Black Carbon and Other Air Pollutants in Italian Ports and Coastal Areas: Problems, Solutions and Implications for Policies
Abstract
:Featured Application
Abstract
1. Introduction
- the composition and volumes of ships’ emissions and their effects on public health and agricultural production, as well as climate change;
- variations among ‘classes’ of ships in their emissions, equipment, and operations;
- ports, including the location of the ports in relation to human populations and agricultural production regions, as well as types and volumes of ship traffic;
- governmental policies in Italy, the European Union, the International Maritime Organization (IMO), and a proposed Mediterranean Emission Control Area (ECA) that is on the agenda in Italy and other Mediterranean countries.
1.1. Maritime Emissions and Their Effects
1.1.1. Box 1. Black Carbon Basics
1.1.2. Air Pollution in Italy
1.1.3. Box 2. Links between Black Carbon Emissions and the Coronavirus Pandemic in Italy
1.1.4. Italian Ports
1.1.5. Human Populations in Italian Port and Coastal Areas
1.1.6. Coastal Agricultural Production Exposure
2. Technological and Policy Solutions
2.1. Technologies
2.2. Policymaking Arenas
2.2.1. IMO
2.2.2. ECAs
2.2.3. Gothenburg Protocol
2.2.4. EU
2.2.5. Mediterranean
2.2.6. Italy
3. Monitoring, Reviewing, Verifying and Enforcing (MRV&E)
4. Conclusions
5. Annex: Black Carbon Definition and Measurement Issues
Supplementary Materials
Funding
Conflicts of Interest
References
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Emissions | Comments |
---|---|
Greenhouse Gases (GHGs) | |
Carbon Dioxide (CO2) | Principal contributor to global warming |
Methane (CH4) | Second leading global warming gas after carbon dioxide |
Nitrous Oxide (N2O) | Potent long-term greenhouse gas |
Halogenated Hydrocarbons | Potent global warming gas per ton, but limited use in refrigeration |
Other Gases | |
SOx | Contributes to sea and land acidification; damages human health, buildings, and other structures; is a global coolant |
NOx | Contributes to sea and land acidification and ozone formation; eutrophication; human health problems |
Volatile Organic compounds | Contributes to formation of ozone |
Particles | |
Black Carbon (BC) | Second leading contributor, as particle matter, after carbon dioxide; also has detrimental effects on human health and food production |
Organic Carbon (OC) | Global coolant, co-pollutant in soot with black carbon, consists of carbon combined with hydrogen, oxygen, sulphur or nitrogen |
Elemental Carbon (EC) | Sometimes referred to as ‘pure carbon’, but earlier definitions were more complicated |
Salt and various mineral particles | They have various health and environmental effects, but are not a direct concern of this paper |
2000 | 2005 | 2010 | 2015 | 2016 | 2017 | |
---|---|---|---|---|---|---|
Italy | 19.69 | 19.42 | 19.00 | 17.68 | 16.34 | 16.50 |
France | 14.78 | 14.78 | 14.84 | 12.83 | 11.98 | 11.96 |
Germany | 15.05 | 14.58 | 15.38 | 12.98 | 12.09 | 12.09 |
Spain | 12.11 | 11.96 | 11.73 | 10.67 | 9.90 | 9.91 |
European Union | 16.18 | 15.99 | 16.00 | 13.97 | 13.08 | 13.09 |
EU-28 pre-UK departure | ||||||
Italy | ||||||
cf. EU | 1.2 | 1.2 | 1.2 | 1.3 | 1.2 | 1.3 |
cf. WTO guidelines | 2.0 | 1.9 | 1.9 | 1.8 | 1.6 | 1.7 |
cf. Italy 2000 | 99% | 96% | 90% | 83% | 84% |
Port | Number of Passengers Millions (2019) | Change from 2018 to 2019 | Number of Port Calls | Percent Change from 2018 to 2019 | Rank among Top Ten Mediterranean Ports |
---|---|---|---|---|---|
Civitavecchia | 2.56 | +4.9 | 827 | +8.8 | 2nd |
Venice | 1.55 | [‘stable’] | 500 | [‘stable’] | 5th |
Genoa | 1.35 | +33.5 | 268 | +17.0 | 6th |
Napoli | 1.23 | +14.6 | 456 | +20.3 | 7th |
Port | Number of Ships (2017) | No. of Ships (Rank) | Port Call Time (Hours) | Port Call Time (Rank) | (PM10) a (kg) | (PM10) a (Rank) | NOx (kg) | NOx (Rank) |
---|---|---|---|---|---|---|---|---|
Cagliari | 45 | 5–6 | 2592 | 7 | 1468 | 9 | 144,070 | 7 |
Civitavecchia | 76 | 1 | 5466 | 2 | 8898 | 2 | 500,326 | 2 |
Genoa | 31 | 9 | 3376 | 4 | 4946 | 5 | 261,550 | 5 |
La Spetzia | 43 | 6 | 3278 | 5 | 3721 | 6 | 194,646 | 6 |
Livorno | 63 | 3 | 4720 | 3 | 6497 | 3 | 378,129 | 3 |
Messina | 45 | 5–6 | 2296 | 9 | 2296 | 8 | 130,777 | 8 |
Napoli | 52 | 4 | 2968 | 6 | 5138 | 4 | 303,708 | 4 |
Palermo | 33 | 8 | 2393 | 8 | 2393 | 7 | 130,054 | 9 |
Venice | 68 | 2 | 7988 | 1 | 10,961 c | 1 | 600,337c | 1 |
Total | [456 b] | 35,077 | 46,318 | 2,643,597 |
Core Network Ports (15)/ Other Network Ports in the Regional Authority (18) | Population-2020 (000) |
---|---|
Genoa | 574 |
Savona | 60 |
Valdo Ligure | a |
La Spezia | 93 |
Marina di Carrara | a |
Livorno | 157 |
Piombino | a |
Civitavecchia | 53 |
Gaeta | a |
Napoli | 959 |
Salerno | 133 |
Castellamare di Stabia | 65 |
Gioia Tauro | a |
Messina | 230 |
Cagliari | 153 |
Arbatax-Tottoli | a |
Golfo Aranci | a |
Olbia | 61 |
Oristano | a |
Torres Castellamare di Stabia | 65 |
Palermo | 658 |
Augusta | a |
Catania | 311 |
Bari | 322 |
Brindisi | 86 |
Manfredonia | 56 |
Taranto | 195 |
Ancona | 100 |
Pesaro | 95 |
Pescara | 120 |
Ravenna | 158 |
Venezia | 259 |
Trieste | 203 |
Subtotal: Core Network Ports | 3884 |
Subtotal: Other Network Ports | 1052 |
Total | 4936 |
Commodity | Tons, in Descending Order, 2018 |
---|---|
Grapes | 8,513,643 |
Wheat | 6,932,943 |
Maize | 6,179,035 |
Tomatoes | 5,798,103 |
Apples | 2,414,921 |
Olives | 1,877,222 |
Oranges | 1,522,213 |
Rice | 1,512,241 |
Soybeans | 1,138,993 |
Peaches and nectarines | 1,090,678 |
Barley | 1,010,328 |
Energy Efficiency |
Hull form |
Efficient propellers |
Lightweight construction |
Reduce ballast |
Ducktail waterline extensions |
Propulsion Systems and Fuels |
Wind |
Solar |
Towing kite |
Hydrogen fuel cells |
CRP Propulsion |
Liquified natural gas fuel |
Distillate fuel |
Biodiesel fuel |
Methanol fuel |
Battery electric |
Machinery Systems |
Harbor-side auxiliary electricity (shore power) |
Power storage |
Waste heat recovery |
Main engine tuning |
Exhaust gas recirculation (with scrubbers) |
Diesel particulate filters (DPF, various types) |
Electrostatic precipitators (ESP) |
Scrubbers (SOx, with exhaust gas cleaning systems) |
Selective catalytic reduction |
Hybrid electric storage |
Engine tuning with selective catalytic reduction/exhaust gas recirculation |
Diesel oxidation catalyst (DOC) |
Information Technologies |
Artificial intelligence: machine learning |
Big data |
Engine control technologies |
Operational Measures |
Propeller brushing |
Hull brushing |
Weather routing |
Slow steaming |
Types of Measures |
---|
Fuel Type LNG Distillate Biodiesel Methanol |
Exhaust Gas Treatment DPF paired with marine fuels with low S and ash content (e.g., distillates) DPF w/SCR, paired with marine fuels with low S and ash content (e.g., distillates) ESP |
Engine and Propulsion System Design Engine tuning to low BC (NOx reduced with EGR/SCR) Engine control technologies Hybrid/energy storage Full BEV Hydrogen fuel cells |
Other Measures Shore power |
Port System Authorities | Core Network Ports | Other Network Ports |
---|---|---|
1-Western Ligurian Sea | Genova | Savona Valdo Ligure |
2-Eastern Ligurian Sea | La Spezia | Marina di Carrara |
3-Northern Tyrrhenian Sea | Livorno | Piombino |
4-Central-Northern Tyrrhenian Sea | Civitavecchia (Rome) | Gaeta |
5-Central Tyrrhenian Sea | Napoli | Salerno Castellamare di Stabia |
6-Central-Southern Sea and Strait | Gioia Tauro | Messina |
7-Sea of Sardinia | Gagliari | Arbatax-Tottoli Golfo Aranci Olbia Oristano Torres Castellamare di Stabia |
8-Western Sicilian Sea | Palermo | |
9- Eastern Sicilian Sea | Augusta | Catania |
10-Southern Adriatic Sea | Bari | Brindisi Manfredonia |
11-Ionian Sea | Taranto | |
12-Central Adriatic Sea | Ancona | Pesaro Pescara |
13-Central-Northern Adriatic Sea | Ravenna | |
14-Northern Adriatic Sea | Venezia | |
15- Eastern Adriatic Sea | Trieste |
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Brewer, T.L. Black Carbon and Other Air Pollutants in Italian Ports and Coastal Areas: Problems, Solutions and Implications for Policies. Appl. Sci. 2020, 10, 8544. https://doi.org/10.3390/app10238544
Brewer TL. Black Carbon and Other Air Pollutants in Italian Ports and Coastal Areas: Problems, Solutions and Implications for Policies. Applied Sciences. 2020; 10(23):8544. https://doi.org/10.3390/app10238544
Chicago/Turabian StyleBrewer, Thomas L. 2020. "Black Carbon and Other Air Pollutants in Italian Ports and Coastal Areas: Problems, Solutions and Implications for Policies" Applied Sciences 10, no. 23: 8544. https://doi.org/10.3390/app10238544
APA StyleBrewer, T. L. (2020). Black Carbon and Other Air Pollutants in Italian Ports and Coastal Areas: Problems, Solutions and Implications for Policies. Applied Sciences, 10(23), 8544. https://doi.org/10.3390/app10238544