Abrupt climate change as a rate-dependent cascading tipping point

Research output: Contribution to journalJournal articleResearchpeer-review

Standard

Abrupt climate change as a rate-dependent cascading tipping point. / Lohmann, Johannes; Castellana, Daniele; Ditlevsen, Peter D.; Dijkstra, Henk A.

In: Earth System Dynamics, Vol. 12, No. 3, 28.07.2021, p. 819-835.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Lohmann, J, Castellana, D, Ditlevsen, PD & Dijkstra, HA 2021, 'Abrupt climate change as a rate-dependent cascading tipping point', Earth System Dynamics, vol. 12, no. 3, pp. 819-835. https://doi.org/10.5194/esd-12-819-2021

APA

Lohmann, J., Castellana, D., Ditlevsen, P. D., & Dijkstra, H. A. (2021). Abrupt climate change as a rate-dependent cascading tipping point. Earth System Dynamics, 12(3), 819-835. https://doi.org/10.5194/esd-12-819-2021

Vancouver

Lohmann J, Castellana D, Ditlevsen PD, Dijkstra HA. Abrupt climate change as a rate-dependent cascading tipping point. Earth System Dynamics. 2021 Jul 28;12(3):819-835. https://doi.org/10.5194/esd-12-819-2021

Author

Lohmann, Johannes ; Castellana, Daniele ; Ditlevsen, Peter D. ; Dijkstra, Henk A. / Abrupt climate change as a rate-dependent cascading tipping point. In: Earth System Dynamics. 2021 ; Vol. 12, No. 3. pp. 819-835.

Bibtex

@article{5d1c8949610b4cbf8a3705b4e7e37a71,
title = "Abrupt climate change as a rate-dependent cascading tipping point",
abstract = "We propose a conceptual model comprising a cascade of tipping points as a mechanism for past abrupt climate changes. In the model, changes in a control parameter, which could for instance be related to changes in the atmospheric circulation, induce sequential tipping of sea ice cover and the ocean's meridional overturning circulation. The ocean component, represented by the well-known Stommel box model, is shown to display so-called rate-induced tipping. Here, an abrupt resurgence of the overturning circulation is induced before a bifurcation point is reached due to the fast rate of change of the sea ice. Because of the multi-scale nature of the climate system, this type of tipping cascade may also be a risk concerning future global warming. The relatively short timescales involved make it challenging to detect these tipping points from observations. However, with our conceptual model we find that there can be a significant delay in the tipping because the system is attracted by the stable manifold of a saddle during the rate-induced transition before escaping towards the undesired state. This opens up the possibility for an early warning of the impending abrupt transition via detection of the changing linear stability in the vicinity of the saddle. To do so, we propose estimating the Jacobian from the noisy time series. This is shown to be a useful generic precursor to detect rate-induced tipping.",
keywords = "ATLANTIC-OCEAN, CIRCULATION, INSTABILITY, SYSTEMS, SHIFTS, ONSET",
author = "Johannes Lohmann and Daniele Castellana and Ditlevsen, {Peter D.} and Dijkstra, {Henk A.}",
year = "2021",
month = jul,
day = "28",
doi = "10.5194/esd-12-819-2021",
language = "English",
volume = "12",
pages = "819--835",
journal = "Earth System Dynamics",
issn = "2190-4979",
publisher = "Copernicus GmbH",
number = "3",

}

RIS

TY - JOUR

T1 - Abrupt climate change as a rate-dependent cascading tipping point

AU - Lohmann, Johannes

AU - Castellana, Daniele

AU - Ditlevsen, Peter D.

AU - Dijkstra, Henk A.

PY - 2021/7/28

Y1 - 2021/7/28

N2 - We propose a conceptual model comprising a cascade of tipping points as a mechanism for past abrupt climate changes. In the model, changes in a control parameter, which could for instance be related to changes in the atmospheric circulation, induce sequential tipping of sea ice cover and the ocean's meridional overturning circulation. The ocean component, represented by the well-known Stommel box model, is shown to display so-called rate-induced tipping. Here, an abrupt resurgence of the overturning circulation is induced before a bifurcation point is reached due to the fast rate of change of the sea ice. Because of the multi-scale nature of the climate system, this type of tipping cascade may also be a risk concerning future global warming. The relatively short timescales involved make it challenging to detect these tipping points from observations. However, with our conceptual model we find that there can be a significant delay in the tipping because the system is attracted by the stable manifold of a saddle during the rate-induced transition before escaping towards the undesired state. This opens up the possibility for an early warning of the impending abrupt transition via detection of the changing linear stability in the vicinity of the saddle. To do so, we propose estimating the Jacobian from the noisy time series. This is shown to be a useful generic precursor to detect rate-induced tipping.

AB - We propose a conceptual model comprising a cascade of tipping points as a mechanism for past abrupt climate changes. In the model, changes in a control parameter, which could for instance be related to changes in the atmospheric circulation, induce sequential tipping of sea ice cover and the ocean's meridional overturning circulation. The ocean component, represented by the well-known Stommel box model, is shown to display so-called rate-induced tipping. Here, an abrupt resurgence of the overturning circulation is induced before a bifurcation point is reached due to the fast rate of change of the sea ice. Because of the multi-scale nature of the climate system, this type of tipping cascade may also be a risk concerning future global warming. The relatively short timescales involved make it challenging to detect these tipping points from observations. However, with our conceptual model we find that there can be a significant delay in the tipping because the system is attracted by the stable manifold of a saddle during the rate-induced transition before escaping towards the undesired state. This opens up the possibility for an early warning of the impending abrupt transition via detection of the changing linear stability in the vicinity of the saddle. To do so, we propose estimating the Jacobian from the noisy time series. This is shown to be a useful generic precursor to detect rate-induced tipping.

KW - ATLANTIC-OCEAN

KW - CIRCULATION

KW - INSTABILITY

KW - SYSTEMS

KW - SHIFTS

KW - ONSET

U2 - 10.5194/esd-12-819-2021

DO - 10.5194/esd-12-819-2021

M3 - Journal article

VL - 12

SP - 819

EP - 835

JO - Earth System Dynamics

JF - Earth System Dynamics

SN - 2190-4979

IS - 3

ER -

ID: 275946535