A Drop-In Concept for Deep Borehole Canister Emplacement

Disposal of high-level nuclear waste in deep boreholes drilled into crystalline bedrock (i.e., “granite”) is an interesting repository alternative of long standing. Work at MIT over the past two decades, and more recently in collaboration with the Sandia National Laboratory, has examined a broad...

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Main Authors: Bates, Ethan A., Buongiorno, Jacopo, Driscoll, Michael J.
Other Authors: Massachusetts Institute of Technology. Nuclear Fuel Cycle Program
Format: Technical Report
Published: Massachusetts Institute of Technology. Center for Advanced Nuclear Energy Systems. Nuclear Fuel Cycle Program 2012
Online Access:http://hdl.handle.net/1721.1/75272
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author Bates, Ethan A.
Buongiorno, Jacopo
Driscoll, Michael J.
author2 Massachusetts Institute of Technology. Nuclear Fuel Cycle Program
author_facet Massachusetts Institute of Technology. Nuclear Fuel Cycle Program
Bates, Ethan A.
Buongiorno, Jacopo
Driscoll, Michael J.
author_sort Bates, Ethan A.
collection MIT
description Disposal of high-level nuclear waste in deep boreholes drilled into crystalline bedrock (i.e., “granite”) is an interesting repository alternative of long standing. Work at MIT over the past two decades, and more recently in collaboration with the Sandia National Laboratory, has examined a broad spectrum of design aspects associated with this approach. For emplacement, past reports suggest using steel cables to lower each canister into the borehole. This process would require many years to complete and precise control to safely lower the canisters thousands of meters. The current study evaluated a simple, rapid, “passive” procedure for emplacement of canisters in a deep borehole: free-fall release into a water-flooded borehole. The project involves both analytic modeling and 1/5th scale experiments on a laboratory mockup. Experiments showed good agreement and validated the model. Depending on the inputs used for the mass and dimensions of the full scale canister and the viscosity of water, the model predicted terminal velocities of 2.4-2.6 m/s (4.5-5.8 mph). Further experiments showed that this could be reduced by 50% by making the surface hydraulically rough. Based on these predictions and a structural analysis, there seems to be little risk of damage when a canister reaches the bottom of the borehole or impacts the stack of previously loaded canisters. For reference, dropping the canister in air from a height of only 0.3 m (1 ft) would result in an impact velocity of 2.44 m/s. Cost estimates for the conventional drill string based method were developed, and the drop-in method was concluded to reduce emplacement costs and time by a minimum of 70%, down to $700,000 per borehole. It is concluded that a simple drop-in procedure deserves serious consideration for adoption as a standard procedure for borehole loading.
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spelling mit-1721.1/752722019-04-12T20:31:24Z A Drop-In Concept for Deep Borehole Canister Emplacement Bates, Ethan A. Buongiorno, Jacopo Driscoll, Michael J. Massachusetts Institute of Technology. Nuclear Fuel Cycle Program Bates, Ethan A. Buongiorno, Jacopo Driscoll, Michael J. Disposal of high-level nuclear waste in deep boreholes drilled into crystalline bedrock (i.e., “granite”) is an interesting repository alternative of long standing. Work at MIT over the past two decades, and more recently in collaboration with the Sandia National Laboratory, has examined a broad spectrum of design aspects associated with this approach. For emplacement, past reports suggest using steel cables to lower each canister into the borehole. This process would require many years to complete and precise control to safely lower the canisters thousands of meters. The current study evaluated a simple, rapid, “passive” procedure for emplacement of canisters in a deep borehole: free-fall release into a water-flooded borehole. The project involves both analytic modeling and 1/5th scale experiments on a laboratory mockup. Experiments showed good agreement and validated the model. Depending on the inputs used for the mass and dimensions of the full scale canister and the viscosity of water, the model predicted terminal velocities of 2.4-2.6 m/s (4.5-5.8 mph). Further experiments showed that this could be reduced by 50% by making the surface hydraulically rough. Based on these predictions and a structural analysis, there seems to be little risk of damage when a canister reaches the bottom of the borehole or impacts the stack of previously loaded canisters. For reference, dropping the canister in air from a height of only 0.3 m (1 ft) would result in an impact velocity of 2.44 m/s. Cost estimates for the conventional drill string based method were developed, and the drop-in method was concluded to reduce emplacement costs and time by a minimum of 70%, down to $700,000 per borehole. It is concluded that a simple drop-in procedure deserves serious consideration for adoption as a standard procedure for borehole loading. Sandia National Laboratories 2012-12-06T16:34:34Z 2012-12-06T16:34:34Z 2011-06 Technical Report http://hdl.handle.net/1721.1/75272 MIT-NFC;TR-125 application/pdf Massachusetts Institute of Technology. Center for Advanced Nuclear Energy Systems. Nuclear Fuel Cycle Program
spellingShingle Bates, Ethan A.
Buongiorno, Jacopo
Driscoll, Michael J.
A Drop-In Concept for Deep Borehole Canister Emplacement
title A Drop-In Concept for Deep Borehole Canister Emplacement
title_full A Drop-In Concept for Deep Borehole Canister Emplacement
title_fullStr A Drop-In Concept for Deep Borehole Canister Emplacement
title_full_unstemmed A Drop-In Concept for Deep Borehole Canister Emplacement
title_short A Drop-In Concept for Deep Borehole Canister Emplacement
title_sort drop in concept for deep borehole canister emplacement
url http://hdl.handle.net/1721.1/75272
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