46
The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya. Ruzhin, Valery M. Sorokin, Pushkov Institute of Terrestrial Magnetism, Ionosphere and Radio Wave Propagation, Russian Academy of Sciences IZMIRAN, Troitsk, Moscow Region, Russia, 142190. The micro-satellite COMPASS-2 launched on May 26, 2006. The detailed COMPASS-2 mission and payload description and also some results of measurements are presented. The base of interpretation of satellite data is electrodynamic model of the atmosphere - ionosphere coupling. Our model gives an explanation to some electromagnetic and plasma phenomena in the ionosphere due to charge aerosols convective transport and radioactive increases in the lower atmosphere related to typhoons and earthquakes.

The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

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Page 1: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity.

Vladimir D. Kuznetsov, Yuriy Ya. Ruzhin, Valery M. Sorokin,

Pushkov Institute of Terrestrial Magnetism, Ionosphere and Radio Wave Propagation, Russian Academy of Sciences

IZMIRAN, Troitsk, Moscow Region, Russia, 142190.

The micro-satellite COMPASS-2 launched on May 26, 2006. The detailed COMPASS-2 mission and payload description and also some results of measurements are presented. The base of interpretation of satellite data is electrodynamic model of the atmosphere - ionosphere coupling. Our model gives an explanation to some electromagnetic and plasma phenomena in the ionosphere due to charge aerosols convective transport and radioactive increases in the lower atmosphere related to typhoons and earthquakes.

Page 2: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Main Measured Main Measured ParametersParameters

•Electromagnetic emissions (ELF-VLF and HF)

•Electrical and magnetic fields

•Ionosphere plasma density

•Temperature of electrons and ions

•Ion-mass spectral components

•Power spectrum of energetic electrons/ions (> 15 keV)

•Intensity of the IR radiation

Page 3: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The first (experimental) stage in creating the Space System is the launch of a small spacecraft Compass-2.

Its main objectives are to test and refine the monitoring techniques for detecting the earthquake ionospheric precursors in various regions over the world and to accumulate experimental and statistical data for increasing reliability of the forecast of major earthquakes (М>5).

Page 4: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Global Seismic Hazard Map COMPASS-2 paths

Low orbits satellites(height of an orbit of 500-800 km)for a day carry out monitoring all surface of the Earth, covering zones of the increased seismic activity

’€Љ‘€ ћЉЂѓ€ђС а н к т -П е т е р бу р гМ о с к в аМ у р м а н с к М и а с сС е в е р о м о р с к С е в е р од в и н с к С и д н е йД е л и М а н и л аВ а ш и н гто нН ь ю -Й о р к Б а й ко н у рТ р а с с а п о л е т а М К А К О М П А С - 2 в т е ч е н и е с у т о к - у ч а с т к и о р б и т М К А К О М П А С - 2 д л я ц е л е в о г о м о н и т о р и н г а О К П н а д с е й с м о а к т и в н ы м и р е г и о н а м и

Page 5: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Micro-satellite “Compass” was developed and produced by SRC “Makeyev Design Bureau” in cooperation with IZMIRAN.

The first launch was in December 2001, the

second launch will be in 2006.

Satellite mass (scientific equipment), kg 80(20)

Volume for equipment, dm3 67

Average orbit power consuption 25 W Attitude control accuracy, angular min 1S/C mission lifetime – 3 years (at least)Orbit parameters:

- altitude, km 500 - inclination, deg 79

Technical data of “COMPASS-2” SC

Page 6: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya
Page 7: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Small spacecraft COMPASS-2

Set of a scientific instruments:1. The radio-frequency analyzer2. A low-frequency wave complex3. Two-frequency transmitter " Mayak "4. A measuring instrument of the full electronic contents 5. The sensors of radiation and a ultraviolet

Page 8: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Dynamic VHF spectrum on February 8, 2007 at fly over above western coast of Southern

America

Page 9: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

An example of a dynamic spectrum of a record VLF, obtained 29.11.2006, 05:00:00 UT.On the spectrogram the tracks of off-on signals with frequency decreasing in due course are visible. The scale of intensity of tracks is shown at the left. On the upper part of the spectrogram -electrical components, on lower - magnetic is shown.. Duration of signals ~200-400 ms.

Page 10: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Distribution of earthquakes at Kamchatka on 28.02.2007. A pink circle below - position of a satellite in a check-in time of the VLF-DATA on 27.02.2007 at 21:35:49 (session 790).

Page 11: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

A dynamic VLF spectrum of a record of a low frequency wave analyzer, obtained at fly over above Kamchatka on 27.02.2007 at 21:35:49 (one day prior to earthquake).

Page 12: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

At the left - view of the Earth on the part of South poles. On the right observed datas of flows of protons 7-15 МeV and the red colour gives a channel of the gas-dischrge counter.

Page 13: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

7 SL. 36EL 21:04:41 02.12.2006 Kenia, tw o lightnings

0

64

128

192

256

320

384

448

512

576

640

704

768

832

896

960

1024

0 6400 12800 19200 25600 32000 38400 44800 51200 57600 64000

мкс

HV Blue

57 SL 1,8WL 22:21:29 02.12.2006 DUAL, Schotland, fast optical event

0

16

32

48

64

80

96

112

128

144

160

176

192

208

224

240

256

0 800 1600 2400 3200 4000

HV Blue Red

At the top of the oscillograms registered on the night party of the Earth with the help of the sensor of ultraviolet DRF at 21:04:41 UT on 02.12.2006г. Below - oscillograms registered on the night party of the Earth with the help of the sensor of ultraviolet DRF at 22:21:29 UT on 02.12.2006г.

Page 14: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Satellite Mission Control Center

Pedestal and flight control center antennas (new pedestal with 4M parabolic antenna planned in near future)

Satellite flight control center of IZMIRAN(Troitsk, Moscow region, Russia)

Page 15: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Despite of considerable limitations, bound with spacecraft, the primary goals of testing of complex scientific during of flight tests of experimental space vehicle were resolved.

The operational testing of scientific devices has shown that, the built complex of scientific instrumentation can be utilized as a fundamentals for creation of a specialized complex of scientific instrumentation of ionospheric monitoring for the subsequent projects intended for monitoring of near-earth space with the purpose of detection, registration and analysis of abnormal phenomena in an ionosphere, bound with earthquakes both other natural and technogenic catastrophes.

More information is on site: http://www.izmiran.ru

Page 16: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Electrodynamic model of DC electric field formation in the ionosphere and the atmosphere at the stages of earthquake and typhoon development allows to explain numerous effects in space plasma. This field caused by electric current flowing in the ionosphere is controlled by dynamics of the lithosphere and the atmosphere processes through variations of external electric current in the lower atmosphere. Horizontal spatial scale of this current is about 10 to 100 km and the characteristic time scale is 1 - 10 days.

Page 17: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The model used for calculations of current and field in the atmosphere - ionosphere electric circuit above seismic zone

1. Earth surface

2. Conductive layer of the ionosphere

3. External electric current in the lower atmosphere

4. Conductivity electric current in the atmosphere – ionosphere circuit

5. Field - aligned electric current

6. Satellite trajectory

7. Charged aerosols injected into the atmosphere by soil gases

2

3

Er

z1

B

4

5

6

7

z

x

1

Page 18: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The external current is excited in a process of vertical atmospheric convection and gravitational sedimentation of charged aerosols. Aerosols are injected into the atmosphere due to intensifying soil gas elevation in the lithosphere during the enhancement of seismic activity. Its inclusion into the atmosphere – ionosphere electric circuit leads to DC electric field increases up to 10 mV/m in the ionosphere. Aerosol transferring can be accompanied by increasing of atmospheric radioactivity.

Page 19: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The altitude dependences of ion production rate at epicenter of disturbed region. We have chosen: 1) A=0, 2) A=2, 3) A=4.

0

2

4

10 20 30 40 50 60 70

32

1

q , 1/ cm3 s

z , km

Transfer equation for the distribution function

of gamma quanta

0

exp( ) ( ) 1 exp

1 (1)R

m mR

F z Hq zq z q Ch z z A B

B F H

; r

lf f fN

t c

c

r

( , , )f t r

4RN N

0( ) exp /l z l z H ln /2 T

( , ) ( , )( )

( )cos 4 cos R

df z f zN z

dz l z c

0

( ) 2 ( , )sinn z f z d

0

0

( )( ) ( ) ( )

( )ee

ll zn z n z n z

l z l

( ) ( ) ( )( ) ( )e

c cq z n z n z

l z l z

1( / ) 1

00

01 0

01

( ) ;

(1)exp( )( ) ;

2

RH H

R

HF y y x x y dx

l

HN Fuxu dx q

x l

1E

E1) A=0, 2) A=2, 3) A=4.

0 0 0 0

1 1;

1 1

A Aq q q q B

B B

3 1 3 10 10 ; 40mq cm s q cm s

Page 20: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Kinetics of ions and aerosols in presence of atmospheric radioactivity.

1,

1,

( ) ( ); ;

( ) ( );

j jj

j jj

nq n n n dR R R n

t

nq n n n dR R R n

t

J J E

J J E

2

1 10 0 0

; ;exp(2 ) 1 1 exp( 2 ) 8j j

je je e

j j RkT

1 1 1 1 1 1 1 1

( ) ( )

jj j j j j j j j j

j j j

n n n nt

R K R

J

J v

0p j

j

N N

0

n jj

N N

c v w v / 4m R w g

,, , , , , , , ,0; ( ), ( )p n

p n p n p n p n p n p n p n p n

NN K N R K K R

t

v v v

Page 21: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The altitude dependences of atmosphere conductivity at the epicenter of

disturbed region. On the left panel it is presented atmosphere conductivity at the different level of atmospheric radioactivity. On the right panel it is presented atmosphere conductivity at the different number density of charged aerosols over Earth’s surface.

0

2

4

6

8

10

12

10-17 10-16

321

z , km

, 1/Om m

0

4

8

12

16

10-16 10-15 10-14 10-13 10-12

3 2 1

z , k

m , 1/Om m

0

2

4

6

8

10

12

10-17 10-16

321

z , km

, 1/Om m

0

4

8

12

16

10-16 10-15 10-14 10-13 10-12

3 2 1

z , k

m

, 1/Om m

3 30 2 10N cm

1) A=0, 2) A=2, 3) A=4.

A=0;

1) Np0 = 10 cm-3, 2) Np0 = 100 cm-3, 3) Np0 = 1000 cm-3;

Nn0 = 0.64 Np0 .

Page 22: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The altitude dependences of external electric current at the epicenter of

disturbed region.

0

2

4

6

8

10

12

14

5x10-7 1x10-6 2x10-6

3 21

1

je , A/m2

z , km

( , ) ( , ) ( , )e p nj r z j r z j r z

1) A=0, 2) A=2, 3) A=4.

External current is formed as a result of:• convective transfer of charged aerosols, •ionization of lower atmosphere by radioactive sources,•adhesion of electrons to molecules, •interaction of charged ions with charged aerosols

Page 23: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Atmospheric electric field variations with time scale exceeding 1 day at the distances within tens to hundreds kilometers from earthquake center during seismically active period never exceed the background magnitudes ~ 10 - 100 V/m. The mechanism of feedback between disturbances of vertical electric field and the causal external currents near the Earth surface can explain such limitation.

Page 24: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Scheme of the feedback formation between external current and vertical electric field on the Earth surface

1 - Positive charged aerosols.

2 - Negative charged aerosols.

3 - Elevated soil gases.

4 - The Earth surface.

+ -

V

jp0

jn0

Ez0 Z=0

1

2

3

4

Intensified soil gas elevation during the enhancement of seismic activity Intensified soil gas elevation during the enhancement of seismic activity increases aerosols injection into the atmosphere. The field limitation on the Earth increases aerosols injection into the atmosphere. The field limitation on the Earth surface is caused by feedback mechanism between excited electric field and the surface is caused by feedback mechanism between excited electric field and the causal external current. This feedback is produced by the potential barrier for causal external current. This feedback is produced by the potential barrier for charged particle at its transfer from ground to the atmospherecharged particle at its transfer from ground to the atmosphere

Page 25: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Dependence of vertical electric field on the Earth surface on the magnitude of external current

Page 26: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Formulas for calculation of spatial distribution of DC electric field connected with conductivity electric current in the atmosphere and the ionosphere caused by charged aerosols injection into the atmosphere

1

0 ( )

z dz

z

1,

, , , 0 ,

0

( ); ( , ) ( ) ( )

( )

zp n

p n p n p n p n

s zk dz j r z j r s z

z

1 1( , ) ( , ) ; ( , ) ( , )x yE x y x y x E x y x y y

2 20 0

1 0 02 2 2

( ) ( )1 1( , ) ( ) 1 ( ) 1

sin 2z z

p p n nP cp cn

E r E rx y k j r k j r

x y E E

0 00 0

( ) ( )1( , ) ( ) ( ) 1 ( ) ( ) 1

( )p z n z

z p p n ncp cn

k E r k E rE r z s z j r s z j r

z E E

0 1 1( ) ( , 0); ( , ) ( , , )z zE r E r z x y x y z z

0 0 0 0 0 04 ; 4p p p p n n n nj eZ h N j eZ h N 3 3 4 1 12

0 020 , 15 , 5 , 8 10 , 100, 2 10 , 2 10 /p n p Ph km h km h km N cm Z s cm s

0 0/ 0.64n pj j It is assumed:It is assumed:

6 20 6 10 /pj A m The external electric current is:The external electric current is:

Page 27: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

DC electric field calculated for axially symmetric distribution of the external electric current

100 200 300 400

0,0

0,5

1,0

E z0

(r)

, V

/m

r , km

j 1(r)

/ j 1(

0)

100 200 300 400

-60

-40

-20

0

100 200 300 400

4

8

12

E r (

r , )

, m

V /

m

Upper panel:Upper panel:

Horizontal DC electric field in Horizontal DC electric field in the ionosphere along and the ionosphere along and across the plane of magnetic across the plane of magnetic meridian. meridian. Angle of magnetic Angle of magnetic field inclination is field inclination is

Middle panel:Middle panel:

Vertical component of DC Vertical component of DC electric field on the Earth electric field on the Earth surface.surface.

Lower panel:Lower panel:

Normalized vertical Normalized vertical component of external component of external current on the Earth surface.current on the Earth surface.

20

Page 28: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

On possibility of lightning discharges occurring above seismic region.

• Calculation result of altitude dependence of ratio of electric field to breakdown field.

• The lightning discharges can be occurred on the altitudes where this ratio more than unit.

0

5

10

15

20

25

30

35

40

0.0 0.2 0.4 0.6 0.8 1.0 1.2

Ez/Ek

z, k

m

Page 29: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Spatial distributions of DC electric field calculated for axially symmetric distribution of the external electric current

Upper panel:Horizontal component of

DC electric field in the ionosphere. Angle of magnetic field inclination is

Lower panel:Vertical component of DC

electric field on the ground.

20

Page 30: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Spatial distribution of DC electric field in the ionosphere calculated for the different angles of magnetic field inclination

-400 -200 0 200 400

Y , km

-400

-200

0

200

400

X ,

km

-400 -200 0 200 400

Y , km

-400

-200

0

200

400

X ,

km

-400 -200 0 200 400

Y , km

-400

-200

0

200

400

X ,

km

-400 -200 0 200 400

Y , km

-400

-200

0

200

400

X ,

km

1 2 3 4 5 6 7 8 9 10 11 12 13 14 15

Page 31: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Spatial distribution of the horizontal component of electric field in the ionosphere and the vertical component of electric field on the Earth surface over fault in the

form an ellipse.

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

-1000 -600 -200 200 600 1000

Y , km

-1000

-600

-200

200

600

1000

X ,

km

5 15 25

Page 32: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Examples of satellite observations of DC electric field

• DC electric field observed by the "ICB -1300" satellite within 15-min interval before the earthquake occurred on January 12, 1982 at 17.50.26 UT .

• DC electric field observed by the “COSMOS -1809" satellite over the zone of large-scale tropical depression in its initial stage on January 17, 1989

Page 33: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The dissipative instability of acoustic-gravity waves in the ionosphere • The plasma density variations in the wave result in growth of the

conductivity disturbances and the Joule heating connected with the disturbed currents . As a result the conductivity irregularities with the horizontal spatial scale

• are excited in the lower ionosphere.( )g gl a n

The frequency dependence of the refraction index and the absorption coefficient of acoustic-gravity wave in the ionosphere in the presence of an external electric field.0,6 0,8 1,0 1,2 1,4

-3

-2

-1

0

2

1

0

1

2

3

4

2

1n

g

( )n

( )

Page 34: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Formation of field-aligned currents and plasma irregularities in the upper ionosphere as a result of AGW instability in the lower

ionosphere. The excitation of horizontal spatial The excitation of horizontal spatial structure of conductivity in the structure of conductivity in the lower ionosphere results in the lower ionosphere results in the formation of field align currents formation of field align currents and plasma layers stretched along and plasma layers stretched along the geomagnetic field.the geomagnetic field.

0/ / (1.6 16)%i iN N cnE aB

0 / 5Pb E c nT

/ ( ) (0.3 3)g g gt a v n s

Page 35: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Examples of satellite observations of ULF magnetic field oscillations and electron number density fluctuations

60 с

3

2

1

N/N

10%

4

a

б

1. Irregularities of ionosphere conductivity.

2. Irregularities of electron number density stretched along geomagnetic field.

3. Field-aligned currents.4. Satellite trajectory crossing

the disturbed region.

a). ULF magnetic field oscillations observed onboard the "ICB -1300" satellite within the 15-min interval before the earthquake occurred on January 12, 1982 at 17.50.26 UT .

b). Electron number density fluctuations observed onboard the “COSMOS-1809” satellite within the 3.4 hour interval before aftershock of the Spitak earthquake on January 20, 1989 at 00.04.06 UT.

Page 36: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

The excitation of horizontal small-scale irregularities of electric conductivity in the lower ionosphere can be used as a basis for generation mechanism of electromagnetic ELF precursors to earthquakes.

These waves appear due to interaction of thunderstorm related EM radiation with small-scale plasma irregularities excited in the lower ionosphere before earthquakes. EM pulses are generated by lightning discharges and propagate in the sub-ionospheric wave guide with small attenuation in ELF range

Page 37: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Gyrotropic waves generation in the lower ionosphere.

),,()( 10 zyxz

0 1 E E E

011 0 12 2

4 4

c t c t

EE

E

1 0 1 0( ) ( , ) ( ); ( ) ( , ) ( )H H P Ph x x z z p x x z z

2

1 0 2 2 20

2 ( )( , ) ( ) ; ( ) ( ) exp( )

( )y y

H kE k E H k dxh x ikx

k i k

2 220 0

22 2 00 0

( ) ( ); ;

4 4

P H

H H

c z dz z dzca l

dz l dz

3220 2)( klak

Page 38: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

ULF magnetic field perturbations on the Earth surface.

0( ) exp cosh x A x L k x

21

0 0 020

2 2 20 0 0 0 0 0 0

( , ) ( / )exp sin ( )cos exp ( ) ;

( ) 1

2 , ( ) , /

x

x

B xA x L k x qL k x i i k q x

B qL

q i k u u d k dk L u

44 10 /a m s

8 22 10 /m s

0/ 2 /d k

Page 39: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Nonlinear self-consistent equations for calculation of electric field and electron number density in the E layer of ionosphere.

12 ( , ) ( , ) ( , )x y x y j x y

E2 ( ) 0q N N v

2

( ); ;

1 ( )i

in

zeB cg g

Mc z B

v E

2; ( ) ; ( ) ( ) /[1 ( )]i P PeN egf z N f z z z j v E

110

1( ) ( ) ( , ) ( )

2

r

zE r dzf z N r z r j r dr

egr

2 20

( , ) ( ) ( )( ) ( , ) ( ) ( ) ( , )

N r z dE r E rN z N r z gf z E r N r z

r dr r

Page 40: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Spatial distribution of electron number density in the E layer of ionosphere at flowing electric current from the atmosphere to the

ionosphere.

• Axial symmetric external current

-100 -50 0 50 100x , km

100

120

140

160

180

200

z,

mk

4 40N e , 103 cm- 3

6 210 2 10 / ; 100j А m l кm

Page 41: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Altitude distribution of the electron number density in the center of disturbed E region of ionosphere.

100

150

200

0 1x104 2x104 3x104N

e , cm -3

z , k

m6 2

10 2 10 / ; 100j А м l км

Page 42: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Altitude dependence of electron number density formed by diffusion of metallic ions in horizontal DC electric field in the ionosphere over the seismic region.

Dashed line corresponds to the molecular ions number density. Angle of magnetic field inclination

100

120

140

160

0 1x105 2x105 3x105 4x105 5x105 6x105

°

Ne , cm -3

H ,

km

Page 43: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Altitude dependence of electron number density in the D layer of ionosphere at flowing electric current from the atmosphere.

• Change of electric charge carriers from negative ions to electrons in the electric current flowing through D layer result in perturbation of the ionosphere.

• Line (3) – Electric current is missing.

• Line (2) – Temperatures of electron and ion are same.

• • Line (1) – Temperature of

electrons at their heating by electric current more than temperature of ions.

30

40

50

60

70

80

90

0 1 2 3 4

logN

z, k

m

(1) (2) (3)

Page 44: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Response of the ionosphere to typhoon and earthquake development as observed from satellites and ground stations

Typhoons Earthquakes Eruptions

Near– ground atmosphere.Convective transport of charged aerosols and external electric current formation.

Atmosphere.Electric current in the atmosphere – ionosphere circuit.

Ionosphere.DC electric field, AGW instability, ionosphere conductivity irregularities.

Magnetosphere.Field-aligned currents, plasma density irregularities.

Ground based data

Changes in the ionosphere F layer.

Occurrence of sporadic Es layer.

ULF geomagnetic pulsations

Changes in whistler characteristics.

Satellite dataDC electric field

enhancement

Plasma density irregularities

ULF/ELF electromagnetic oscillations

Page 45: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

Conclusion

• Convective transport of charged aerosols in the lower atmosphere at different stages of typhoon and earthquake development leads to formation of external electric current.

• The calculations and satellite data show that DC electric field in the ionosphere can reach the magnitudes 10 to 20 mV/m.

• The ground-based observations did not reveal any significant long-term (1 to 10 days) electric field disturbances within earthquake area at the distances of tens to hundreds km from epicenter.

• The field limitation on the Earth surface is caused by feedback

mechanism between excited electric field and the causal external current.

• The effect of limitation of the vertical electric field magnitude on the ground creates significant advantage for satellite monitoring of seismic related electric field disturbances as compared to ground-based observations.

Page 46: The Capability of Space Mission to Study the Ionosphere and Electromagnetic Disturbances Related to Seismic Activity. Vladimir D. Kuznetsov, Yuriy Ya

WeWe tried to find the answers on the following questions:tried to find the answers on the following questions: 1. What plasma and electromagnetic processes can be connected with 1. What plasma and electromagnetic processes can be connected with the enhancement of DC electric field in the ionosphere?the enhancement of DC electric field in the ionosphere?

Answer.Answer. If DC electric field exceeds some threshold value of the order of 10 If DC electric field exceeds some threshold value of the order of 10 mV/mmV/m then the following effects are appeared: then the following effects are appeared:- - AGW instability and horizontal ionosphere conductivity irregularities;AGW instability and horizontal ionosphere conductivity irregularities;- The field - align electric currents and plasma density irregularities stretched - The field - align electric currents and plasma density irregularities stretched along geomagnetic field lines;along geomagnetic field lines;- Whistler duct in the ionosphere and the magnetosphere;- Whistler duct in the ionosphere and the magnetosphere;- Electromagnetic ELF emissions in the ionosphere;- Electromagnetic ELF emissions in the ionosphere;- ULF geomagnetic field oscillations on the Earth surface.- ULF geomagnetic field oscillations on the Earth surface.

- Lower ionosphere disturbances and sporadic E-layer formation.- Lower ionosphere disturbances and sporadic E-layer formation. - Possibly lightning discharges appearance. - Possibly lightning discharges appearance.

22. What physical processes lead to enhancement of DC electric field in the . What physical processes lead to enhancement of DC electric field in the ionosphere?ionosphere?

Answer.Answer. We considered one of the possible mechanisms. It is connected with We considered one of the possible mechanisms. It is connected with the formation of additional external electric current in the global atmosphere - the formation of additional external electric current in the global atmosphere - ionosphere current circuit due to vertical turbulent transport of the charge ionosphere current circuit due to vertical turbulent transport of the charge aerosols in the near ground level.aerosols in the near ground level.