Kathmandu, August 26: A preliminary assessment indicates that the catastrophic destruction reported in northern Nepal on Wednesday was not caused by a conventional earthquake, but by a massive high-altitude ice-rock collapse in the Tibetan Himalaya north of Rasuwa, followed by an avalanche, river blockage and sudden release of a debris-laden flood, a US monitoring report said.
At approximately 8:37 am Nepal Standard Time (NPT), an exceptionally large mass of ice and rock is believed to have collapsed at an elevation of around 5,200 metres. Satellite evidence indicates that part of a glacier or its snout failed, with the collapsing mass undergoing an estimated 1,200-metre initial vertical fall.
The sudden movement generated seismic waves that were initially interpreted as an M4.4 earthquake. The United States Geological Survey (USGS) subsequently classified the event as an M5.2 landslide, pointing to the extraordinary scale and speed of the mass movement.
The collapsing ice-rock mass then transformed into a high-velocity avalanche that entered the Lhende drainage. During its descent, the avalanche appears to have entrained enormous quantities of rock, soil, ice and other sediment.
River blockage may have amplified disaster
The avalanche is believed to have temporarily blocked the river, creating a debris-dammed lake or impounded section of the drainage.
The subsequent failure of this natural blockage appears to have produced a sudden and extremely powerful release of water and debris. The resulting surge was not simply floodwater, but a highly destructive mixture of water, ice, rock and sediment.
CCTV footage from the Nepal-China border reportedly recorded the destructive surge at approximately 8:44:53 am NPT.
The timing provides an extraordinary clue to the sequence of events. There was an estimated 7 minutes and 43 seconds between the seismic origin of the mass movement and the catastrophic arrival of the surge at the CCTV locality.
From the Lhende drainage, the debris-rich flow entered the Bhote Koshi system, propagating southward and causing extensive destruction across areas of Rasuwagadhi, Timure and Syabrubesi, before moving into the Trishuli River system and affecting Nuwakot and areas farther downstream.
The emerging sequence therefore points to a cascading mountain hazard rather than a single isolated event:
Glacier/ice-rock collapse → high-velocity avalanche → river blockage → temporary debris-dammed lake → dam failure and sudden release → water, ice, rock and sediment surge → Lhende/Bhote Koshi → Rasuwagadhi–Timure–Syabrubesi → Trishuli → Nuwakot and farther downstream.
The assessment remains preliminary, and detailed satellite analysis, field investigations and hydrological modelling will be required to establish the exact dimensions of the initial collapse, the extent of river blockage and the volume and velocity of the subsequent debris flood.
However, the evidence available so far indicates that the primary trigger was a high-altitude glacier/ice-rock mass failure, while the catastrophic downstream impact was likely magnified by the subsequent river blockage and sudden release of accumulated water and debris.
The event highlights the potentially cascading nature of hazards in the high Himalaya, where a relatively remote ice-rock collapse can rapidly evolve into an avalanche, natural dam failure and destructive flood hundreds of metres or kilometres downstream.
Himalayas are subject to unsustainable development Kashmir is no exception.