Thursday, May 15, 2008

Updated 16th May (twice): Sichuan Earthquake landslide images

I thought a thread showing some news images of landslides triggered by the Sichuan earthquake would be useful. The first image shows vividly the likely impact of landslides in this area.

AP photo entitled "Buildings are destroyed by landslides following Monday's powerful magnitude 7.9 earthquake in Beichuan in Mianyang city in southwest China's Sichuan Province Tuesday, May 13, 2008. A signboard atop the building at left reads: Beichuan Hotel"

Xinhua image entitled: An aerial photo taken on May 14 shows the road from Dujiangyan city to Wenchuan County in southwest China's Sichuan Province is destroyed by landslide caused by Monday's earthquake. The serious devastation of the road affected the transportation of rescue teams and relief materials to the disaster areas


Reuters image entitled: "A damaged highway is seen after an earthquake in Beichuan, Sichuan province May 13, 2008. "

Xinhua image entitled "An aerial view shows the earthquake-hit town of Yingxiu in Wenchuan County, Sichuan province May 14, 2008"

Reuters image entitled "Vehicles are stranded on an earthquake-affected highway linking Dujiangyan to Wenchuan, May 15, 2008. China poured more troops into the earthquake-ravaged province of Sichuan on Wednesday to speed up the search for survivors as time ran out for thousands of people buried under rubble and mud."

Reuters image entitled "Vehicles are stranded on an earthquake-affected highway linking Dujiangyan to Wenchuan May 14, 2008."

Reuters image entitled "Soldiers use explosives to clear a road leading to an earthquake-hit village in Dujiangyan, Sichuan province, May 14, 2008."

Xinhua image entitled "a volunteer helps a woman walking out of the earthquake-stricken area in Mianzhu city of southwest China's Sichuan Province, Wednesday, May 14, 2008."

Xinhua image entitled "A soldier from the People's Liberation Army makes his way to the quake-stricken Yingxiu town of Wenchuan county, Sichuan province, May 14, 2008"

Reuters image entitled: "A general view shows the earthquake-hit Beichuan county, about 160 km (99 miles) northeast of the epicenter of Wenchuan county, Sichuan province, May 14, 2008."

Reuters / Stringer image entitled "A local resident walks among the debris of collapsed buildings at the earthquake-hit Beichuan county, about 160 km (99 miles) northeast of the epicentre of Wenchuan county, Sichuan province, May 14, 2008."

Reuters image entitled "A view of the earthquake-affected Beichuan county, Sichuan province, May 13, 2008."

The Dorset landslide revisited

It is now sensible to revisit the 7th May Dorset landslide, upon which I blogged here. Now, eight days on, it is clear that there was a slight media over-reaction to this event, probably spurred by reported comments that this was the largest failure for a century. It wasn't.

The image below from the BBC, clearly shows what actually happened. A section of cliff has collapse from the Blue Lias at the front of the landslide complex. The failure is wide but does not propagate very far inland. This is much smaller than other recent movements on this landslide complex, albeit visually dramatic from the beach. It is true that if there had been people on the beach at the time the consequences could have been serious. However, there weren't, meaning that this is not a really significant event.


John Lock has very kindly provided two images from the Lyme Regis side, which I reproduce below. The first shows the site of the landslide before the failure, taken from the Lyme Regis side, the second shows the same site afterwards.

Of course, the interesting factors here are:
1. The way in which the media provide misleading impressions of what actually happened; and
2. The potential implications for stability upslope given the loss of the toe of this part of the complex. I am sure that the local authority will now be pretty active in assessing the latter.

Wednesday, May 14, 2008

Sichuan landslide problems - the seasonal issue

To illustrate the problems with landslides that the Chinese authorities now face, I have plotted the occurrence of rainfall induced landslides in Sichuan for 2005, 2006 and 2007 by month, using data from the Durham University landslide database. We know that the occurrence of landslides increases dramatically after large earthquakes, especially in the rainy season. Figure 1 shows that landslides in Sichuan occur in the period May to September .

Figure 1: Monthly occurrence of fatalities from landslides in Sichuan, as recorded in the Durham University Landslide Database. (Click on the graph for a better view)

The picture is clear - the occurrence of rainfall induced landslides begins in May and lasts through to October, with the peak occurring in July. In fact, with the exception of a single event in March, the earliest fatal landslide in this period occurred on 20th May.

The implications for the earthquake affected areas are very clear - assuming that the rains do occur as per usual (and there is no reason to believe that they won't), landslides are going to be a very serious problem in the coming months.

Tuesday, May 13, 2008

Weather in the earthquake affected areas

It is now clear that very substantial numbers of landslides have been triggered by the earthquake in China. Continued landslide activity will be a very major problem during periods of heavy rain. Unfortunately the forecast is not good for the next few days. Xinhua reports:

"Three rains are forecast to sweep earthquake-hit southwest China's Sichuan, southern part of Gansu and Shannxi provinces and Chongqing Municipality in the next seven days, said the China Meteorological Administration on Tuesday. Light and moderate rain would hit much of the regions on Tuesday and Wednesday. The southern part of Sichuan jolted severely in the earthquake measuring 7.8 on the Richter scale Monday was likely to see heavy rainfalls and even thunderstorms, possibly increasing difficulties of the disaster relief work, said the national meteorological observatory. The latest weather report added that another two moderate showers were forecast in the regions on Saturday and next Monday. Yang Guiming, chief forecaster of the Central Meteorological Station (CMS) warned that lingering rains and thunderstorms may trigger geological disasters like landslides as rocks and the earth were pretty loose after the earthquake."

This is supported by the forecast from the National Meteorological Agency for Tuesday:

Chengdu
Thundershower
SoftBreeze 3mph
75°F
Moderate rain
SoftBreeze 3mph
61°F

Unfortunately, thunderstorms are bad for landslides. This area of wet weather is quite clear on this satellite image, from Yahoo.

Monday, May 12, 2008

Landslides from the 12th May 2008 Sichuan Earthquake

12th May @ 07:27 UT: News reports this morning are suggesting that there has been a large, shallow earthquake in Sichuan Province, China. Initial estimates from the USGS are that this was a M = 7.5 (NB this has now been corrected to MW=7.9) event located at just 10 km, although clearly this will need updating. If so, it is reasonable to assume that this earthquake will have triggered large numbers of landslides as this is a very landslide-prone area. The Google Earth image below shows the earthquake affected region with the initial epicentre marked. The landscape is highly mountainous.

Fig. 1: Google Earth image of the earthquake-affected area showing the location of the epicentre. If the earthquake is shallow and large, as initial indications suggest, then the number of landslides triggered in this region is likely to be very large.

The image in Fig. 2 shows the population density of China, based upon the GPW dataset available here. The black circle indicates the approximate location of the earthquake. It appears that this is a quite densely inhabited area. If the initial reports on this earthquake are correct then its impact could be fearsome.


Fig. 2: GPW map of the population density of China. The black circle indicates the area affected by the earthquake. The population density is clearly high in this region

Update 1 08:06: Inevitably there is not much news as yet, but the reports are now confirming that the magnitude is about M = 7.5. For info, the map below (Fig 3) shows the fatal landslides that we recorded in 2007 in China and its environs (Note not the landslides from this earthquake). I post this map to show how Chinese landslides are focused on the area affected by this earthquake, which suggests that landslides will have been a significant impact this time as well.

Fig. 3: Map of fatal landslides recorded in 2007 in China. Note the concentration of landslides in the epicentral zone of this earthquake, suggesting that many landslides will have been triggered by this event.

Update 2 11:40: It is now becoming apparent that this is a very substantial event, with large numbers of fatalities. Given the size (MW=7.8) and depth (10 km), the number of landslides is likely to be large. For info, the area affected by landslides can be estimated using the classic graphs compiled by Dave Keefer back in the 1980's. Figure 4 (taken from my lecture notes) shows the empirical relationship between earthquake magnitude and area affected by landslides. Given the mountainous terrain and the sensitivity of the environment to landslides, plus the shallowness of the source, it is likely that this will be at the upper boundary of the curve - i.e. that the area affected will exceed 50,000 square kilometres.

Fig. 4: Keefer (1984) graph of the relationship between earthquake magnitude and area affected by landslides. The graph indicates the likely area affected by landslides in this earthquake.

The graph in Fig.5, also from Keefer (1984), indicates how far from the epicentral zone landslides are likely to occur. For an earthquake of this magnitude this can be several hundreds of kilometres.

Fig. 5: Keefer (1984) graph of the relationship between earthquake magnitude and maximum distance to landslides that it triggered. The graph indicates that some landslides may have occurred over 200 km from the epicentre

Finally, the photograph in Fig. 6 shows landslides triggered by the 2005 Kashmir earthquake in Pakistan, which is an area of similar topography and level of development. The impact of these landslides was catastrophic. Note that the response should consider two elements:
1. Substantial numbers of people may have been buried in the landslides;
2. The landslides will impose a substantial constraint on the delivery of aid as they will have seriously damaged the transport infrastructure.
The fact that it is raining in the earthquake affected area makes this problem worse, especially as the wet season is only weeks away. This means that there will be a need to mobilise helicopters into the affected area as soon as possible.
There are more images of landslides associated with the Kashmir earthquake available here and here.


Fig. 6: Landslides triggered by the 2005 Kashmir earthquake. A similar level of landslides is likely in this earthquake.

Update 3 20:10: It is now becoming apparent that landslides are indeed a major issue in the earthquake affected areas. For example, Xinhua is reporting that:

"Monday's strong earthquake in southwest China's Sichuan Province have caused multiple landslides and collapses along railway lines near the provincial capital Chengdu, leaving 180 trains stranded on the rails. Thirty-one passenger and 149 cargo trains were stranded on the Baoji-Chengdu line, the Chengdu-Kunming line, the Chengdu-Chongqing line and their branch lines linking Chengdu with the rest of the country. At least 15 cases of landslides and collapses had so far been reported along rail tracks, with 34 railway stations on the Baoji-Chengdu Railway losing power supplies due to the earthquake, Wang Yongping, spokesman of the Ministry of Railways said Monday night."

I suspect that we have not seen any indication yet of the level of destruction in the upland areas around the epicentre, where the landslides are likely to have been triggered. Expect the death toll to increase significantly as information from these regions emerges.





Saturday, May 10, 2008

Landslide sizes (numbers killed) around the world

One of the interesting aspects of our landslide fatality database is that it is possible to produce maps of the size of the impact of landslides (which in this case means the numbers of people killed) in each event around the world. I tried to do that for my EGU presentation, but my colleague Nick Rosser has produced a rather more attractive version (Fig. 1) showing the 2007 dataset.

Fig 1: Map of the size of the impact of landslides, as measured by the number of fatalities in each event, for 2007. Click on the map to open a larger version.

The variation in size is quite interesting. Note that in Europe, N. America and Japan the recorded landslides tend to be comparatively small, almost always resulting in less than five fatalities. South Asia and Central America on the other hand have a scatter of landslide sizes from small events through to the very large. China also has a high frequency of large landslides, but appears to have comparatively few small ones. Africa has surprisingly few recorded fatal landslides, but those that do occur tend to be quite large.

So what to make of this? Well, first and foremost it shows the different levels of mitigation of landslides around the world. In the more developed world (i.e. Europe and N. America), large landslides tend to be very well mitigated (i.e. engineering measures have been used to stabilise them). The few fatal landslides that do occur tend to be small and in fairly remote locations, resulting in low fatality counts. On the other hand, in South and South-East Asia, mitigation is much less likely and there is a high density of people in affected areas, meaning that fatality counts are much higher. There might also be an effect of the both the tectonic setting (i.e. the high mountains of S. Asia in particular might mean that the fatal landslides are larger) and the climate (i.e. torrential monsoon rainfall might tend to trigger very energetic landslides, which are more likely to kill, perhaps). Finally, the data also perhaps show that the current database still misses smaller landslide events in China and in particular in Africa. We are trying to improve this situation.

As ever your comments are really welcome.

Wednesday, May 7, 2008

Black Ven landslide in Dorset

NOTE: see follow-up blog here, outlining why this landslide is not as large or significant as was initially reported.

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Update:
ITV have a low res video of the landslide site here. This confirms the general location and shows that the failure is indeed large.
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Update 2: The BBC now have some good aerial footage of the landslide here. It is slightly intriguing as it appears that the slide is wide but not very long. From a preliminary view there should be real concern about what might happen here in the next heavy rainfall event.
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Update 3: Based upon the BBC footage, the failure area appears to be the lower part of the slope highlighted by the red box on Fig. 3 below. The landslide appears to be a 400 m wide section of this lower cliff, extending about 100 m inland. This is a really intriguing development. It will be interesting to see how the sections upslope now behave as they have lost their toe support. This will be a fascinating landslide to watch over the next few months. I suspect that we have not seen the last movement at this site as yet.
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Original text:
Timed to perfection to coincide with the launch of the Durham University Institute of Hazard and Risk Research tomorrow, news reports indicate that there as another major landslide in the UK overnight. This time the failure occurred on the well-known Black Ven landslide system in Dorset, the site of a great deal of landslide research over the last few years.

Black Ven is shown by the arrow on the Google Earth image to the left, located on the south coast of England, just east of the town of Lyme Regis in Dorset. It is a big, active landslide complex consisting of an upper section in a glauconitic sandstone known as Foxmould. The lower part consists mainly of a series of shales and marls with thin limestone bands that form benches in the landscape. This is quite well shown in the cross section in Fig. 1 (Koh 1992). NB Click on any image for a better view.

Figure 1: Indicative cross section of Black Ven landslide in Dorset, showing the permeable sandstones of the Foxmould overlying the impermeable shales and marls (Koh 1992). NB Click on any image for a better view.

The landslide is clearly shown in the picture from the 1980's shown in Fig. 2 (Brunsden et al. 1988). The yellow rocks at the top is the Foxmould, and the grey rocks lower down are the shales. The landslide usually activates because of a deep seated rotational failure in the Foxmould. The rotated blocks then break-down over time to form flows that cross the benches below, eventually flowing out into the sea.

Figure 2: Photograph of Black Ven landslide in Dorset, showing the permeable yellow sandstones of the Foxmould overlying the impermeable shales and marls (Brunsden et al. 1988). Rotational failures in the Foxmold transition to flows that run across the lower benches. NB Click on any image for a better view.

The reports suggest that the landslide occurred in the area known as the Spittles, although I have yet to see any pictures to confirm this. Koh et al. (1992) indicated the location of the Spittles on the sketch map of the landslide shown to the left. This is just to the left of the landslides shown in the photograph in Fig. 2. This is an area that has been showing very considerable slope distress for many years, with lots of evidence of deformation as the toe of the landslide slips away. This area is quite clear on the Google Earth Imagery in Fig. 3 - I have put a faint red box around the general area usually known as the Spittles. Zooming into the upper part of the area delineated in red, the Google Earth image very clearly shows the active deformation that has characterised this zone for a while, with abundant evidence of tension cracks and small scarps (Fig. 4). These have been developing over a long period, so failure should not be a surprise. The landslide is large - the BBC report that it is about 400 m, which appears to be the width. If so this is a notable failure.

Figure 3: Google Earth image of the Black Ven landslide. The red area highlights the zone known as the Spittles, which appears to be the area that has failed in early May 2008. Update: The BBC film footage suggests that the failure has occurred in the lower left side (i.e. SE corner) of this box. NB Click on any image for a better view.

Figure 4: Google Earth image of the Black Ven landslide zoomed in on the upper part of the Spittles. Note the multiple tension cracks and scarps indicating that failure was likely. NB Click on any image for a better view.

The timing of the failure is quite interesting - it appears that the UK experiencing an exceptional level of landslide activity at the moment (e.g. Cayton Bay). Interestingly, amateur weather stations do not suggest that the weather of late has been exceptionally wet in this area - for example, an amateur station just along the coast at Dawlish suggests that the rainfall total in April was 64.6 mm, which is lower than the totals for both 2006 and 2007. The first few days of May have been essentially dry. The only notable rainfall event of late occurred on 29th April, when 18.5 mm of rain fell. Although high, this is not really exceptional. Rainfall in 2007 was recorded as 916 mm against a long term average of 850 mm (i.e. about 8% above the mean value), but this was below average for the last four months of the year. This pattern continued in January and February 2008. What is interesting is that March was unusually wet (103.5 mm against an average value of 68.1 mm - i.e. 93% above the long term average). I assume that the movement we are seeing is a delayed response to this rainfall period.

I would really welcome any comments, especially from anyone near to the site. Please email me or leave a comment below.

References:
Koh, A. 1992. Black Ven. In Allison, R.J. The Coastal Landforms of West Dorset. Geologists Association, Essex, 67-79.
Brunsden, D., Gardner, R., Goudie, A. and Jones, D. 1988. Land Shapes. Channel 4.