{"id":1007,"date":"2023-09-01T00:14:30","date_gmt":"2023-09-01T00:14:30","guid":{"rendered":"http:\/\/ccnr.thedev.ca\/?page_id=1007"},"modified":"2024-02-21T03:40:03","modified_gmt":"2024-02-21T03:40:03","slug":"nuclear-accidents-on-military-vessels-in-canadian-ports","status":"publish","type":"page","link":"https:\/\/wp.ccnr.org\/fr\/nuclear-accidents-on-military-vessels-in-canadian-ports\/","title":{"rendered":"NUCLEAR ACCIDENTS ON MILITARY VESSELS IN CANADIAN PORTS:"},"content":{"rendered":"<p>&nbsp;<\/p>\n<h2 style=\"text-align: center;\">NUCLEAR ACCIDENTS<br \/>\nON MILITARY VESSELS<br \/>\nIN CANADIAN PORTS:<\/h2>\n<p>&nbsp;<\/p>\n<h3 style=\"text-align: center;\">SITE-SPECIFIC ANALYSES FOR ESQUIMALT\/VICTORIA<\/h3>\n<h4><\/h4>\n<h4 style=\"text-align: center;\">by<\/h4>\n<p>&nbsp;<\/p>\n<h4 style=\"text-align: center;\">W. JACKSON DAVIS, Ph.D.<\/h4>\n<p>&nbsp;<\/p>\n<h6 style=\"text-align: center;\">Professor of Biology<br \/>\nNuclear Policy Program<br \/>\nAdlai Stevenson College<br \/>\nUniversity of California at Santa Cruz<br \/>\nSanta Cruz, California<br \/>\n95064 U.S.A<\/h6>\n<p>&nbsp;<\/p>\n<h6 style=\"text-align: center;\">15 October 1987<\/h6>\n<p>&nbsp;<\/p>\n<p style=\"text-align: center;\">[\u00a0<a href=\"http:\/\/ccnr.org\/news_briefs_39.html#5\">CANADIAN NAVY BASES FAIL<br \/>\nNUCLEAR EMERGENCY READINESS TESTS<\/a>\u00a0]<\/p>\n<p style=\"text-align: center;\">[\u00a0<a href=\"http:\/\/ccnr.org\/news_briefs_n.html\">NEWS STORIES ON NANOOSE EXPROPRIATION<\/a>\u00a0]<\/p>\n<p style=\"text-align: center;\">[\u00a0<a href=\"https:\/\/wp.ccnr.org\/ccnr-exhibits-filed-on-july-19-1999-at-the-nanoose-expropriation-hearings\/\">CCNR EXHIBITS FILED AT NANOOSE HEARINGS<\/a>\u00a0]<\/p>\n<p>&nbsp;<\/p>\n<blockquote><p><span style=\"font-size: large;\"><b>EXECUTIVE SUMMARY<\/b><\/span><\/p>\n<p>This paper reports a quantitative, site-specific analysis of two nuclear accident scenarios aboard military vessels in a Canadian port. Conventional methodology used by the\u00a0<small>U.S.<\/small>\u00a0Nuclear Regulatory Commission (<small>NRC<\/small>) to regulate the\u00a0<small>U.S.<\/small>\u00a0civilian nuclear industry is combined with generally conservative assumptions (that is, assumptions that tend to understate the likely impact of an accident) to evaluate the consequences of hypothetical nuclear accidents aboard military ships in the port of Esquimalt and the adjacent city of Victoria, British Columbia, Canada. The results are used as a basis for policy evaluations on the issue of port visits. The results also bear upon the proposed acquisition by the Canadian Armed Forces of\u00a0 10\u00a0 to\u00a0 12\u00a0 nuclear-powered submarines. Although this analysis has been undertaken for a\u00a0<small>U.S.<\/small>\u00a0military propulsion reactor, comparable effects would be anticipated from a similar accident entailing a British Trafalgar class or a French Rubis class submarine.<\/p>\n<p>The first accident scenario analyzed is incineration of a single nuclear warhead in a ship-board fire. Such an accident would produce a radioactive cloud containing plutonium-<small>239<\/small>\u00a0, which would be carried toward the northeast, directly over Esquimalt\/Victoria, by the most probable prevailing winds.<\/p>\n<p>&nbsp;<\/p>\n<ul>\n<li>The plutonium concentration in the cloud would exceed\u00a0<small>U.S.<\/small>\u00a0federal (<small>NRC<\/small>) limits for air contamination (<small>10 CFR 20<\/small>) by up to ten thousand times.<\/li>\n<li>Ground contamination from fallout would exceed\u00a0<small>U.S.<\/small>\u00a0federal (<small>NRC<\/small>) limits for unrestricted public use by up to one million times.<\/li>\n<li>Radiation exposure from inhalation of the plutonium would exceed\u00a0<small>U.S.<\/small>\u00a0federal limits for &#8220;routine&#8221; releases by up to one hundred thousand times.<\/li>\n<\/ul>\n<p><span style=\"font-size: large;\">Prompt fatalities have not been considered; instead casualties calculated here would take the form of latent cancer fatalities and genetic defects.<\/span><\/p>\n<ul>\n<li>Latent cancer fatalities incurred during the accident would range from\u00a0 15\u00a0 to \u00a03,413\u00a0 depending on thermal lofting, atmospheric stability and the radiation risk factor used, with<\/li>\n<li>an equal number of additional fatalities from severe genetic defects.<\/li>\n<\/ul>\n<p><span style=\"font-size: large;\">The greatest contamination would occur nearest the accident site, although both air and ground contamination would remain well above the\u00a0<small>NRC<\/small>\u00a0limits up to\u00a0 50\u00a0 kilometers from the accident site and beyond. Casualties would be concentrated within\u00a0 5\u00a0 kilometers of the accident, but could extend out to several tens of kilometers from the accident site. Under unfavorable meteorological conditions the effects of such an accident could be experienced as far away as Vancouver.<\/span><\/p>\n<p>The second accident scenario analyzed is a hypothetical nuclear-reactor accident aboard a ship berthed at Esquimalt. The core inventory of a\u00a0 100\u00a0 megawatt (thermal) naval propulsion reactor fueled by highly enriched uranium metal is derived from calculations on research reactor fuel performed with the\u00a0<small>ORIGEN<\/small>\u00a0computer code. Release fractions consistent with existing accident histories and radionuclide properties are assumed, and consequent releases to the atmosphere are calculated for\u00a0 15\u00a0 radionuclides comprising an estimated\u00a0 94.8\u00a0 to\u00a0 98.1\u00a0 percent of the projected health detriment for three exposure pathways (cloudshine, inhalation exposure and groundshine). Ingestion and resuspension pathways are ignored under the assumption of early evacuation and decontamination.<\/p>\n<p>Calculated downwind air concentrations of the radionuclides following a four hour propulsion reactor accident, as well as ground deposition, exceed the aforementioned federal\u00a0<small>U.S. NRC<\/small>\u00a0limits by hundreds to thousands of times. Prompt casualties are possible close to the accident but have not been considered here.<\/p>\n<p>&nbsp;<\/p>\n<ul>\n<li>Total latent cancer fatalities incurred during the accident range from\u00a0 2\u00a0 to\u00a0 422\u00a0, \u00a0depending on assumptions, and are concentrated in the first 5 kilometers from the accident site.<\/li>\n<li>An equal number of additional fatalities from severe genetic defects would be anticipated.<\/li>\n<li>Additional casualties incurred from 1 week of habitation of contaminated urban regions would range from\u00a0 69\u00a0 to\u00a0 636\u00a0 latent cancer fatalities, with an equal number of casualties from severe genetic defects, highlighting the need for immediate evacuation.<\/li>\n<li>Additional casualties incurred from 1 year of further habitation range from\u00a0 254\u00a0 to\u00a0 1,562\u00a0 latent cancer fatalities and an equal number of casualties from severe genetic defects.<\/li>\n<li>Additional casualties in each subsequent year would approximate\u00a0 250\u00a0 to\u00a0 1,500\u00a0 latent cancer fatalities initially, declining to half within approximately\u00a0 30\u00a0 years.<\/li>\n<\/ul>\n<p><span style=\"font-size: large;\">The high annual casualties from continued long-term habitation of the city indicate the need for decontamination prior to rehabitation.<\/span><\/p>\n<p>Although\u00a0<small>SHORT-TERM<\/small>\u00a0casualties under the generally conservative assumptions of this analysis are relatively low, both accidents modeled would cause from hundreds to thousands of\u00a0<small>LONG-TERM<\/small>\u00a0casualties unless the contaminated urban areas were both evacuated and decontaminated. Rapid evacuation would appear impossible in the absence of effective emergency response plans (see below). The most significant impact, however, could be economic.\u00a0<small>U.S.<\/small>\u00a0Government studies indicate that decontamination could cost tens of billions of\u00a0<small>U.S.<\/small>\u00a0dollars and take months to complete, during which time the local economy would be largely terminated. These cost estimates omit the on-site costs of clean-up, and they omit &#8220;indirect&#8221; losses from the termination of local economies and ripple effects on provincial and national economies. The ecological and economic impacts of such an accident on surrounding salt water bodies have not been considered here but could also be significant.<\/p>\n<p>The risk to the Canadian public from these accidents is the product of the\u00a0<small>CONSEQUENCES<\/small>\u00a0and\u00a0<small>PROBABILITY<\/small>\u00a0of the accident. Although the consequences can be estimated under idealized accident conditions as assumed above, the probability of each accident requires information that is not within the public domain. Such information includes the number of nuclear warheads aboard ships in port, the frequency and intensity of shipboard fires, the fire resistance of nuclear warheads, and the accident history and operating characteristics of naval propulsion reactors, In the absence of this is information, the probability of the accidents modeled cannot be calculated, and hence the risk associated with port visits or stationing of nuclear powered submarines cannot be assessed accurately.<\/p>\n<p>Emergency preparedness for a nuclear accident in Canadian ports is inadequate to cope with the scale of possible accidents analyzed here. Civilian regulatory bodies exercise no licensing nor oversight authority over the technical aspects of\u00a0<small>U.S.<\/small>\u00a0military reactors and weapons. Port visits by\u00a0<small>U.S.<\/small>\u00a0nuclear-powered or nuclear-capable vessels are conducted under the\u00a0<small>U.S.<\/small>\u00a0General Statement of Assurances (Appendix I). This document does not mention emergency preparedness, is ambiguous on the issues of liability\/compensation in the event of an accident, and omits any consideration of nuclear weapons accidents, even though such accidents have occurred and are featured in\u00a0<small>U.S.<\/small>\u00a0military emergency preparedness plans. Emergency preparedness for nuclear accidents is allocated to Canadian authorities, who have assigned such responsibility to the Department of National Defence (<small>DND<\/small>).\u00a0<small>DND<\/small>\u00a0emergency preparedness plans are not, however, in the public domain. Without public knowledge of emergency preparedness plans, it is therefore not clear how public participation in a time of actual emergency could be implemented.\u00a0<small>U.S.<\/small>\u00a0studies indicate that emergency preparedness is effective only when specific plans adequate to real emergencies are designed, publicized and exercised periodically.<\/p>\n<p>Publicly-available information on\u00a0<small>DND<\/small>\u00a0emergency procedures suggest:<\/p>\n<ol>\n<li>evacuation zones extend only to\u00a0 609\u00a0 meters from the accident site;<\/li>\n<li>Nuclear Emergency Response Teams (<small>NERT<\/small>s) are responsible for seeking information about the type of hazard and containing any radioactive material released; and<\/li>\n<li>responding to nuclear weapons accidents is not a part of\u00a0<small>NERT<\/small>\u00a0planning.<\/li>\n<\/ol>\n<p><span style=\"font-size: large;\">These emergency procedures are ineffectual in that:<\/span><\/p>\n<ol>\n<li>contamination and casualty zones could extend to several kilometers from the accident site, as demonstrated in the present analysis, rendering a\u00a0 609\u00a0 meter evacuation zone meaningless;<\/li>\n<li>the\u00a0<small>U.S.<\/small>\u00a0General Statement of Assurances explicitly prohibits the boarding of\u00a0<small>U.S.<\/small>\u00a0military vessels for the purpose of obtaining technical information, and<\/li>\n<li><small>U.S.<\/small>\u00a0Department of Defence directive\u00a0\u00a0<small>5230.16<\/small>\u00a0 permits concealing nuclear weapons accidents when they occur.<\/li>\n<\/ol>\n<p><span style=\"font-size: large;\">It is not clear, therefore, how\u00a0<small>NERT<\/small>s could identify, let alone contain, nuclear materials released in an accident. Indeed\u00a0<small>NERT<\/small>s are not alerted by visits of nuclear-capable vessels, and are not situated in several ports visited by such vessels.<\/span>The findings of this report provide a technical basis for seven policy recommendations. The principle recommendation is:<\/p>\n<ul>1) Prospective costs and benefits of port visits by nuclear capable and nuclear propelled warships, as well as those associated with the acquisition of nuclear powered submarines, deserve careful weighing, incorporating quantitative assessments of possible costs of accident scenarios such as those reported here.<\/ul>\n<p><span style=\"font-size: large;\">If the Canadian public and government decide nonetheless to proceed with port visits and\/or acquisition of nuclear powered submarines, a number of additional recommendations follow. These are:<\/span><\/p>\n<ul>\n<li style=\"list-style-type: none;\">\n<ul>\n<li style=\"list-style-type: none;\">\n<ul>2) Emergency evacuation ought to be extended to at least\u00a0 5\u00a0 kilometers from the accident site for densely populated urban areas such as Esquimalt\/Victoria;<\/ul>\n<\/li>\n<\/ul>\n<\/li>\n<\/ul>\n<p style=\"padding-left: 80px;\">3) Evacuation plans should be established, coordinated and rehearsed periodically;<\/p>\n<p style=\"padding-left: 80px;\">4) Decontamination plans in the event of an accident should likewise be formulated;<\/p>\n<p style=\"padding-left: 80px;\">5) The data needed to ascertain empirically the probability of nuclear accidents should be obtained from the\u00a0<small>U.S.<\/small>\u00a0military so that the risk to the Canadian public can be estimated as closely as possible;<\/p>\n<p style=\"padding-left: 80px;\">6) Detailed liability and indemnity regimes in the event of an accident should be negotiated in advance;<\/p>\n<p style=\"padding-left: 80px;\">7) Existing emergency response institutions, procedures and documents should be evaluated in light of accident analyses such as the present one.<\/p>\n<hr noshade=\"noshade\" \/>\n<p>&nbsp;<\/p>\n<p><center>[<a href=\"http:\/\/ccnr.org\/Gentilly_Safety.htmlhttps:\/\/wp.ccnr.org\/accident-possibilities-at-gentilly-2-and-other-candu-reactors\/\">\u00a0Accident Possibilities at Gentilly-2<\/a>\u00a0]<\/center><center>[<a href=\"https:\/\/wp.ccnr.org\/findings-on-candu-reactor-accidents-verbatim-quotations-from-official-documents\/\">\u00a0Findings on CANDU Safety<\/a>\u00a0]<\/center>&nbsp;<\/p>\n<p>&nbsp;<\/p><\/blockquote>\n","protected":false},"excerpt":{"rendered":"<p>&nbsp; NUCLEAR ACCIDENTS ON MILITARY VESSELS IN CANADIAN PORTS: &nbsp; SITE-SPECIFIC ANALYSES FOR ESQUIMALT\/VICTORIA by &nbsp; W. JACKSON DAVIS, Ph.D. &nbsp; Professor of Biology Nuclear Policy Program Adlai Stevenson College University of California at Santa Cruz Santa Cruz, California 95064 U.S.A &nbsp; 15 October 1987 &nbsp; [\u00a0CANADIAN NAVY BASES FAIL NUCLEAR EMERGENCY READINESS TESTS\u00a0] [\u00a0NEWS &hellip;<\/p>\n<p class=\"read-more\"> <a class=\"\" href=\"https:\/\/wp.ccnr.org\/fr\/nuclear-accidents-on-military-vessels-in-canadian-ports\/\"> <span class=\"screen-reader-text\">NUCLEAR ACCIDENTS ON MILITARY VESSELS IN CANADIAN PORTS:<\/span> Lire la suite\u00a0\u00bb<\/a><\/p>\n","protected":false},"author":1,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"site-sidebar-layout":"default","site-content-layout":"default","ast-global-header-display":"","ast-banner-title-visibility":"","ast-main-header-display":"","ast-hfb-above-header-display":"","ast-hfb-below-header-display":"","ast-hfb-mobile-header-display":"","site-post-title":"disabled","ast-breadcrumbs-content":"","ast-featured-img":"","footer-sml-layout":"","theme-transparent-header-meta":"default","adv-header-id-meta":"","stick-header-meta":"","header-above-stick-meta":"","header-main-stick-meta":"","header-below-stick-meta":"","footnotes":""},"categories":[],"tags":[],"class_list":["post-1007","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/pages\/1007","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/comments?post=1007"}],"version-history":[{"count":8,"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/pages\/1007\/revisions"}],"predecessor-version":[{"id":2952,"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/pages\/1007\/revisions\/2952"}],"wp:attachment":[{"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/media?parent=1007"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/categories?post=1007"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/wp.ccnr.org\/fr\/wp-json\/wp\/v2\/tags?post=1007"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}