Reduction in greenhouse gas and other emissions from ship engines: Current trends and future options
Снижение выбросов парниковых газов и других загрязняющих веществ судовыми двигателями: современные тенденции и перспективные решения
2022-11-24
SCID: 54.1/6dcs2fat
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Well-to-Wake emissionscarbon-neutral marine fuelsexhaust aftertreatmentnear-zero-emission shippingship emission control
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Abstract (AI)
The impact of ship emission reductions can be maximised by considering climate, health and environmental effects simultaneously and using solutions fitting into existing marine engines and infrastructure. Several options available enable selecting optimum solutions for different ships, routes and regions. Carbon-neutral fuels, including low-carbon and carbon-negative fuels, from biogenic or non-biogenic origin (biomass, waste, renewable hydrogen) could resemble current marine fuels (diesel-type, methane and methanol). The carbon-neutrality of fuels depends on their Well-to-Wake (WtW) emissions of greenhouse gases (GHG) including carbon dioxide (CO2), methane (CH4), and nitrous oxide emissions (N2O). Additionally, non-gaseous black carbon (BC) emissions have high global warming potential (GWP). Exhaust emissions which are harmful to health or the environment need to be equally removed using emission control achieved by fuel, engine or exhaust aftertreatment technologies. Harmful emission species include nitrogen oxides (NOx), sulphur oxides (SOx), ammonia (NH3), formaldehyde, particle mass (PM) and number emissions (PN). Particles may carry polyaromatic hydrocarbons (PAHs) and heavy metals, which cause serious adverse health issues. Carbon-neutral fuels are typically sulphur-free enabling negligible SOx emissions and efficient exhaust aftertreatment technologies, such as particle filtration. The combinations of carbon-neutral drop-in fuels and efficient emission control technologies would enable (near-)zero-emission shipping and these could be adaptable in the short- to mid-term. Substantial savings in external costs on society caused by ship emissions give arguments for regulations, policies and investments needed to support this development.
Key Findings
1
Carbon-neutral fuels can be produced from biomass, waste, or renewable hydrogen and designed to resemble diesel, methane, or methanol fuels.
2
Combining sulphur-free carbon-neutral drop-in fuels with efficient emission controls could enable near-zero-emission shipping in the short to medium term and reduce societal external costs.
3
Fuel carbon neutrality must be assessed using Well-to-Wake greenhouse-gas emissions, including CO2, CH4, and N2O, while also accounting for black carbon’s high warming potential.
4
Health- and environmentally harmful emissions—including NOx, SOx, NH3, formaldehyde, particulate matter, particle numbers, PAHs, and heavy metals—require fuel, engine, or exhaust-aftertreatment controls.
5
Ship-emission reductions should jointly consider climate, health, and environmental impacts while fitting existing marine engines and infrastructure.
Research Object
Marine ship engines and their exhaust emissions systems (including fuels, engines, and aftertreatment technologies)
Research Subject
Reduction and control of greenhouse-gas, air-pollutant, particulate, and other harmful emissions, including the feasibility of carbon-neutral fuels and emission-control technologies for near-zero-emission shipping
Publication Details
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2022-11-24
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