Introduction to Climate ~ Part I ~

Similar documents
General Circulation. Nili Harnik DEES, Lamont-Doherty Earth Observatory

Atmospheric circulation analysis for seasonal forecasting

Energy Systems, Structures and Processes Essential Standard: Analyze patterns of global climate change over time Learning Objective: Differentiate

Torben Königk Rossby Centre/ SMHI

Lecture 8. Monsoons and the seasonal variation of tropical circulation and rainfall

Today s Lecture: Land, biosphere, cryosphere (All that stuff we don t have equations for... )

Lecture 3: Global Energy Cycle

Lecture 3. Background materials. Planetary radiative equilibrium TOA outgoing radiation = TOA incoming radiation Figure 3.1

2. Meridional atmospheric structure; heat and water transport. Recall that the most primitive equilibrium climate model can be written

Monday 7 October 2013, Class #15

Lecture 9: Climate Sensitivity and Feedback Mechanisms

Description of the Climate System and Its Components

Presentation Overview. Southwestern Climate: Past, present and future. Global Energy Balance. What is climate?

The Arctic Energy Budget

3. Carbon Dioxide (CO 2 )

Will a warmer world change Queensland s rainfall?

GEO1010 tirsdag

Interannual variability of top-ofatmosphere. CERES instruments

Dynamics and Kinematics

2. Fargo, North Dakota receives more snow than Charleston, South Carolina.

Math, Models, and Climate Change How shaving cream moved a jet stream, and how mathematics can help us better understand why

Weather Forecasts and Climate AOSC 200 Tim Canty. Class Web Site: Lecture 27 Dec

South Eastern Australian Rainfall in relation to the Mean Meridional Circulation

Geophysics Fluid Dynamics (ESS228)

Topic # 12 How Climate Works

warmest (coldest) temperatures at summer heat dispersed upward by vertical motion Prof. Jin-Yi Yu ESS200A heated by solar radiation at the base

Climate Modeling Research & Applications in Wales. John Houghton. C 3 W conference, Aberystwyth

The Planetary Circulation System

Radiative-Convective Models. The Hydrological Cycle Hadley Circulation. Manabe and Strickler (1964) Course Notes chapter 5.1

The effect of ocean mixed layer depth on climate in slab ocean aquaplanet ABSTRACT

An Introduction to Coupled Models of the Atmosphere Ocean System

Impact of sea surface temperatures on African climate. Alessandra Giannini

Prentice Hall EARTH SCIENCE

Introduction to tropical meteorology and deep convection

GPC Exeter forecast for winter Crown copyright Met Office

Earth s Climate Patterns

Extreme Weather and Climate Change: the big picture Alan K. Betts Atmospheric Research Pittsford, VT NESC, Saratoga, NY

Lecture 5: Atmospheric General Circulation and Climate

JMA s Ensemble Prediction System for One-month and Seasonal Predictions

Topic # 11 HOW CLIMATE WORKS continued (Part II) pp in Class Notes

Understanding the Greenhouse Effect

Steven Feldstein. The link between tropical convection and the Arctic warming on intraseaonal and interdecadal time scales

Climate Variability Natural and Anthropogenic

Lecture 10: Climate Sensitivity and Feedback

Atmospheric Sciences 321. Science of Climate. Lecture 13: Surface Energy Balance Chapter 4

Lecture 1. Amplitude of the seasonal cycle in temperature

Impact of wind changes in the upper troposphere lower stratosphere on tropical ozone

4. Atmospheric transport. Daniel J. Jacob, Atmospheric Chemistry, Harvard University, Spring 2017

1. Weather and climate.

The Energy Balance Model

ATMS 321: Sci. of Climate Final Examination Study Guide Page 1 of 4

SUPPLEMENTARY INFORMATION

Introduction of Seasonal Forecast Guidance. TCC Training Seminar on Seasonal Prediction Products November 2013

School Name Team # International Academy East Meteorology Test Graphs, Pictures, and Diagrams Diagram #1

ENSO Outlook by JMA. Hiroyuki Sugimoto. El Niño Monitoring and Prediction Group Climate Prediction Division Japan Meteorological Agency

CHAPTER 4. THE HADLEY CIRCULATION 59 smaller than that in midlatitudes. This is illustrated in Fig. 4.2 which shows the departures from zonal symmetry

Lecture 8: Natural Climate Variability

Meteorology Practice Test

Climate and the Atmosphere

The Structure and Motion of the Atmosphere OCEA 101

Identifying the MJO Skeleton in Observational Data

Linkages between Arctic sea ice loss and midlatitude

Tropical Meteorology. Roger K. Smith INDO IR

Connecting tropics and extra-tropics: interaction of physical and dynamical processes in atmospheric teleconnections

General Circulation of the Atmosphere. René Garreaud

p = ρrt p = ρr d = T( q v ) dp dz = ρg

Wind: Global Systems Chapter 10

Observation: predictable patterns of ecosystem distribution across Earth. Observation: predictable patterns of ecosystem distribution across Earth 1.

Data and formulas at the end. Exam would be Weds. May 8, 2008

Prentice Hall EARTH SCIENCE

Climate changes in Finland, but how? Jouni Räisänen Department of Physics, University of Helsinki

Lecture #2 Planetary Wave Models. Charles McLandress (Banff Summer School 7-13 May 2005)

Arctic Climate Change. Glen Lesins Department of Physics and Atmospheric Science Dalhousie University Create Summer School, Alliston, July 2013

Interhemispheric climate connections: What can the atmosphere do?

P4.2 THE THREE DIMENSIONAL STRUCTURE AND TIME EVOLUTION OF THE DECADAL VARIABILITY REVEALED IN ECMWF REANALYSES

Topic 6: Insolation and the Seasons

SC-WACCM! and! Problems with Specifying the Ozone Hole

Lecture 2 Global and Zonal-mean Energy Balance

Patterns and impacts of ocean warming and heat uptake

Climate Change 2007: The Physical Science Basis

An Introduction to Climate Modeling

What factors affect climate? Dr. Michael J Passow

The importance of long-term Arctic weather station data for setting the research stage for climate change studies

Dynamics of the Atmosphere. General circulation of the atmosphere

Climate Modeling Dr. Jehangir Ashraf Awan Pakistan Meteorological Department

The feature of atmospheric circulation in the extremely warm winter 2006/2007

The meteorology of monsoons

Radiation in climate models.

Speleothems and Climate Models

Deciphering the desiccation trend of the South Asian monsoon hydroclimate in a warming world

Introduction of climate monitoring and analysis products for one-month forecast

TROPICAL-EXTRATROPICAL INTERACTIONS

Topic # 12 Natural Climate Processes

Guided Notes: Atmosphere Layers of the Atmosphere

Stratosphere-Troposphere Interaction and Long Range Prediction

Solar Variability and Climate Change over the Late Holocene. D. Rind NASA/GISS NOAA Program: Abrupt Change in a Warming World

Products of the JMA Ensemble Prediction System for One-month Forecast

Seasonality of the Jet Response to Arctic Warming

Eliassen-Palm Theory

CLIMATE AND CLIMATE CHANGE MIDTERM EXAM ATM S 211 FEB 9TH 2012 V1

Transcription:

2015/11/16 TCC Seminar JMA Introduction to Climate ~ Part I ~ Shuhei MAEDA (MRI/JMA) Climate Research Department Meteorological Research Institute (MRI/JMA) 1

Outline of the lecture 1. Climate System ( 90 min. + α ) 1.1 Introduction 1.2 Radiative Balance 1.3 Horizontal Radiative Imbalance and Circulations 1.4 Seasonal Change 1.5 Role of Orography on Climate 2. Climate Variability (120 min. + α ) 2.1 Introduction 2.2 Intraseasonal Variability: Quasi-stationary Rossby wave, MJO and equatorial waves 2.3 Interannual Variability: ENSO, El Nino Modoki, IOD 2.4 Decadal Variability: PDO, ENSO-Monsoon relation 3. JMA s latest one-month prediction 2

1. Climate System 1. Climate System ( 90 min. + α ) 1.1 Introduction 1.2 Radiative Balance 1.3 Horizontal Radiative Imbalance and Circulations 1.4 Seasonal Change 1.5 Role of Orography on Climate 2. Climate Variability (120 min. + α ) 2.1 Introduction 2.2 Intraseasonal Variability: Quasi-stationary Rossby wave, MJO and equatorial waves 2.3 Interannual Variability: ENSO, El Nino Modoki, IOD 2.4 Decadal Variability: PDO, ENSO-Monsoon relation 3

1.1 Introduction 4

Climate and Climate System Weather is what is happening to the atmosphere at any given time. Climate in a narrow sense is the "average weather," the statistical description over a period of time. Climate is formed in the interactions in climate system, consisting of atmosphere including composition and circulation, the ocean, hydrosphere, land surface, biosphere, snow and ice, solar and volcanic activities in its spatial and temporal variability. 5

Causes of Climate Variability Natural origin external: land-sea distribution, orography solar constant, orbital variations volcano internal variability of the climate system (e.g., air-sea interaction,,,) Anthropogenic origin emission of greenhouse gases, destruction of ozone layer, land surface modification,,, (= climate change) 6

Climate System http://ipcc-wg1.ucar.edu/wg1/faq/wg1_faq-1.2.html Schematic view of the components of the climate system, their processes and interactions. 7

1.2 Radiative Balance 8

Radiative Balance between Earth and Space Solar Radiation Solar constant : insolation : planetary albedo : absorption : Terrestrial Radiation equilibrium radiative temperature : emission : S 342Wm 4 S 4 2 1 235Wm * 4 T e S 1370Wm P 2 P 0.31 * T e 2 Earth s temperature observed from the cosmic space Radiation Balance Balance between absorbed solar radiation and terresitrial emission T * e S 1 P 4 254K 19 C 4 Surface Temperature = 15 C 9

Pictures are from NASA and JMA web-sites Absorption of Radiation from 6000K and 255K Blackbodies Solar radiation Terrestrial radiation 10

From Marshall J., and R. A. Plumb, 2008: Atmosphere, Ocean, and Climate Dynamics, Academic Press, 319pp. The simplest greenhouse model 11

Pictures are from NASA web-sites Difference between Equilibrium radiative temperature and Ground Surface Temperature Venus Solar constant : 2600 W/m2 planetary albedo : 0.77 Equilibrium radiative temperature : - 46 C Earth Solar constant : S planetary albedo : Equilibrium radiative temperature Mars T * e 1370Wm P 0.31 2 S 1 P 4 254K 19 C 4 Solar constant : 590 W/m2 planetary albedo : 0.15 Equilibrium radiative temperature : -56 C Surface Temperature 457 C Surface Pressure 90,000hPa Surface Temperature 15 C Surface Pressure 1,000hPa Surface Temperature -55 C Surface Pressure 10hPa 12

Radiative heating tends to create vertical instability between heated ground and cooled atmosphere on average Atmospheric Cooling -105W/m 2 Unstable Greenhouse Effec Ground Surface Heating +105W/m 2 Fig. 2 Schematic diagram of the global mean energy balance of the Earth. Numbers indicate best estimates for the magnitudes of the globally averaged energy balance components together with their uncertainty ranges, representing present day climate conditions at the beginning of the twenty first century. Units Wm-2. Source: Wild et al.(2013.) 13

One-Dimensional Vertical Profile Model Typical condition at 35N in April 14

One-Dimensional Vertical Profile Model Observed Temperature 1-D model Simulations for each latitudes 15

1.3 Horizontal Radiative Imbalance and Circulations 16

Picture is from IPCC 1995 Imbalanced horizontal distribution of radiative heating (1) Latitudinal Imbalance between Pole and Tropics Timescale=1year Driving Forces of Climate Relaxation time to radiative equilibrium temperature (radiative equilibrium timescale) is estimated as about 30 days. Radiative imbalance between Pole and Tropics drives global circulations. Radiative imbalance between day and night has small influence on global circulations directly. (2) Longitudinal Imbalance between Day and Night Timescale=1day 17

Meridional distribution of Annual mean radiation balance Hartmann (1994) Solar radiation Global mean : 235 Wm 2 Low latitude : over 300 Wm 2 Poles : about 50 Wm 2 Terrestrial radiation Global mean : 235 Wm 2 Less gradient between low latitudes and poles compared to that in solar radiation Net radiation Global mean : 0 Wm 2 Positive in low latitudes, negative in high latitudes Poleward heat transport by the atmosphere and ocean balances this meridional heat imbalance 18

Heat transport by the atmosphere and ocean Integration from the South Pole of Net radiation absorbed in the Earth Atmosphere Ocean Atmosphere Ocean Trenberth and Caron (2001) Implied heat transport from top of atmosphere (TOA) radiation balance Integrate net radiation from pole to pole Both the atmosphere and ocean are responsible for heat transport Atmospheric transport is larger, particularly in the mid and high latitudes Oceanic heat transport is large in low-latitudes 19

From Wallace, J.M. and P. V. Hobbs, 2006: Atmospheric Science. Academic Press, 483pp. Energy Transport by Atmospheric Circulation High energy air parcel Net energy Transport Energy Loss Moist Static Energy H=CpT+gZ+Lq Energy Gain Low energy air parcel T: Temperature Z: Height q: Specific Humidity H of air parcels is conserved even through adiabatic process and/or condensation process, but, not conserved through the processes of radiation, heat and moisture supply from ground surface. 20

Hadley (direct) circulation and Zonal flow 30S EQ 30N 100hPa Driving Forces of Climate W W Momentum Loss Momentum Gain 500hPa E 1000hPa m/s Annual and zonal mean circulation. Color : Zonal wind, arrow : meridional circulation 21

From Marshall J., and R. A. Plumb, 2008: Atmosphere, Ocean, and Climate Dynamics, Academic Press, 319pp. Energy (left) and Momentum (right) Transport by Atmospheric Circulation 22

From Marshall J., and R. A. Plumb, 2008: Atmosphere, Ocean, and Climate Dynamics, Academic Press, 319pp. Observed atmospheric general circulation 23

1.4 Seasonal Change 24

90N Seasonal Change of Solar Insolation and Temperature Solar Insolation Temperature in the stratosphere (50hPa) Temperature in the troposphere (850hPa) W/m 2 C W EQ. W W W 90S W C W JAN JUL DEC JAN JUL DEC JAN JUL DEC 25

Seasonal Change of Sea Surface Temperature (SST) 90N Solar Insolation Dec.-Jan.-Feb. Jun-July-August EQ. 90S Mar.-Apr.-May Sep.-Oct.-Nov. 26

Heat Capacity of atmosphere and ocean Atmosphere Ocean Density 1.2-1.3kgm -3 10 3 kgm -3 Mass(per 1 m 2 ) :atom. X 800 (Top ~ Surface) (Surface ~10m depth) 10 4 kgm -2 10 4 kgm -2 :Mass of the atmosphere is the same as that of ocean with 10m depth Specific heat 10 3 Jkg -1 K -1 4 10 3 Jkg -1 K -1 :atom. X 4 Heat capacity (per 1 m 2 ) (Top ~ Surface) (Surface ~2.5m depth) 10 7 JK -1 m -2 10 7 JK -1 m -2 :Heat capacity of the atmosphere is the same as that of ocean with 2.5m depth 1K in 250m depth ocean is near equal to 100K in the atmosphere *from Gill 1982 27

Jan-Jul contrast of surface temperature ( ) Jan. Jul. Jul.- Jan. 28

Month of maximum monthly mean temperature (Right) Downward solar radiation at the top of the atmosphere is maximum in June (December) poleward of about 15 latitude in the NH (SH). In the tropics, it is January, February, March, April and May at 10 S, 4 S, 2 N, 8 N and 14 N, respectively. (Left) Actual month of maximum monthly mean temperature is quite different due to inertia of atmosphere, land and ocean. It is July over the continents and August over the oceans in the NH, but its distribution is not simple. 29

From Wallace, J.M. and P. V. Hobbs, 2006: Atmospheric Science. Academic Press, 483pp. Monsoon circulation 30

200 hpa and 850 hpa winds in JJA and DJF 31

Northern Summer Monsoon 200hPa Stream-Function 850hPa Stream-Function 32

Southern Summer Monsoon 200hPa Stream-Function 850hPa Stream-Function 33

Seasonal change of precipitation and surface wind 34

Seasonal change of zonal wind and stream function at 200hPa 35

Q. J. R. Meteorol. SOC. (1996), 122, pp. 1385-1404 Monsoons and the dynamics of deserts. By MARK J. RODWELL and BRIAN I. HOSKINS 25N Precipit ation Downward motion => DRY Upward motion => WET 10N Precipit ation 36

1.5 Role of orography on climate 37

Effect of mountains on climate Kutzbach 38 et al. (1993) J.Geology

Effect of mountain: Koppen climate OBS. Simulation by Climate Model Simulation by Climate Model with mountain 39

Outline of the lecture 1. Climate System ( 90 min. + α ) 1.1 Introduction 1.2 Radiative Balance 1.3 Horizontal Radiative Imbalance and Circulations 1.4 Seasonal Change 1.5 Role of Orography on Climate 2. Climate Variability (120 min. + α ) 2.1 Introduction 2.2 Intraseasonal Variability: Quasi-stationary Rossby wave, MJO and equatorial waves 2.3 Interannual Variability: ENSO, El Nino Modoki, IOD 2.4 Decadal Variability: PDO, ENSO-Monsoon relation 3. JMA s latest one-month prediction 40