B.Sadoulet DUSEL seminar 3/4/05 1 The Deep Underground Science and Engineering Laboratory History and process The science Infrastructure requirement Implementation.

Slides:



Advertisements
Similar presentations
Strategy for Nuclear Physics Scope and Range of Physics Current Projects Future Projects Other issues Balance of Programme, Theory.
Advertisements

J. Kotcher HEPAP Meeting, July 13-14, 2007, Washington, DC 1 Deep Underground Science & Engineering Laboratory (DUSEL) Jon Kotcher HEPAP Meeting Washington,
Part III Solid Waste Engineering
Aug 9-10, 2011 Nuclear Energy University Programs Materials: NEAMS Perspective James Peltz, Program Manager, NEAMS Crosscutting Methods and Tools.
B.Sadoulet Boulder Intro 1/5/05 1 Boulder DUSEL Study Workshop Introduction Apologies: a difficult date! The DUSEL Process The DUSEL (Solicitation 1) Study.
European Strategy for Particle Physics 2013 Preparatory group->Strategy group Individual town meetings Town meeting in Krakow: september 2012 Drafting.
Double Beta Decay Neodymium, a rare earth element, will be added to the liquid scintillator in SNO+ (at 0.1% by weight). This will enable a search for.
Recent Discoveries in Neutrino Physics: Understanding Neutrino Oscillations 2-3 neutrino detectors with variable baseline 1500 ft nuclear reactor Determining.
DOE Neutrino Program Plans
Cosmology The Origin and Future of the Universe Part 2 From the Big Bang to Today.
PD Connection with National Underground Lab R. Rameika Fermilab October 8, 2004.
B.Sadoulet CDMS DUSEL The Deep Underground Science and Engineering Laboratory Site Independent Study The process The science Infrastructure requirements.
B.Sadoulet Blacksburg conclusions (updated from discussions) 1 Blacksburg DUSEL Worshop Earth Science and Engineering Tentative Conclusions What have we.
1 Geosciences Research Initiative All technologies envisioned to meet future energy and environmental demands require advances in fundamental.
B.Sadoulet DUSEL Henderson 5/4/06 1 DUSEL Site Independent (S1) study Bernard Sadoulet Dept. of Physics /LBNL UC Berkeley UC Institute for Nuclear and.
NSF VISION in PARTICLE and NUCLEAR ASTROPHYSICS Richard N. Boyd  The Present  Dark Matter  Ultra high energy cosmic rays  Ultra high energy gamma rays.
October 12th, 2006L. Mosca LAGUNA Meeting in Zurich 1 IPP- ETH Zurich October 12th, 2006 LAGUNA Meeting WG 7: Safety and Environment Report by L. Mosca.
Interdisciplinary and Interagency Cooperation in High Energy Physics Barry Barish BPA 5-Nov-02.
O AK R IDGE N ATIONAL L ABORATORY U. S. D EPARTMENT OF E NERGY Deep Underground Science and Engineering Laboratory (DUSEL) DUSEL S1 VaTech Workshop Geomicrobiology,
1.Intro to geology 2.Plate tectonics 3.Minerals 4.Rocks 5.Igneous rocks 6.Volcanism 7.Weathering & erosion 8.Sediments and Sedimentary rocks 9.Metamorphic.
B.Sadoulet DUSEL Blacksburg Introduction 1 Blacksburg Workshop DUSEL process Solicitation 1 Workshops: Berkeley, Blacksburg, Boulder, Maryland(?) Goals.
Geosciences in an Underground Laboratory:
“ PHOBOS - SOIL ” Phobos Sample Return Mission 1. goals, methods of study A.Zakharov, Russian academy of sciences Russian aviation.
CSM/CNA UNO R&D Proposal Lee Petersen –CNA Consulting Engineers Mark Kuchta –Colorado School of Mines Requested budget: $200k/year for two years Cavern.
Global Warming Mitigation Proposed Curriculum for New Mexico Middle Schools 6 th through 8 th Marcia Bardy – ST589 Climate Change and Carbon Sequestration.
Preliminary Assessment of the Microbiology of Marcellus Shale Fracture and Flowback Waters Website: Customer Service:
Colleen Megowan-Romanowicz PhD American Modeling Teachers Association Arizona State University The Next Generation Science Standards: another preview.
Earth Sciences at DUSEL: Ideas and Progress to Date Eric Sonnenthal & Brian McPherson.
B.Sadoulet APS DUSEL The Deep Underground Science and Engineering Laboratory Site Independent Study The process The science Infrastructure requirements.
Deep Underground Science and Engineering Lab Hamish Robertson for the DUSEL S1 P/Is: E.W. Beier, C. Fairhurst, T.C. Onstott, R.G.H. Robertson, B. Sadoulet,
Induced Slip on a Large-Scale Frictional Discontinuity: Coupled Flow and Geomechanics Antonio Bobet Purdue University, West Lafayette, IN Virginia Tech,
Long Range Plan (LRP) & EDM Nuclear Physics LRP is prepared every 5- 6 years Provides guidance to funding agencies w.r.t. scientific and funding priorities.
Handling of Future Human Actions in the safety assessment SR-Site Eva Andersson.
I can name the steps of the scientific method, in order. Structure & Transformation.
EarthCube Vision An alternative approach to respond to daunting science and CI challenges An alternative approach to respond to daunting science and CI.
Deep Earth Observatory and Laboratory for Life, Fluid Flow and Rock Processes T. C. Onstott, Princeton U. H. F. Wang, U. of Wisconsin-Madison Geoscience.
Mineral Exploration Tel: (07) Fax: (07)
Recommendations for Science at SNOLAB Andrew Hime On behalf of the Experiment Advisory Committee Aug. 17, 2005 SNOLAB Surface Building.
Outlook on Underground Science Thomas Bowles Los Alamos National Laboratory / University of Washington American Physical Society Meeting Philadelphia April.
Physics Priorities S. Dawson July 11, 2007 Fermilab Steering Committee Meeting.
October 2011 David Toback, Texas A&M University Research Topics Seminar 1 David Toback Texas A&M University Mitchell Institute for Fundamental Physics.
Rock Mechanics/Geophysics Larry Costin, Sandia National Labs Paul Young, University of Toronto Discussion Points November 12, 2004 DUSEL Workshop.
P5 and the HEP Program A. Seiden Fermilab June 2, 2003.
ARMA-NSF-NeSS Workshop Some Needs and Potential Benefits Related to a National Underground Science Laboratory NUSL–Geo-Hydrology–Engineering-Team Overview.
DUSEL: Deep Underground Science and Engineering Laboratory Brian McPherson, New Mexico Tech Overview of the S-1 Geoscience Report to the NSF HUSEP Capstone.
Geosciences - Observations (Bob Wilhelmson) The geosciences in NSF’s world consists of atmospheric science, ocean science, and earth science Many of the.
A Large Block Test to Study the Energetic Failure of Rock – Application to Rock-Bursting and Earthquake Mechanics Maochen Ge, Eliza Richardson, Chris Marone,
Global climate system - link together many of the topics on the basis of the most recent modeling for future trends Climate patterns - short-term time.
Workshop on Global Bathymetry for Oceanography, Geophysics, and Climatology24-26 October 2002 MARGINS Interests in Improved Resolution Altimetry Derived.
Chemistry XXI The central goal of this unit is to help you understand and apply basic ideas that can be used to distinguish the different substances present.
Adel Sharif University of Surrey
Department of Energy Office of Science  FY 2007 Request for Office of Science is 14% above FY 2006 Appropriation  FY 2007 Request for HEP is 8% above.
B.Sadoulet CDMS DUSEL The Deep Underground Science and Engineering Laboratory The process Themes DUSEL and CDMS Bernard Sadoulet Dept. of Physics.
Low Background Studies at the Soudan Underground Laboratory-9/20/ Low Background Studies at the Soudan Underground Laboratory The Soudan Underground.
IAEA International Atomic Energy Agency Presenter Name School of Drafting Regulations for Borehole Disposal of DSRS 2016 Vienna, Austria Siting Strategies.
John Womersley 1/13 Fermilab’s Future John Womersley Fermilab May 2004.
P5 Report: The Particle Physics Roadmap 1 A. Seiden Fermilab May 14, 2007.
Opportunities for Geomicrobiological Characterization and Experimentation During DUSEL Site Selection and Development “ProtoEarthLab”? Tom Kieft, New Mexico.
Next Generation Climate Related Standards (2013) K Middle School High School K-PS3-1. Make observations to determine the effect of sunlight on Earth’s.
Importance of Methods’ Selection in the Geosciences Studies and Exploration Mustafa M Hariri Geosciences Department King Fahd University of Petroleum &
SCIENCE FAIR CATEGORIES MIDDLE SCHOOL :
CPM 2012, Fermilab D. MacFarlane & N. Holtkamp The Snowmass process and SLAC plans for HEP.
7. Air Quality Modeling Laboratory: individual processes Field: system observations Numerical Models: Enable description of complex, interacting, often.
NWG Presentation Heeger, Freedman, Kadel, Luk LBNL, April 11, 2003 Reactor Neutrino Measurement of  13 Searching for Subdominant Oscillations in e  ,
Particle Physics Sector Young-Kee Kim / Greg Bock Leadership Team Strategic Planning Winter Workshop January 29, 2013.
Constructing Activities Based on “Grand Challenges” Michael Wysession Washington University St. Louis, MO.
Coupled Processes at DUSEL:
Visualizing Earth Science
Charge for APS Neutrino Study
A few naïve reactions to yesterday
Presentation transcript:

B.Sadoulet DUSEL seminar 3/4/05 1 The Deep Underground Science and Engineering Laboratory History and process The science Infrastructure requirement Implementation Bernard Sadoulet Dept. of Physics /LBNL UC Berkeley UC Institute for Nuclear and Particle Astrophysics and Cosmology (INPAC)

B.Sadoulet DUSEL seminar 3/4/05 2 The DUSEL Process Motivations Early 1980’s first investigation (Nevada, San Jancinto) 2000 Renewed interest in a US Deep Underground Science Laboratory ÜRapid expansion of Nuclear and Particle Astrophysics ÜPotential availability of Homestake on a short time scale Strong scientific support. A number of reports. Recent realization that such a facility would bring tremendous opportunities to earth sciences, biology and engineering: DUSEL March 2004: New process put in place by NSF Solicitation 1: Community wide study of Scientific roadmap: from Nuclear/Particle/Astro Physics to Geo Physics/Chemistry/Microbiology/Engineering Generic infrastructure requirements Solicitation 2 : Pre-selection of 3-5 sites Proposals due February Solicitation 3  Selection of initial site(s)  MRE and Presidential Budget (optimistically in 09)

B.Sadoulet DUSEL seminar 3/4/05 3 Site Independent Goals The best scientific case for DUSEL The big questions Roadmaps of class A+ experiments Long term needs Implementation parameters Infrastructure requirements  Modules (set of experiments sharing same infrastructure needs) Generic management structure Integration of science and education and involvement of local population International context Identify strategic aspects of a U.S. facility Estimation of the space needs for first two decades =>Build up common language, consensus and synergies clearly happening already (3 workshops) Deliverables by summer 05 Printed report directed at generalists Agencies OMB/OSTP/Congress cf. Quantum Universe +Web based reports with technical facts for scientists and programs monitors

B.Sadoulet DUSEL seminar 3/4/05 4 Process 6 PI’s responsible for the study in particular scientific quality/ objectivity Bernard Sadoulet, UC Berkeley, Astrophysics/Cosmology Hamish Robertson, U. Washington, Nuclear Physics Eugene Beie,r U. of Pennsylvania, Particle Physics Charles Fairhurst, U. of Minnesota, geology/engineering Tullis Onstott, Princeton, geomicrobiology James Tiedje, Michigan State, microbiology 14 working groups + Workshops Infrastructure requirements/management Education and outreach 2 consultation groups The site consultation group (Solicitation 2 sites) Endorsement of the PI’s and general approach Input on scientific/technical questions important to the sites Competition between sites The initiative coordination group: major stakeholders (e.g. National Labs) Coordination with other major initiatives Major facilitator of involvement of other agencies External review à la NRC

B.Sadoulet DUSEL seminar 3/4/05 5 Status/Plans See 3 workshops Berkeley Aug 04: mutual discovery of Physics and Earth Sciences Blacksburg Nov 04: big questions in Earth Sciences Boulder Jan 05: fundamental biology, international aspects common language, modules, schedule Methodology Infrastructure matrices Survey of the demand for DUSEL 1st decade and 2nd decade Rescaling for likely evolution of community and budgets  Start real work from working groups after Feb 28  Final workshop in DC area ≈July 15 General discussion of a draft of overall report Information of agency people  August-September Convergence on wording External review  Glossy report fall 05

B.Sadoulet DUSEL seminar 3/4/05 6 Major Questions in Physics (1) What are the properties of the neutrinos? Are neutrinos their own antiparticle? The answer to this question is a key ingredient in the formulation of a new ``Standard Model'', and can only be obtained by the study of neutrinoless double beta decay. What is the remaining, and presently unknown, mixing angle  13 between neutrino mass eigenstates? What is the hierarchy of masses? Is there significant violation of the CP symmetry among the neutrinos?

B.Sadoulet DUSEL seminar 3/4/05 7 Double beta decay Many new experiments gearing up to test this claim and go beyond it… Major US efforts Majorana expt- 500 kg Ge76 (86%) EXO - 1-ton LXe TPC Majorana Experiment

B.Sadoulet DUSEL seminar 3/4/05 8 Major Questions in Physics (1) What are the properties of the neutrinos? Are neutrinos their own antiparticle? The answer to this question is a key ingredient in the formulation of a new ``Standard Model'', and can only be obtained by the study of neutrinoless double beta decay. What is the remaining, and presently unknown, mixing angle  13 between neutrino mass eigenstates? What is the hierarchy of masses? Is there significant violation of the CP symmetry among the neutrinos? Do protons decay? It is expected that baryonic matter is unstable at some level and the lifetime for proton decay is a hallmark of theories beyond the Standard Model. These questions relate immediately to the completion of our understanding of particle and nuclear physics, and to the mystery of why the universe contains much more matter than antimatter.

B.Sadoulet DUSEL seminar 3/4/05 9 Nucleon decay & long-baseline Large multipurpose detectors Long-baseline neutrinos Proton decay Supernova observatory UNO: ~20 SuperK (fid.) Water cherenkov LANNDD - Liquid Argon Neutrino and Nucleon Decay Detector

B.Sadoulet DUSEL seminar 3/4/05 10 Major Questions in Physics (2) What is the nature of the dark matter in the universe? Is it comprised of weakly interacting massive particles (WIMPs) of a type not presently known, but predicted by theories such as Supersymmetry? Goal: observe both in the cosmos and the laboratory (LHC,ILC).

B.Sadoulet DUSEL seminar 3/4/05 11 Large mass WIMP detectors Cryogenic Detectors CDMS II, EDELWEISS II, CRESST II Similar reach with complementary assets Xenon Low pressure TPC

B.Sadoulet DUSEL seminar 3/4/05 12 Major Questions in Physics (2) What is the nature of the dark matter in the universe? Is it comprised of weakly interacting massive particles (WIMPs) of a type not presently known, but predicted by theories such as Supersymmetry? Goal: observe both in the cosmos and the laboratory (LHC,ILC). What is the low-energy spectrum of neutrinos from the sun? Solar neutrinos have been important in providing new information not only about the sun but also about the fundamental properties of neutrinos.

B.Sadoulet DUSEL seminar 3/4/05 13 Solar neutrinos Possible future US Program: Heron - rotons in LHe Clean - scintillation in LNe LENS - liquid scintillator

B.Sadoulet DUSEL seminar 3/4/05 14 Physics needs low cosmic- ray rates

B.Sadoulet DUSEL seminar 3/4/05 15 Subsurface Geoscience How are the Underground Processes Changing the Earth How does the rock flows and cracks at depth? Fundamental Processes at Depth How are the coupled Hydro-Thermal-Mechanical-Chemical-Biological (HTMCB) processes in fractured rock masses vary as function of the physical and time scales involved. Cannot be done in laboratory! Transparent Earth Can progress in geophysical sensing methods and computational advances be applied to make the earth transparent, i.e. to ‘see’ real-time interaction of processes and their consequences in the solid earth? Relationships between surface measurements and subsurface deformations and stresses How does the Earth Crust Move? –What controls the onset and propagation of seismic slip on a fault? –How are surface deformations and stresses related to their subsurface counterparts, and to tectonic plate motions? – Can earthquake slip be predicted; can it be controlled? Need for long term access as deep as possible Observatories in particular at largest depth Laboratories where we can act on the rock

B.Sadoulet DUSEL seminar 3/4/05 16 Rock Mass Strength-Unknown

B.Sadoulet DUSEL seminar 3/4/05 17 Correlation Surface -Underground

B.Sadoulet DUSEL seminar 3/4/05 18 Induced Fracture Processes Laboratory Evaluate and refine models of fracture initiation and propagation Resource recovery CO2 sequestration Waste isolation Examine effects on proximal fluid flow and transport including proppants Wellbore interaction effects Pressure solution in fractures Examine roles of different propellants Examine roles of fractures in bacterial colonization Examine the long-term stability and durability of underground openings Courtesy of Derek Ellsworth

B.Sadoulet DUSEL seminar 3/4/05 19 Deep Coupled Processes Laboratory Characterize coupled-processes that affect critical environmental engineering, and complex subsurface Earth processes CO2 sequestration Waste isolation In situ mining Mineralization and ore body formation Characterize coupled processes under ambient conditions Chemical fate and transport including dissolution/precipitation and modification of mechanical and transport parameters Multiphase flow and transport Microbial colonization Courtesy of Derek Ellsworth

B.Sadoulet DUSEL seminar 3/4/05 20 Subsurface GeoEngineering Importance for a number of applications –groundwater flow; –contaminant transport; –long-term isolation of hazardous and toxic wastes, carbon sequestration and hydrocarbon storage underground –ore forming processes; –energetic slip on faults and fractures; stability of underground excavations; Mastery of the rock What are the limits to large stable excavations at depth? Currently: Petroleum boreholes; 0.1m Ø. at 10km Mine shafts 5m Ø at 4km. DUSEL physics excavations 10-40m Ø at 1-3km Resources Origin Discovery Exploitation Sequestration Need for long term access as deep as possible DUSEL nearly unique in the world

B.Sadoulet DUSEL seminar 3/4/05 21 Resource Recovery Locate resource Access quickly and at low cost Recover 100% resource at chosen timescale No negative environmental effect Waste Containment/Disposal Characterize host at high resolution Access and inter quickly at low cost Inter completely or define fugitive concentration output with time Underground Construction Characterize inexpensively at high resolution Excavate quickly and inexpensively Provide minimum support for maximum design life ……………… What will we need to do better in 20 years? Grand Challenges ….. Courtesy of Derek Ellsworth

B.Sadoulet DUSEL seminar 3/4/05 22 Major Questions in Geomicrobiology How does the interplay between biology and geology shape the subsurface? Role of microbes in HTMCB How deeply does life extend into the Earth? What are the lower limits of life in the biosphere? What is the temperature barrier, the influence of pressure, the interplay of energy restrictions with the above? The subsurface biomass may be the most extensive on earth but samples so far are too few. What fuels the deep biosphere? Do deep microbial ecosystems exist that are dependent upon geochemically generated energy sources ("geogas": H2, CH4, etc.) and independent from photosynthesis. How do such systems function, their members interact to sustain the livelihood? Need for long term access as deep as possible In many cases need horizontal probes (pressure) Deeper bores

B.Sadoulet DUSEL seminar 3/4/05 23 Variation of Life with Depth Cells/ml or Cells/g Depth (km) ? Fig. 2 of Earthlab report S. African data + Onstott et al. 1998

B.Sadoulet DUSEL seminar 3/4/05 24 Major Questions in Biology What can we learn on evolution and genome dynamics? Microbes may have been isolated from the surface gene pool for very long periods of time. Can we observe ancient life? How different are this dark life from microbes on the surface? Unexpected and biotechnologically useful enzymes? How do they evolve with very low population density, extremely low metabolism rate and high longevity? Role of Phages Did life on the earth's surface come from underground? Does the deep subsurface harbor primitive life processes today? Has the subsurface acted as refuge during extinctions. What "signs of subsurface life" should we search for on Mars? Is there dark life as we don't know it? Does unique biochemistry, e.g. non-nucleic acid based, and molecular signatures exist in isolated subsurface niches? Requires systematic sampling at various depths Attention to contamination issues Long term observation in their own environment

B.Sadoulet DUSEL seminar 3/4/05 25 Answers require DUSEL (1) Very Deep: 6000 mwe (meters water equivalent, about the same as feet of rock): –Double beta decay –Solar neutrinos –Dark matter detectors (may be 4000 mwe) -Construction technology for deep waste sequestration -Monitor and relate surface deformations and stresses to their subsurface counterparts. –Determine processes controlling maximum depth of subsurface biosphere and perhaps discover life not as we know it. –Access to high ambient temperature and stress similar to seismogenic zone for in situ HTCMB experiments. + Intermediate depths: automatic –Some solar neutrinos –Radioactive screening/prototyping –Fabrication+ Assembly area –Construction technology for modest depth applications –Monitor and relate surface deformations and stresses to their subsurface counterparts.

B.Sadoulet DUSEL seminar 3/4/05 26 Answers require DUSEL (2) Very Large Caverns (1,000,000 m 3 ) at mwe –Proton decay –Long-baseline neutrino physics (  13, masses, CP) - 3D +time monitoring of deformation at space and time scale intermediate between bench-tops and tectonic plates. Very Large Block Experiments: (100x100x100 m 3 ) spanning the whole depth range –HTCMB experiments under in situ conditions in pristine environment over multiple correlation lengths with mass and energy balance. –‘See’ real-time interaction of HTCMB processes using geophysical and computational advances and MINE–BACK to validate imaging. –Perform sequestration studies and observe interaction with surface bio-, hydro- and atmosphere

B.Sadoulet DUSEL seminar 3/4/05 27 Exciting Science and Engineering Compelling questions: A snap shot Neutrinos, Dark Matter, Stability of Matter The Ever Changing Earth: Fundamental Processes and Tectonics Transparent Earth, Mastery of the Rock, Resources The exploration of subsurface biosphere: limits, metabolism, role in geological processes New questions on origins, evolution and biochemistry diversity Multidisciplinary Not just a juxtaposition for political convenience Clarity about differences: e.g. earth scientists prefer variety of sites including hard rock and sedimentary if possible ≠ physicists Learning how to live together: e.g. tracers in water used for exploratory drilling, rock deformation laboratories far from observatories Overlap of questions: between fields and between fundamental and applied Multidisciplinary approaches: e.g. geo-micro-biologists New Synergies Instrumentation of the rock prior to construction of physics cavities Low radioactivity methods, instrumentation, data acquisition Marvelous education and outreach opportunity Training of a new generation of multidiciplinary scientists and engineers Exciting the imagination of K-12 students (Bio+Earth+Physics+Astronomy) Involvement of local population (often Native Americans)

B.Sadoulet DUSEL seminar 3/4/05 28 Science-Methods-Applications Overlap is testimony of the richness of the field Opportunity for multiple advocacy NSF-DOE- Congress - Industry Experts-other scientists- Public at large Resources Origin Discovery Exploitation Transparent Earth Remote Characterization Surface-> subsurface Ever Changing Earth Fundamental processes Role of microbes Tectonics/Seismology

B.Sadoulet DUSEL seminar 3/4/05 29 International Aspects International Science and Engineering ! Not only in physics and astronomy But also: geo sciences (relationships with URL) geo-microbiology is a new frontier Strategic advantage of a U.S. DUSEL A premier facility on U.S. soil will more readily put U.S. teams at core of major projects attract the most exciting projects maximize impact on training of scientists and engineers + public However we should check our intuition that there is enough demand DUSEL complementary to other major U.S. initiatives e.g. Earth-Scope, Secure Earth An existing infrastructure could be a major asset in competition for proton decay/neutrino detector At same time, considerable flexibility available in implementation To conform with evolution of science, budget realities, and international Mega-Science coordination Excavate as we go (≠ Gran Sasso) Single site or multiple sites (in which case common management) Modules which can be deployed independently (in time or space) e.g. Deep vs Large cavity