Showing posts with label research. Show all posts
Showing posts with label research. Show all posts

Wednesday, October 12, 2016

East Coast Expecting The Sixth Seal (Revelation 6:12)

United States Fault Lines Map – Earthquakes could also happen in East Coast and in the Midwest Cites

Fault Lines US
[BestSyndication News] Earthquakes are always a concern out in Alaska and in California, as it is full of fault lines that are continually shifting. There are some fault lines that are overdue to shift, especially the California San Andres fault line that runs through the mountain ranges and close to Wrightwood. But did you know there is a United States Fault Lines Map that illustrates great potentials for earthquakes outside of our state?
New Madrid Fault Line
The New Madrid Fault Line has records of over 4000 earthquake reports since 1974. This fault line is also called the New Madrid Seismic Zone and has potential to devastate the states of Illinois, Indiana, Missouri, Arkansas, Kentucky, Tennessee, and Mississippi. The biggest part of the New Madrid Fault Line sits in Missouri.
We often forget that this Midwestern fault line is there, but in 1811-1812 there was a series of earthquakes that shook with estimated magnitudes of 8.1 – 8.3, with several aftershocks of 6.0 magnitudes. Since those big ones, the largest earthquake that this fault line produced was in a 6.6-magnitude quake that happened on October 31, 1895. It’s epicenter was in Charleston, Missouri.The damage from these earthquakes were extensive, and there has been recent speculation by the scientific community that believe that this fault line might be shutting down and moving elsewhere. In an issue of Nature, scientist believe the current seismic activity at the New Madrid Fault line is only aftershocks from the earthquake back in 1811 and 1812.
Ramapo Fault Line
San Andreas Fault Line
The last few years Southern California has been preparing for the next big one with government sponsored Earthquake Drills. Scientist are predicting that the next big one with a magnitude of a 7.0 or higher for this fault line will happen any time, it could be now or 10 years from now. They believe the areas that are going to be hit the hardest are going to be Palm Springs and a number of other cities in San Bernardino, Riverside and Imperial counties in California, and Mexicali municipality in Baja California.
To learn more about earthquakes you can visit http://earthquake.usgs.gov/learn/

Saturday, October 8, 2016

Columbia University Warns Of Sixth Seal (Revelation 6:12)

New-York-Destroyed-300x224
A study by a group of prominent seismologists suggests that a pattern of subtle but active faults makes the risk of earthquakes to the New York City area substantially greater than formerly believed. Among other things, they say that the controversial Indian Point nuclear power plants, 24 miles north of the city, sit astride the previously unidentified intersection of two active seismic zones. The paper appears in the current issue of the Bulletin of the Seismological Society of America.
Many faults and a few mostly modest quakes have long been known around New York City, but the research casts them in a new light. The scientists say the insight comes from sophisticated analysis of past quakes, plus 34 years of new data on tremors, most of them perceptible only by modern seismic instruments. The evidence charts unseen but potentially powerful structures whose layout and dynamics are only now coming clearer, say the scientists. All are based at Columbia University’s Lamont-Doherty Earth Observatory, which runs the network of seismometers that monitors most of the northeastern United States.
Lead author Lynn R. Sykes said the data show that large quakes are infrequent around New York compared to more active areas like California and Japan, but that the risk is high, because of the overwhelming concentration of people and infrastructure. “The research raises the perception both of how common these events are, and, specifically, where they may occur,” he said. “It’s an extremely populated area with very large assets.” Sykes, who has studied the region for four decades, is known for his early role in establishing the global theory of plate tectonics.
The authors compiled a catalog of all 383 known earthquakes from 1677 to 2007 in a 15,000-square-mile area around New York City. Coauthor John Armbruster estimated sizes and locations of dozens of events before 1930 by combing newspaper accounts and other records. The researchers say magnitude 5 quakes—strong enough to cause damage–occurred in 1737, 1783 and 1884. There was little settlement around to be hurt by the first two quakes, whose locations are vague due to a lack of good accounts; but the last, thought to be centered under the seabed somewhere between Brooklyn and Sandy Hook, toppled chimneys across the city and New Jersey, and panicked bathers at Coney Island. Based on this, the researchers say such quakes should be routinely expected, on average, about every 100 years. “Today, with so many more buildings and people, a magnitude 5 centered below the city would be extremely attention-getting,” said Armbruster. “We’d see billions in damage, with some brick buildings falling. People would probably be killed.”
Starting in the early 1970s Lamont began collecting data on quakes from dozens of newly deployed seismometers; these have revealed further potential, including distinct zones where earthquakes concentrate, and where larger ones could come. The Lamont network, now led by coauthor Won-Young Kim, has located hundreds of small events, including a magnitude 3 every few years, which can be felt by people at the surface, but is unlikely to cause damage. These small quakes tend to cluster along a series of small, old faults in harder rocks across the region. Many of the faults were discovered decades ago when subways, water tunnels and other excavations intersected them, but conventional wisdom said they were inactive remnants of continental collisions and rifting hundreds of millions of years ago. The results clearly show that they are active, and quite capable of generating damaging quakes, said Sykes.
One major previously known feature, the Ramapo Seismic Zone, runs from eastern Pennsylvania to the mid-Hudson Valley, passing within a mile or two northwest of Indian Point. The researchers found that this system is not so much a single fracture as a braid of smaller ones, where quakes emanate from a set of still ill-defined faults. East and south of the Ramapo zone—and possibly more significant in terms of hazard–is a set of nearly parallel northwest-southeast faults. These include Manhattan’s 125th Street fault, which seems to have generated two small 1981 quakes, and could have been the source of the big 1737 quake; the Dyckman Street fault, which carried a magnitude 2 in 1989; the Mosholu Parkway fault; and the Dobbs Ferry fault in suburban Westchester, which generated the largest recent shock, a surprising magnitude 4.1, in 1985. Fortunately, it did no damage. Given the pattern, Sykes says the big 1884 quake may have hit on a yet-undetected member of this parallel family further south.
The researchers say that frequent small quakes occur in predictable ratios to larger ones, and so can be used to project a rough time scale for damaging events. Based on the lengths of the faults, the detected tremors, and calculations of how stresses build in the crust, the researchers say that magnitude 6 quakes, or even 7—respectively 10 and 100 times bigger than magnitude 5–are quite possible on the active faults they describe. They calculate that magnitude 6 quakes take place in the area about every 670 years, and sevens, every 3,400 years. The corresponding probabilities of occurrence in any 50-year period would be 7% and 1.5%. After less specific hints of these possibilities appeared in previous research, a 2003 analysis by The New York City Area Consortium for Earthquake Loss Mitigation put the cost of quakes this size in the metro New York area at $39 billion to $197 billion. A separate 2001 analysis for northern New Jersey’s Bergen County estimates that a magnitude 7 would destroy 14,000 buildings and damage 180,000 in that area alone. The researchers point out that no one knows when the last such events occurred, and say no one can predict when they next might come.
“We need to step backward from the simple old model, where you worry about one large, obvious fault, like they do in California,” said coauthor Leonardo Seeber. “The problem here comes from many subtle faults. We now see there is earthquake activity on them. Each one is small, but when you add them up, they are probably more dangerous than we thought. We need to take a very close look.” Seeber says that because the faults are mostly invisible at the surface and move infrequently, a big quake could easily hit one not yet identified. “The probability is not zero, and the damage could be great,” he said. “It could be like something out of a Greek myth.”
The researchers found concrete evidence for one significant previously unknown structure: an active seismic zone running at least 25 miles from Stamford, Conn., to the Hudson Valley town of Peekskill, N.Y., where it passes less than a mile north of the Indian Point nuclear power plant. The Stamford-Peekskill line stands out sharply on the researchers’ earthquake map, with small events clustered along its length, and to its immediate southwest. Just to the north, there are no quakes, indicating that it represents some kind of underground boundary. It is parallel to the other faults beginning at 125th Street, so the researchers believe it is a fault in the same family. Like the others, they say it is probably capable of producing at least a magnitude 6 quake. Furthermore, a mile or so on, it intersects the Ramapo seismic zone.
Sykes said the existence of the Stamford-Peekskill line had been suggested before, because the Hudson takes a sudden unexplained bend just ot the north of Indian Point, and definite traces of an old fault can be along the north side of the bend. The seismic evidence confirms it, he said. “Indian Point is situated at the intersection of the two most striking linear features marking the seismicity and also in the midst of a large population that is at risk in case of an accident,” says the paper. “This is clearly one of the least favorable sites in our study area from an earthquake hazard and risk perspective.”
The findings comes at a time when Entergy, the owner of Indian Point, is trying to relicense the two operating plants for an additional 20 years—a move being fought by surrounding communities and the New York State Attorney General. Last fall the attorney general, alerted to the then-unpublished Lamont data, told a Nuclear Regulatory Commission panel in a filing: “New data developed in the last 20 years disclose a substantially higher likelihood of significant earthquake activity in the vicinity of [Indian Point] that could exceed the earthquake design for the facility.” The state alleges that Entergy has not presented new data on earthquakes past 1979. However, in a little-noticed decision this July 31, the panel rejected the argument on procedural grounds. A source at the attorney general’s office said the state is considering its options.
The characteristics of New York’s geology and human footprint may increase the problem. Unlike in California, many New York quakes occur near the surface—in the upper mile or so—and they occur not in the broken-up, more malleable formations common where quakes are frequent, but rather in the extremely hard, rigid rocks underlying Manhattan and much of the lower Hudson Valley. Such rocks can build large stresses, then suddenly and efficiently transmit energy over long distances. “It’s like putting a hard rock in a vise,” said Seeber. “Nothing happens for a while. Then it goes with a bang.” Earthquake-resistant building codes were not introduced to New York City until 1995, and are not in effect at all in many other communities. Sinuous skyscrapers and bridges might get by with minimal damage, said Sykes, but many older, unreinforced three- to six-story brick buildings could crumble.
Art Lerner-Lam, associate director of Lamont for seismology, geology and tectonophysics, pointed out that the region’s major highways including the New York State Thruway, commuter and long-distance rail lines, and the main gas, oil and power transmission lines all cross the parallel active faults, making them particularly vulnerable to being cut. Lerner-Lam, who was not involved in the research, said that the identification of the seismic line near Indian Point “is a major substantiation of a feature that bears on the long-term earthquake risk of the northeastern United States.” He called for policymakers to develop more information on the region’s vulnerability, to take a closer look at land use and development, and to make investments to strengthen critical infrastructure.
“This is a landmark study in many ways,” said Lerner-Lam. “It gives us the best possible evidence that we have an earthquake hazard here that should be a factor in any planning decision. It crystallizes the argument that this hazard is not random. There is a structure to the location and timing of the earthquakes. This enables us to contemplate risk in an entirely different way. And since we are able to do that, we should be required to do that.”
New York Earthquake Briefs and Quotes:
Existing U.S. Geological Survey seismic hazard maps show New York City as facing more hazard than many other eastern U.S. areas. Three areas are somewhat more active—northernmost New York State, New Hampshire and South Carolina—but they have much lower populations and fewer structures. The wider forces at work include pressure exerted from continuing expansion of the mid-Atlantic Ridge thousands of miles to the east; slow westward migration of the North American continent; and the area’s intricate labyrinth of old faults, sutures and zones of weakness caused by past collisions and rifting.
Due to New York’s past history, population density and fragile, interdependent infrastructure, a 2001 analysis by the Federal Emergency Management Agency ranks it the 11th most at-risk U.S. city for earthquake damage. Among those ahead: Los Angeles, San Francisco, Seattle and Portland. Behind: Salt Lake City, Sacramento, Anchorage.
New York’s first seismic station was set up at Fordham University in the 1920s. Lamont-Doherty Earth Observatory, in Palisades, N.Y., has operated stations since 1949, and now coordinates a network of about 40.
Dozens of small quakes have been felt in the New York area. A Jan. 17, 2001 magnitude 2.4, centered in the Upper East Side—the first ever detected in Manhattan itself–may have originated on the 125th Street fault. Some people thought it was an explosion, but no one was harmed.
The most recent felt quake, a magnitude 2.1 on July 28, 2008, was centered near Milford, N.J. Houses shook and a woman at St. Edward’s Church said she felt the building rise up under her feet—but no damage was done.
Questions about the seismic safety of the Indian Point nuclear power plant, which lies amid a metropolitan area of more than 20 million people, were raised in previous scientific papers in 1978 and 1985.
Because the hard rocks under much of New York can build up a lot strain before breaking, researchers believe that modest faults as short as 1 to 10 kilometers can cause magnitude 5 or 6 quakes.
In general, magnitude 3 quakes occur about 10 times more often than magnitude fours; 100 times more than magnitude fives; and so on. This principle is called the Gutenberg-Richter relationship.

Friday, October 7, 2016

Ironically Earthquake Research In New York (Rev 6:12)

Nathan Benson, WGRZ
24 hours ago
BUFFALO, NY - Buffalo may not seem like an ideal place to research how to create buildings to survive earthquakes, but the research being done here can lead to applications that will keep buildings upright and bridges spanning when mother nature rumbles.
“I think the earthquake center are the best-kept secret in Western New York.” Director of MCEER Andrew Whittaker said.
The Multidisciplinary Center for Earthquake Engineering Research (MCEER) was funded by a national science foundation grant and built in 1986. It’s recognized in the industry as a national earthquake research center.
Right here in Buffalo, where earthquakes are rare.
The University at Buffalo was in a race with the University of California Berkeley to establish the center and The Western New York institution won the bid.
“A better proposal was written from the Buffalo group because other institutions were involved but also the State of New York was involved,” distinguished SUNY professor Michael Constantino said.
The state, led by then Governor Mario Cuomo, contributed $25 million to the project according to a 1986 LA Times article.
Since then, the center has been a worldwide leader in researching earthquake engineering. The big question that aims to be answered there is how to isolate seismic activity in a building, bridge or any structure that needs to stay standing during a quake?
“Not only do we intend to save lives but also protect the investment,” said Constantino.
Tests are conducted on a massive shake table that can fit a load of fifty tons. Scaled versions of bridges, transformers and buildings are built on the table and run through the gambit of tests.
On one particular day, a sliding bearing system developed by former UB students in California and spring loaded dampers developed by Taylor Devices in North Tonawanda are being tested.
“This is a scaled down version, weighs about 35 tons," explained Constantino, "this is an isolation system that will provide significant reductions in acceleration response.”
Often times the public doesn’t understand the value in research and how it impacts everyday life. But the engineering breakthroughs developed at the center for earthquake engineering has had a direct impact in saving lives. Even as recent as this summer.
“Following the earthquake in Ecuador, bridges were badly damaged," Whittaker said, "one bridge in the epicenter of the region survived the damage and that was built with sliding bearings that were developed by and large here in Buffalo.”
The companies spun off as a result of this research have been quite profitable
“My estimate after talking with Doug (Taylor) it seems to be a half billion dollars in sales,” said Constantino
Taylor Devices is a leading manufacturer of seismic dampening systems and based in North Tonawanda.
Whether it’s figuring out how build bridges faster and safer or ensuring new buildings don’t tumble when the earth rumbles, Buffalo is leading way in developing new ways to tame an untamable beast.
“If our technology prevents damage in an earthquake, we’ve done our job,” Whittaker said.

Saturday, January 2, 2016

Nuclear Winter Is Unavoidable (Revelation 8:10)

(updated 11:37 09.12.2014)
VIENNA, December 9 (Sputnik), Daria Chernyshova — In the event if a nuclear war breaks out in one region of the Earth, the entire planet would suffer grave consequences, characterized by falling temperatures, less precipitation and reduced sunlight, Mike Mills, a scientist at the US National Center for Atmospheric Research, told Sputnik Tuesday.
“Even if the nuclear war happened in one part of the planet – India and Pakistan – the whole globe would be affected by the temperatures dropping, precipitating dropping, sunlight dropping and also the amount of harmful ultra-violet would increase, because of the ozone layer,” Mills said on the sidelines of the Vienna Conference on the Humanitarian Impact of Nuclear Weapons.He described a scenario where after an initial explosion cities would be engulfed by giant firestorms, like those seen during World War II – in Tokyo and Hiroshima.
Heat from the sun would encourage smoke from the fires to rise up into the stratosphere, where the ozone layer is. Since weather features like rain do not occur this high up in the atmosphere, the smoke could not be simply washed away by rain, like it would lower down. Thus it could remain in the stratosphere for years, absorbing sunlight, preventing it from reaching the surface of the Earth. As a result, temperatures at the surface would drop and precipitation patterns would be affected. This in turn would have an impact on agriculture and ecosystems, leading to reductions in crop production, which in turn could give rise to a global famine.
Mills pointed out that as long as countries possess nuclear weapons, it is not a question if they will be used, but when.
“You know that governments change, and relations between countries can change; and as long as we possess the ability to annihilate each other and pose this catastrophic risk to the survival of our species and others on the planet, if we gave as long enough time, they would be used, eventually. Right now there is an increasing number of countries with nuclear weapons and that increases the risk of conflict between different nuclear armed states exponentially,” Mills told Sputnik urging to reverse that.
He stressed that nuclear powers are not doing enough to eliminate nuclear weapons. For instance, the new START treaty signed in 2010 between the United States and Russia, did not consider the climatic consequences of nuclear war. Mills pointed out the need to raise awareness about the risks of a nuclear winter, as in his view, greater awareness would put more pressure on governments to push for disarmament.“You really can’t ignore the impact on humanity of that kind of a war, and if someone were to say – well, we don’t care what happens to human beings after nuclear war, we have to question that kind of leadership whether it is coming from the military or diplomats,” Mills said adding that the well-being of society should be at the forefront of international leaders’ minds.
The Vienna Conference on the Humanitarian Impact of Nuclear Weapons is taking place on December 8-9 in Hofburg Palace in the Austrian capital. Its aim is to promote nuclear disarmament and nonproliferation. According to the conference’s organization committee,over 16,000 nuclear warheads still exist, many of which are on “high alert”.

Wednesday, December 10, 2014

Nuclear Winter Is Unavoidable (Revelation 8:10)

Global Fallout of Nuclear War Unavoidable: US Research Center

nuclear winter
 
(updated 11:37 09.12.2014)

Scientists from the US National Center for Atmospheric Research said even if a small scale nuclear war broke out in one region of the world, the entire planet would be at risk, as the planet would experience falling temperatures, less precipitation and reduced sunlight, among other grave consequences.

VIENNA, December 9 (Sputnik), Daria Chernyshova — In the event if a nuclear war breaks out in one region of the Earth, the entire planet would suffer grave consequences, characterized by falling temperatures, less precipitation and reduced sunlight, Mike Mills, a scientist at the US National Center for Atmospheric Research, told Sputnik Tuesday.

“Even if the nuclear war happened in one part of the planet – India and Pakistan – the whole globe would be affected by the temperatures dropping, precipitating dropping, sunlight dropping and also the amount of harmful ultra-violet would increase, because of the ozone layer,” Mills said on the sidelines of the Vienna Conference on the Humanitarian Impact of Nuclear Weapons.He described a scenario where after an initial explosion cities would be engulfed by giant firestorms, like those seen during World War II – in Tokyo and Hiroshima.

“And this would produce a tremendous amount of smoke. We looked at a scenario in which India and Pakistan each used 50 of the smallest nuclear weapons, the size used on Hiroshima – on each other’s cities. Researchers estimated this would produce about 6.5 million tons of smoke, black smoke that would absorb a lot of sunlight,” the atmospheric scientist said, citing results of his research.

Heat from the sun would encourage smoke from the fires to rise up into the stratosphere, where the ozone layer is. Since weather features like rain do not occur this high up in the atmosphere, the smoke could not be simply washed away by rain, like it would lower down. Thus it could remain in the stratosphere for years, absorbing sunlight, preventing it from reaching the surface of the Earth. As a result, temperatures at the surface would drop and precipitation patterns would be affected. This in turn would have an impact on agriculture and ecosystems, leading to reductions in crop production, which in turn could give rise to a global famine.

Mills pointed out that as long as countries possess nuclear weapons, it is not a question if they will be used, but when.

“You know that governments change, and relations between countries can change; and as long as we possess the ability to annihilate each other and pose this catastrophic risk to the survival of our species and others on the planet, if we gave as long enough time, they would be used, eventually. Right now there is an increasing number of countries with nuclear weapons and that increases the risk of conflict between different nuclear armed states exponentially,” Mills told Sputnik urging to reverse that.

He stressed that nuclear powers are not doing enough to eliminate nuclear weapons. For instance, the new START treaty signed in 2010 between the United States and Russia, did not consider the climatic consequences of nuclear war. Mills pointed out the need to raise awareness about the risks of a nuclear winter, as in his view, greater awareness would put more pressure on governments to push for disarmament.“You really can’t ignore the impact on humanity of that kind of a war, and if someone were to say – well, we don’t care what happens to human beings after nuclear war, we have to question that kind of leadership whether it is coming from the military or diplomats,” Mills said adding that the well-being of society should be at the forefront of international leaders’ minds.

The Vienna Conference on the Humanitarian Impact of Nuclear Weapons is taking place on December 8-9 in Hofburg Palace in the Austrian capital. Its aim is to promote nuclear disarmament and nonproliferation. According to the conference’s organization committee, over 16,000 nuclear warheads still exist, many of which are on “high alert”.

Friday, November 21, 2014

“Regional’ Nuclear Conflicts

Nuclear Weapons and Coercive Escalation in Regional Conflicts Lessons from North Korea and Pakistan

383173_iran-missile
Jerry Meyerle
With Contributions from Ken Gause and Afshon Ostovar
November 2014

Executive Summary

The proliferation of nuclear weapons and delivery systems threatens to restrict U.S. options in future conflicts. It may be increasingly difficult to act militarily without risking escalation to nuclear war. For relatively weak states facing threats of militaryaction by larger powers such as the United States, a key lesson from recent interventions is that nuclear weapons are the ultimate protection against defeat in war. Had Libya under Muammar Gaddafi or Iraq under Saddam Hussain had a credible nuclear deterrent, the United States and NATO might have thought twice before attempting to overthrow these regimes by force.

Because nuclear weapons appear to take major war and regime change off the table, they promise greater space for smaller powers to conduct proxy warfare, violent provocations, and even limited military operations at lower levels of escalation.These developments pose a dilemma for the world’s status quo powers: responding militarily could lead to escalation and the risk of nuclear war, but failing to do so could lead to a cascade of low-level coercion in the future.

Since acquiring nuclear weapons, North Korea and Pakistan – the two cases examined in this study – have engaged in coercive and violent provocations, calculating that their larger rivals would concede rather than risk escalation that could lead to nuclear use. Both are revisionist powers with nuclear weapons that face rivals with significantly greater conventional military capabilities. So far, the phenomenon of coercive escalation by nuclear powers appears to be largely confined to Pakistan and North Korea. Yet, it has the potential to become a wider problem if additional countries with revisionist aims – Iran, for example – acquire nuclear weapons. Policy-makers may need a mix of strong but proportionate military options designed to counter and deter offensive actions at lower levels of conflict while controlling follow-on escalation. This may require a more diverse array of usable conventional capabilities and greater attention to escalation control in military planning and concepts of operation.

This paper addresses recent research on nuclear weapons and coercion, develops testable hypotheses based on this literature, and explores these questions through analysis of North Korean and Pakistani nuclear capabilities, strategy, and doctrine,including the development of limited nuclear options by Pakistan. The paper also explores instances of coercive escalation by both countries – including torpedo and artillery strikes on South Korean forces in 2010, and limited ground incursions and terrorist attacks attributed to Pakistan in 1999 and 2001. The case studies end with a brief analysis of subsequent changes to South Korean and Indian military doctrines as a result of these events. The study concludes by identifying common themes across the two cases and drawing implications for U.S. policy and military strategy.

Findings

Our research suggests that escalatory provocations, such as those traced back to Pakistan in 1999 and 2001 and to North Korea in 2010, are not likely in the near future, but remain a real possibility in the longer term. Neither regime gained much from the crises that resulted from these attacks, which suggests that possession of nuclear weapons may not, in fact, lend coercive leverage to smaller powers, regardless of their apparent resolve to actually use nuclear weapons. South Korea and India appear more resolved than ever to resist attempts at coercion spurred by offensive actions that create the risk of nuclear conflict. In the more distant future, however, the potential for renewed provocations of similar or greater magnitude cannot be ruled out – particularly as the North Korean and Pakistani nuclear programs develop and cross key thresholds. Nuclear weapons have taken on an increasing role in the defense policies of both countries as their conventional capabilities have deteriorated in relative terms. Both countries continue to pursue revisionist aims through force and demonstrate a tendency towards nuclear brinkmanship. Though Pyongyang and Islamabad appear to have gained little from attempts at coercive escalation, there appear to be elements in both regimes who view violent provocations as a promising and viable option.

Evidence from crises on the Korean Peninsula and the Indian subcontinent suggest that attempts at low-level coercion can, at least to some extent, be deterred. Limited military responses by South Korea and India appear to have had some effect on the strategic calculus in Pyongyang and Islamabad. There have been no North Korean provocations on the scale of the 2010 attacks since South Korea’s forceful response to the shelling of its marines in November of that year. Pakistan has not attempted military action in Kashmir since being repulsed by Indian forces in 1999, and has taken some, if limited, action against the militant groups responsible for the 2001 attack on India’s Parliament following threats of military action by New Delhi. On the other hand, continued Pakistani tolerance of militant groups such as those responsible for the 2001 Parliament attack suggests that future crises sparked by violent provocations remain a real possibility.

Provocations directed against India and South Korea have driven both countries to set aside traditionally defensive military postures and pursue options for limited offensive action in the event of another attack, including employment of precision weapons. These measures appear to have had some deterrent effect on leaders in Pyongyang and Islamabad. At the same time, these trends, combined with the continued development of the Pakistani and North Korean nuclear programs, raise the potential that the next provocation could lead to inadvertent escalation, possibly resulting in limited nuclear use by Pakistan or North Korea. Pakistan’s pursuit of tactical nuclear weapons is of particular concern, as is the potential for North Korea to follow Pakistan’s path as its nuclear capabilities develop.

Implications for policy

As the United States has reduced the role of nuclear options in its defense strategy and relied increasingly on conventional weaponry, North Korea and Pakistan have moved in the opposite direction. Long-term shifts in the conventional balance across Asia appear to be driving these changes, which suggests that they are here to stay. While violent provocations resulting in potentially escalatory military crises may not be very likely in the short term, our research suggests that they could occur further down the road.

Policy-makers will need options that promise to counter acts of low-level coercion and deter future attempts. At the same time, they will need tools – military and diplomatic – aimed at controlling escalation and minimizing the risk of nuclear use. This will be important for extended deterrence as well, because allies and partners are the more likely victims of low-level coercion. Defending them will be important for continued U.S. influence in Asia. Forward-deployed conventional forces capable of calibrated responses to low-level attacks and other acts of coercion are likely to play a central role.

The United States may also be called upon to mediate in crises between nuclear powers sparked by provocative acts of violence. Such mediation might include efforts to rein in South Korean and Indian forces keen to respond militarily to provocations. Attacks where attribution is not clear will prove a considerable challenge for deterrence and escalation control. Covert operations that afford some measure of plausible deniability could make it difficult to justify a military response. Where the originator is truly unknown, retaliation could involve considerable risks of escalation.

The military crisis sparked by the 2001 attack on India’s Parliament indicated that a non-state group operating independently could provoke a war between nuclear powers. Despite the best efforts of policy-makers in Washington, there remains the possibility that a crisis sparked by a violent provocation will result in limited nuclear strikes by a smaller power facing the prospect of military defeat. Such an attack could be directed at U.S. or allied forces. Realistic options will be needed for such contingencies.

Against limited nuclear strikes, non-nuclear threats may be more credible under certain conditions, given the lower threshold for use of even the most destructive conventional weaponry. Contingencies involving non-strategic nuclear strikes – for example, using a low-yield nuclear warhead, particularly against a non-strategic target – fall into a grey area where the threat of a strategic nuclear response may not be credible, particularly over issues that are not of existential concern to U.S. decision-makers. If non-nuclear munitions are capable of achieving the right effects to end the conflict or deliver a disarming counterforce strike, threats of nuclear retaliation may not be necessary.

Military options

Military commanders may need a diverse array of usable conventional options, particularly at the lower ends of the warfare spectrum. When it comes to deterring low-level coercion, conventional capabilities will be essential, as nuclear threats are not likely to be credible against low-level attacks. The problems identified in this study suggest that commanders may need a variety of military options below the threshold of major combat operations, aimed at sending a message rather than disarming an adversary. These options would need to be proportionate, timely, precise, and calculated to signal both resolve and restraint. Capabilities that might enable such responses include tactically oriented unmanned platforms, conventional cruise missiles, special operations forces, and non-kinetic options such as cyber and electronic attack. Employing ground forces may not be advisable, given the risks of becoming tied down in a protracted conflict.

Attempts to deter small-scale attacks through limited military operations could involve considerable risk of escalation. Escalation control would need to be a central planning factor in the design and employment of military options, taking into account aspects of the target regime. Escalation control measures must be integrated into war plans and concepts of operation. Military commanders may need to allow adversary leaders a way out in a crisis in order to avoid trapping them in an escalatory spiral. In the event of a strike that could be perceived as a strategic threat, it may be advisable to signal that the attack is limited, through public statements, discreet diplomatic and military channels, and careful choice of targets, weapons, and flight paths.

Finally, U.S. forces may need credible options in the event that a crisis spirals out of control and results in a limited nuclear attack. In the face of a credible and impending threat of nuclear use, a disarming counterforce strike may be the only viable option short of capitulation. The ability to credibly threaten disarming preemptive strikes may also serve as a powerful deterrent against coercion by new nuclear powers.

These findings suggest a need for additional research into the dynamics of escalation at the lower ends of the warfare spectrum, including non-violent acts of coercion. Recent exploits by Russia in the Ukraine and China in the western Pacific threaten to chip away at U.S. power and influence unless effective responses can be developed. The development of tactical nuclear weapons by Russia and Pakistan also requires further study. In particular, more work is needed on the appropriate range of responses should U.S. or allied forces become the target of a non-strategic nuclear attack.