Catoctin/Fauquier contact

Catoctin/Fauquier contact
Power washing a quarry block near Aldie, VA that preserves a soft sediment contact of the Fauquier Formation cap carbonate and pillow basalt of the Catoctin Formation.

Sunday, February 26, 2017

Seismic Anisotropy in the Mantle Transition Zone

1. Introduction 

                The Earth’s mantle consists of solid rocks and also viscous mantle flow. The process that drives the mantle flow between Earth’s surface and deep interior is known as mantle convection. The mantle flow appears as mantle plume or subducting slab that is the driving force of the plate motions on Earth’s surface. The mantle transition zone is a 250-km thick layer located in the middle of mantle and acts like a filter in convection between the upper and lower mantle. The mantle flow in the transition zone is the key to understanding whole mantle convection. How can we trace the mantle flow in deep Earth’s interior, especially in the transition zone?  Mantle flow can cause the preferred orientation of minerals, thus produce seismic anisotropy that can be observed from seismic waves (Figure 1). Seismic anisotropy, which is the dependence of seismic velocities on the propagation direction or seismic wave polarization, is a powerful tool to constrain the nature of mantle flow. However, current seismology methods like surface wave or shear wave splitting have limited resolution to observe seismic anisotropy in the transition zone. Here, I propose to use a body wave method, SS precursors, to observe and quantify the strength of seismic anisotropy in the transition zone. The SS precursor method has a better vertical and horizontal resolution because it can pinpoint the seismic anisotropy in the transition zone beneath a specific location and lead to a better understanding of flow in the deep Earth.


Figure 1. The minerals in mantle transition zone are aligned by the subducting flow.
Figure 2. The ray-path of  SS phase and SS precursors (Schmerr et al., 2010). 


2. Methods

              I’m currently working with a global broad band SS dataset consisting of 45,624 records (Figure 3). I partitioned the SS dataset into different geographical bins located in South America and South Pacific oceans, which have enough azimuthal coverage to produce stable stacking results. I also further broke the geographic bins into smaller azimuthal bins to study the travel time and amplitude variance of SS precursors with azimuth.  If seismic anisotropy exists in the transition zone, it can change the amplitude and travel time of SS precursors at different azimuths. The azimuthal stacking results show weak variations of amplitude and travel time, which is consistent with less than 1% anisotropy beneath South Pacific Ocean and South America. In order to trace subducting flows in the mantle, I combined all the geographical bins in subduction zones into a large bin and then broke it into 6 different azimuthal bins (Figure 4). The variations of travel time and amplitude are relatively strong compared to the bins in South America and South Pacific Ocean, which indicates 1-4% anisotropy can exist in the transition zone beneath subduction zones (Figure 5).


Figure 3. The azimuths of SS bounce points in the SS dataset.
Figure 4. The stacking results of S410S and corresponding synthetics.

Figure 5. The amplitude and travel time variations of S410S with azimuth. 


3. Proposal: 3D Modeling of SS Precursors


           I propose to use the 3D SPECFEM code to model the amplitude and travel time change of SS precursors in an anisotropic 3D Earth model. I will learn to use SPECFEM code to generate synthetic seismograms and predict how the waveforms of SS precursor would behave if the transition zone has certain amount of anisotropy. The modeling results will be used to quantify the strength of anisotropy observed in my dataset by examining the travel time and amplitude variations. First, I will set up the SPECFEM code for running on the Deepthought2 cluster. Since it is my first time to use the code, it will take me about two weeks to study the tutorial and adapt the code to work on the cluster. Second, I will collect anisotropic Earth models from literatures and use them as an input to test the code. If the synthetics are consistent with data, I can continue to adapt the models to test certain hypotheses. Third, I will specify different strength and azimuth of seismic anisotropy in the transition zone.  To begin with, I will test the resolution of SS precursor method for the minimum anisotropy that can be detected by the method. I will incrementally add 0.1% of azimuthal anisotropy into the model until the amplitude and travel time changes are observed. From this I can determine the minimum anisotropy to be seen in the dataset. Furthermore, I will run models with different strength of anisotropy ranging from 1 to 15% to find the reasonable anisotropy that can explain the data variations. I can fit the model predictions into the data observations by creating sinusoidal curves with different strengths of anisotropy. The goal is to find the best-fit model thus to quantify the amount of anisotropy in the transition zone.  


Figure 6. Shear wave velocity anomalies from s20rts model on the SPECFEM mesh. 

Figure 7. An example to use SPECFEM for mantle convection modeling.

References

Shearer, P. M. (1993). Global mapping of upper mantle reflectors from long-period SS precursors. Geophysical Journal International, 115(3), 878–904.

Flanagan, M. P., & Shearer, P. M. (1998). Global mapping of topography on transition zone velocity discontinuities by stacking SS precursors. Journal of Geophysical Research: Solid Earth, 103(B2), 2673–2692.

Mainprice, D. (2007). Seismic anisotropy of the deep Earth from a mineral and rock 1022 physics perspective. Schubert, G. Treatise in Geophysics Volume 2 pp437-492.

Schmerr, N., & Garnero, E. J. (2007). Upper Mantle Discontinuity Topography from Thermal and Chemical Heterogeneity. Science, 318(5850), 623–626.

Schmerr, N., & Garnero, E. (2006). Investigation of upper mantle discontinuity structure beneath the central Pacific using SS precursors. Journal of Geophysical Research: Solid Earth, 111(B8), B08305.

Trampert, J., & van Heijst, H. J. (2002). Global Azimuthal Anisotropy in the Transition Zone. Science, 296(5571), 1297–1299. http://doi.org/10.1126/science.1070264

Yuan, K., & Beghein, C. (2013). Seismic anisotropy changes across upper mantle phase transitions. Earth and Planetary Science Letters, 374, 132–144. http://doi.org/10.1016/j.epsl.2013.05.031


8 comments:

  1. Ringwoodite has a cubic structure, so I'm a little confused what you mean by preferential orientation for it other than perhaps compositional bands? Wadsleyite is orthorhombic, so I think you could expect some sort of preferential orientation for it.

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  2. Isn't an azimuth of 0 and 360 the same? If so, Figure 3. is misleading. Seems like an interesting project!

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  3. You didn't talk about why this is important in NSF or the general public. You should cover why this topic is relevant for those not in the field. This will also tie into how you can use this for outreach.

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  4. Has this kind of work been done before?
    The yellow circles are very hard to see.

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  5. Good explanation of how your research is important to understanding mantle convection. For those outside the field, it would help to describe how this would help us to interpret seismic events (etc.) on the surface.
    In the proposal, you should present evidence for why the variations in amplitude and travel time are statistically significant, because they don't appear so at first glance.
    From what I understand of the content, this looks interesting! I look forward to seeing where it goes.

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  6. Interesting topic! I would recommend making Figure 2 a colored plot. It might make the ray paths easier to differentiate. For figure 6, it would also be helpful to explain what d(lnB) represents.

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  7. I think for a non-seismologist to grasp the importance of transition zone anisotropy, could you plot what your expected azimuth vs. amplitude plot would look like if there is significant anisotropy? What would it look like if there is no anisotropy? I found it difficult to follow parts of the presentation since I'm not a specialist in this field.

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  8. Great talk! I think you managed to explain your project clearly, and covered the budget you needed. Maybe you should cover why NFS would be interested in funding it.

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