National Institute of Information and Communications Technology

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The National Institute of Information and Communications Technology. Astrometric VLBI Observation of Spacecraft with Phase Delay. M.Sekido, R.Ichikawa,H.Osaki, T.Kondo,Y.Koyama (National Institute of Information and Communications Technology :NICT,Japan) M.Yoshikawa,T.Ohnishi(ISAS,Japan), - PowerPoint PPT Presentation

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Page 1: Astrometric VLBI Observation of Spacecraft with Phase Delay

Astrometric VLBI Observation of Spacecraft with Phase DelayM.Sekido, R.Ichikawa,H.Osaki,

T.Kondo,Y.Koyama

(National Institute of Information and

Communications Technology :NICT,Japan)

M.Yoshikawa,T.Ohnishi(ISAS,Japan),

W.Cannon, A.Novikov (SGL,Canada),

M.Berube (NRCan,Canada), and

NOZOMI VLBI group(NICT,ISAS,NAOJ,GSI,Gifu Univ. Yamaguchi Univ., Hokkaido Univ., Japan)

The National Institute of Information and Communications Technology

Page 2: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Spacecraft Navigation with VLBI: Motivation

Requirments for increased accuracy of orbit control for future space missions: – For landing, orbiting, & saving energy

R&RR

R01

R02

VLBI

+

SC Astrometry

Page 3: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

NOZOMI’s Earth Swing-by • NOZOMI was launched in July 1998.• Due to some troubles, new orbit plan with Earth

swing-by was proposed. • R&RR observations were difficult in a period.

VLB

I Observations Apr. MayMar.Jan. Feb. Jun.

May 22, 24, 27

June 4

Page 4: Astrometric VLBI Observation of Spacecraft with Phase Delay

Mizusawa(NAO)

Kashima(CRL)

Koganei(CRL)

Usuda(ISAS)

Yamaguchi(Yamaguchi Univ.)

Gifu(Gifu Univ.)

Kagoshima(ISAS)(uplink)

Tomakomai(Hokkaido Univ.)

Tsukuba(GSI)

AlgonquinSGL & NRCan

Japanese and Canadian VLBI Stations participated in NOZOMI VLBI observations.

ISAS,CRL,NAOJ, GSI,Gifu Univ, Yamaguchi Univ. Hokkaido Univ.SGL, NRCan supported.

Page 5: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Tasks to be done for S.C.astrometry are

• Constructing VLBI delay mode for Finite distance radio source– Including relativity and curvature of wavefront

• Writing Data Processing and Analysis software– Observation with IP-sampler boards recording to HD– Software correlator

• Narrow band signal

– Analysis software• Group delay or Phase delay

– Delay Resolution: (nano/pico seconds)

– Ambiguity problem

Page 6: Astrometric VLBI Observation of Spacecraft with Phase Delay

VLBI delay model for finite distance radio source

VLBI for finite distance radio source

Normal VLBI

c

SB

Y-XB

BB

XX YY

SS

c

KB

YX RR 00

0Y0X RRK

(Fukuhisma 1993 A&A)

BB

XX YY

RX0

RY0

KK

Page 7: Astrometric VLBI Observation of Spacecraft with Phase Delay

Relativistic VLBI delay model for finite distance radio source

c

cccc

VUγ

ct

ττ

eeeeg

202

220222

22

12

1

2

21

2

2)1(1

VR

wVKVR

bVwVbK

c

ccc

VUγ

ct

ττe

eeeeg

)(1

21

2

2)1(1

20

022

22

0

12wVK

VKbVwVbK

CONSENSUS MODEL (M.Eubanks 1991)

Finite Distance VLBI MODEL (Sekido & Fukushima 2003)

Page 8: Astrometric VLBI Observation of Spacecraft with Phase Delay

Finite-Infinite : Delay Difference

Page 9: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Analysis Procedure for SC Astometory

I. Compute a priori (delay, rate) (C) and partials– We modified “CALC9” for our use(finite VLBI).

(Thanks to GSFC/ NASA group for permission to use)

II. Extracting Observable (g, p)(O) with software correlator.

xx

y

y

CO

III. Computing O-C and least square parameter estimation

Page 10: Astrometric VLBI Observation of Spacecraft with Phase Delay

Group Delay(Post-fit Residual)

Rate residual

Delay Residual

Page 11: Astrometric VLBI Observation of Spacecraft with Phase Delay

Orbit motion

Estimated Coordinates(Group Delay)

6/4(VLBI)

6/4(R&RR)

May 27

June 4

Origin is Orbit on May 27, which was Determined by ISAS with R&RROrigin is Orbit on June 4.

Page 12: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Observable: Phase Delay & Group delay

Frequency

Ph

ase

Band width

g:Group Delay

Phase Delay

0

g ~ 1/BW ~1 nano second (Spacecraft)

p ~ 1/RF ~1 pico second

2 n ambiguity

Page 13: Astrometric VLBI Observation of Spacecraft with Phase Delay

Phase delayA C

B

Closure of Phase delay(Kashima-Usuda-Tsukuba)

Kashima-Usuda-Tsukuba

Page 14: Astrometric VLBI Observation of Spacecraft with Phase Delay

Phase Delay Post fit residualP

ost

Fit

Del

ay R

esid

ual

(se

c)

Page 15: Astrometric VLBI Observation of Spacecraft with Phase Delay

Estimated CoordinatesComparison with R&RR measurement

Page 16: Astrometric VLBI Observation of Spacecraft with Phase Delay

Summary• VLBI observations for spacecraft were per

formed with domestic and intercontinental baselines.

• Formula for Finite VLBI delay model and analysis software was developed by using CALC9.

• Astrometric SC coordinates were obtained with Group/Phase delay observables by absolute astrometry.

• Nest step:– Improve coordinates accuracy by using differ

ential VLBI technique.

Page 17: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Thank you for attention.

Page 18: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

SpaceOrbit of NOZOMI

Apr. MayMar.Jan. Feb. Jun.

Page 19: Astrometric VLBI Observation of Spacecraft with Phase Delay

Group Delay(Range signal)

ClosureObservation mode= 2MHz, 2bit

Page 20: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Spacecraft Navigation with VLBI : Motivation

Required for increased accuracy for future space missions: – For landing, orbiting, & saving energy

• JPL/NASA has been employed– Japanese Space Agency (ISAS+NASDA=JAXA)

• NOZOMI(Japanese Mars Explorer)– Needs to support orbit determination with VLBI.

• Mission as our own Project

Page 21: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Spacecraft Navigation

R&RR

R01

R02

VLBI

+

Page 22: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Observation: IP-VLBI Sampler board

• Sampling rate:40k-16MHz• Quantization bit: 1-8bit• 4ch/board• 10MHz,1PPS inputs

K5  VLBI  System

Page 23: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Page 24: Astrometric VLBI Observation of Spacecraft with Phase Delay

The National Institute of Information and Communications Technology

Page 25: Astrometric VLBI Observation of Spacecraft with Phase Delay

Phase Delay Analysis

4 June 2003

Predicted  Orbit

Pos

t F

it D

elay

Res

idu

al (

sec)

DeterminedOrbit

Page 26: Astrometric VLBI Observation of Spacecraft with Phase Delay

Estimated Coordinates

Comparison with R&RR

measurement

DeterminedOrbitPredicted 

Orbit