Principles of the Global Positioning System Lecture 24

Similar documents
Principles of the Global Positioning System Lecture 23

Lab 9: Satellite Geodesy (35 points)

Exploring Plate Motion and Deformation in California with GPS

Plate Boundary Observatory Working Group for the Central and Northern San Andreas Fault System PBO-WG-CNSA

GPS Strain & Earthquakes Unit 5: 2014 South Napa earthquake GPS strain analysis student exercise

Principles of the Global Positioning System Lecture 14

GPS Strain & Earthquakes Unit 3: Finding location and velocity data for PBO GPS stations

Lecture 20: Slow Slip Events and Stress Transfer. GEOS 655 Tectonic Geodesy Jeff Freymueller

to: Interseismic strain accumulation and the earthquake potential on the southern San

Variations in Tremor Activity and Implications for Lower Crustal Deformation Along the Central San Andreas Fault

TEGAM s Connection to the EarthScope Project

Segmentation in episodic tremor and slip all along Cascadia

The San Andreas Fault Observatory at Depth: Recent Site Characterization Studies and the 2.2-Km-Deep Pilot Hole

Your Advisor Said, Get the GPS Data and Plot it. Jeff Freymueller Geophysical University of Alaska Fairbanks

S e i s m i c W a v e s

Regional deformation and kinematics from GPS data

Jack Loveless Department of Geosciences Smith College

IGS Reprocessing. and First Quality Assessment

High Rate GPS Solutions

Plate Boundary Observatory the first five years

Introduction to Strain and Borehole Strainmeter Data

Measurements in the Creeping Section of the Central San Andreas Fault

Dynamic Triggering Semi-Volcanic Tremor in Japanese Volcanic Region by The 2016 Mw 7.0 Kumamoto Earthquake

SCIGN science report & GPS fault slip sensors

Creepmeter mini-proposal John Langbein, Evelyn Roeloffs, Mick Gladwin, Ross Gwyther

GPS strain analysis examples Instructor notes

Generating velocity solutions with globk

Recent GNSS Developments and Reference Frame Issues in Turkey. Onur LENK and Bahadir AKTUĞ

} based on composition

Magnitude 6.9 GULF OF CALIFORNIA

Comparison of Strain Rate Maps

Magnitude 6.5 OFFSHORE NORTHERN CALIFORNIA

Magnitude 8.2 NORTHWEST OF IQUIQUE, CHILE

Earthquakes and Faulting

Generating velocity solutions with globk

Seismic and aseismic processes in elastodynamic simulations of spontaneous fault slip

GPS study of N-S trending Karaburun Belt (Turkey) and its E-W trending eastern part

Estimating the rupture extent of low frequency. earthquakes near Parkfield, CA

Analysis effects in IGS station motion time series P. Rebischung, X. Collilieux, T. van Dam, J. Ray, Z. Altamimi

Seismogeodesy for rapid earthquake and tsunami characterization

How GNSS CORS in Japan works for geodetic control and disaster mitigations

Magnitude 7.1 NEAR THE EAST COAST OF HONSHU, JAPAN

ESTIMATES OF HORIZONTAL DISPLACEMENTS ASSOCIATED WITH THE 1999 TAIWAN EARTHQUAKE

SUPPLEMENTAL INFORMATION

Supplementary Materials for

Focused Observation of the San Andreas/Calaveras Fault intersection in the region of San Juan Bautista, California

Earthquakes Chapter 19

Earthquake distribution is not random: very narrow deforming zones (= plate boundaries) versus large areas with no earthquakes (= rigid plate

Using UNAVCO Real-Time CORS Data, a No-Cost Positioning Resource

Magnitude 7.8 SCOTIA SEA

Geodetic observations of transient deformation in Southern California

The BIFROST Project: 21 years of search for the true crustal deformation in Fennoscandia

San Jacinto Fault Zone and Sage Brush Flat High Frequency Experiments

South Pacific Sea Level and Climate Monitoring Project

Plate Tectonics 2. Ocean crust forms at mid-ocean ridges (with magnetic stripes )

Mechanics of Earthquakes and Faulting

Principles of the Global Positioning System Lecture 18" Mathematical models in GPS" Mathematical models used in GPS"

SONGS Seismic Research Projects

Low-Latency Earthquake Displacement Fields for Tsunami Early Warning and Rapid Response Support

Ground Motion Prediction Equations: Past, Present, and Future

Introduction to Displacement Modeling

Determining the Earthquake Epicenter: Japan

Earthquakes and Earthquake Hazards Earth - Chapter 11 Stan Hatfield Southwestern Illinois College

IGS POLAR MOTION MEASUREMENTS

Inquiry: Sumatran earthquakes with GPS Earth Science Education

Magnitude 7.7 QUEEN CHARLOTTE ISLANDS REGION

Empirical Green s Function Analysis of the Wells, Nevada, Earthquake Source

The Non-volcanic tremor observation in Northern Cascadia. Hsieh Hsin Sung 3/22

Getting to know EarthScope Plate

3.3 Analysis Coordinator

COVER SHEET FOR PROPOSAL TO THE NATIONAL SCIENCE FOUNDATION

Time Dependence of Postseismic Creep Following Two Strike-Slip Earthquakes. Gerasimos Michalitsianos

Magnitude 7.1 PERU. There are early reports of homes and roads collapsed leaving one dead and several dozen injured.

Yellowstone Hotspot Component of the Plate Boundary Observatory

Earthquakes. Building Earth s Surface, Part 2. Science 330 Summer What is an earthquake?

8.0 SUMMARY AND CONCLUSIONS

RELATION BETWEEN RAYLEIGH WAVES AND UPLIFT OF THE SEABED DUE TO SEISMIC FAULTING

Frames for the Future New Datum Definitions for Modernization of the U.S. National Spatial Reference System

Lecture 2 Measurement Systems. GEOS 655 Tectonic Geodesy

Magnitude 7.0 NEW CALEDONIA

Azimuth with RH rule. Quadrant. S 180 Quadrant Azimuth. Azimuth with RH rule N 45 W. Quadrant Azimuth

A Closer Look At Body Wave Magnitude & Introduction To Moment Magnitude

On May 4, 2001, central Arkansas experienced an M=4.4 earthquake followed by a

LAB 5: THE EARTHQUAKE CYCLE

Fault Specific, Dynamic Rupture Scenarios for Strong Ground Motion Prediction

Separating Tectonic, Magmatic, Hydrological, and Landslide Signals in GPS Measurements near Lake Tahoe, Nevada-California

The Tectonic Setting of New Zealand

High-precision location of North Korea s 2009 nuclear test

Scientific Research on the Cascadia Subduction Zone that Will Help Improve Seismic Hazard Maps, Building Codes, and Other Risk-Mitigation Measures

DCPP Seismic FAQ s Geosciences Department 08/04/2011 GM1) What magnitude earthquake is DCPP designed for?

Magnitude 7.4 SOUTH GEORGIA ISLAND REGION

Widespread Ground Motion Distribution Caused by Rupture Directivity during the 2015 Gorkha, Nepal Earthquake

Determining strain graphically

of the San Jacinto Fault Zone and detailed event catalog from spatially-dense array data

MAR110 Lecture #5 Plate Tectonics-Earthquakes

What scientists know and do not know about the big one at Cascadia

Evaluation of the impact of atmospheric pressure loading modeling on GNSS data analysis

Case Study of Japan: Crustal deformation monitoring with GNSS and InSAR

Japan Disaster: 9.0 Earthquake

Geo736: Seismicity and California s Active Faults Introduction

Transcription:

12.540 Principles of the Global Positioning System Lecture 24 Prof. Thomas Herring http://geoweb.mit.edu/~tah/12.540

OVERVIEW Examination of results from Earthscope Reference frame definition: SNARF High-rate GPS results Episodic Tremor and Slip (ETS) events Two types of water events. Tools 05/14/12 12.540 Lec 24 2

PBO GPS Data Analysis ACs (NMT and CWU) are routinely generating PBO GPS data products Rapid Sinex files: 24 hour latency Final Sinex files: 6-13 day latency, weekly run started after IGS final products become available Supplemental Sinex files: 12-week latency, weekly run. Includes missed sites and a 3-4 tie sites from final runs to link network. Tests show performance similar to finals. Bias fixing not quite so good due typically to wider site spacing. Supplemental runs also add sites to original final submission (until reprocessing generates new set of final runs). SINEX and RMS files ftp d to MIT Recently campaign processing (Bob Smith) added to processing first as an additional run similar to the supplemental runs and once caught up, included in the supplementals. Added USGS processing of SCIGN sites (SCEC funding). Results appear in combined product. 05/14/12 12.540 Lec 24 3

PBO Combination Analysis ACC: Rotates, translates, and scales each AC to PBO SNARF reference frame; check and correct meta data (when possible) Combine AC results and transforms combined product to PBO SNARF (Stable North America Reference Frame) Outlier checks and report generated that is emailed to SINEX and time-series files sent to UNAVCO via LDM The PBO realization of SNARF is updated about once-per-year: Requires re-submission of all frame defined sinex files and time series files. Latest version 20070919173418. At 6-month intervals updates are made for new stations. (Reference frame sites are not updated in these incremental updates and thus the time series and SINEX do not need release. 05/14/12 12.540 Lec 24 4

PBO SNARF Reference Frame Red: IGS reference sites Yellow PBO/ Nucleus sites 254 sites used to estimate daily rotation, translation and scale onto the North America Frame. Outlier detection during estimation. 05/14/12 12.540 Lec 24 5

RMS daily scatter: PBO Sites Daily RMS Scatters for 2004-2007.9 Combined solution for PBO Sites Median North 1.1 mm Median East 1.4 mm Median Height 3.9 mm 05/14/12 12.540 Lec 24 6

Daily RMS Scatters: Nucleus Sites Daily RMS Scatters for 2004-2007.9 Combined solution for Nucleus Sites Median North Median East Median Height 1.2 mm 1.4 mm 4.2 mm Nucleus are preexisting GPS sites that will be merged into PBO at the end of construction (10/2008). 05/14/12 12.540 Lec 24 7

RMS scatters for Nucleus sites (purple) and PBO sites (yellow), RMS scatter > 3 mm (black, 1mm).Red circle shows 1 mm RMS scatter 05/14/12 12.540 Lec 24 8

Northern California sites 05/14/12 12.540 Lec 24 9

Alaskan Sites RMS scatter of these sites is higher than CONUS; regional frame stabilization yields only small improvement. 05/14/12 12.540 Lec 24 10

Central US The RG sites are mostly only processed by CWU and the results are very noisy. Only one the RG sites is meant to be processed by CWU. 05/14/12 12.540 Lec 24 11

SCIGN site analysis: These results have implications for how well external or campaign processing can incorporated into PBO. Current analysis looks very good. 05/14/12 12.540 Lec 24 12

RMS Scatter of merged SGIGN sites Quality is very similar to other PBO sites. Median North Median East Median Height 1.1 mm 1.3 mm 3.8 mm 05/14/12 12.540 Lec 24 13

Arrival of surface waves from San Simeon Earthquake (1-Hz) GPS stations around Parkfield operate at 1-Hz sampling rates, which allows us to study surface wave arrivals from nearby and large magnitude earthquakes 05/14/12 12.540 Lec 24 14

Time zoom of arrivals In addition to the surface waves, the static co-seismic offset can also be seen here. Real time high rate GPS data useful for surveying and engineering communities. 05/14/12 12.540 Lec 24 15

Episodic Tremor and Slip (ETS) events in Casadia (Pacific North West) Examine overlay of strainmeter results and GPS coordinates Strainmeters measure small displacements in bore-hole (10-cm diameter) to measure strain (dl/l). GPS measures the integrated effects of all strains between site and stable North America. Strain meter data downloaded from: http://pboweb.unavco.org/?pageid=89 level 2 processed data (ASCII form) Files give gauge data calibrated to strain units with corrections offsets, trends and tides. Four gauge readings converted to 3 components of strain in east, north and EN directions (Eee-Enn, Eee+Enn, 2Een) through gauge orientations and least-squares (could test rms here). Eee-Enn strain compared GPS East coordinates after removing polynomial from strain. Data available in a number of formats including SEED 05/14/12 12.540 Lec 24 16

Borehole strainmeter GPS comparison Transient appears shorter in strain record? However is this expected from spatially transient strain event: Position will see continued integration Green line includes tides 05/14/12 12.540 Lec 24 17

Comparison in Northern Casadia/Vancouver Island Again short strain event but here earlier signal in Nov 2006 not seen in GPS. 05/14/12 12.540 Lec 24 18

Motions in California Red vectors relative to North America; Blue vectors relative to Pacific Motion across the plate boundary is ~50 mm/yr. In 100-years this is 5 meters of motion which is released in large earthquakes 05/14/12 12.540 Lec 24 Look at motion here 19

05/14/12 12.540 Lec 24 20

Site BBDM (using GoogleEarth) Courtesy of MDA EarthSat. Used with permission. 05/14/12 12.540 Lec 24 21

Water level in DAM versus site east coordinate 05/14/12 12.540 Lec 24 22

Closer Look (water change is rapid) 05/14/12 12.540 Lec 24 23

Another Water effect 2005-Anomaly Baldwin Park Areas Velocity Legend Red: 2003-2005; Blue 2005-2005.5; Black 2005.5-2007 05/14/12 12.540 Lec 24 Examine 3 sites 24

Trend fit 05/14/12 12.540 Lec 24 25

05/14/12 12.540 Lec 24 26

05/14/12 12.540 Lec 24 27

Baldwin Hills Velocity anomaly Change in velocity (2003-2005) minus (2005.5-2007.) 95% confidence ellipses Grey scaled version of 2005 rate 05/14/12 12.540 Lec 24 Rapid response thought be due to water; reason for long term change not clear 28

Summary of Water Effects While onset on motion in 2005 in Baldwin region coincides with heavy rains; the motions in this region continue well after the end of rains. BBDM: Dam site shows rapid response to water changes in the dam and so effect in basin seem to be of a different nature. 05/14/12 12.540 Lec 24 29

Cautions: Bad antenna artifact (several sites of this nature) 05/14/12 12.540 Lec 24 30

Repeating slow earthquakes in Pacific North West Image removed due to copyright restrictions. Please see: Larson, K., P. Bodin, and J. Gomberg. Using 1 Hz GPS Data to Measure Deformations Caused by the Denali Fault Earthquake. Science 300 (2003): 1421-1424. Example of repeating slow earthquakes (no rapid rupture) These events give insights into material properties and nature of time dependence of deformation 05/14/12 12.540 Lec 24 31

GPS Measured propagating seismic waves Data from 2002 Denali earthquake 05/14/12 12.540 Lec 24 32

Tools Most modern GPS analyses now contain hundreds of GPS sites For the remainder of the lecture we examine results with the GAMIT/GLOBK matlab tools available at: http://www-gpsg.mit.edu/~tah/ggmatlab Current programs are velview and tsview. 05/14/12 12.540 Lec 24 33

MIT OpenCourseWare http://ocw.mit.edu 12.540 Principles of the Global Positioning System Spring 2012 For information about citing these materials or our Terms of Use, visit: http://ocw.mit.edu/terms.