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LNG Bunkering

DNV GL: Tomorrow’s marine fuels for the containership sector

Explains why LNG is the marine fuel to choose, and future compatibly of the material with other fuels.

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Classification society DNV GL has written an article ‘Tomorrow’s ship fuels’ informing shipowners the marine fuel of choice for newbuild box vessels:

The shipping industry is rapidly reaching a point of no return: Emission limits and, in the more distant future, complete decarbonization will change ship operation dramatically. The question is: How should container ships be built today?

The Paris Agreement aims to limit global warming caused by greenhouse gas (GHG) emissions to less than two degrees. For the shipping industry, the IMO’s greenhouse gas strategy (MEPC.304(72)) has set three targets: to reduce CO2 emissions per transport work by at least 40 per cent by the year 2030 compared to 2008 levels, pursuing efforts towards 70 per cent by 2050, and to eliminate GHG emissions from shipping entirely before the end of this century. These goals promise to be game changers for the transport industry. Climate change is a reality and must be curbed to prevent severe consequences for mankind and nature.

Before, these long-term goals become a pressing issue, the 2020 sulphur cap requires immediate attention; it will be followed by nitrous oxide (NOX) and particulate matter emission restrictions, at least in specific areas. The traditional way of propelling ships with low-cost fossil fuels will soon be history.

Land-based energy consumers can replace fossil fuels with renewable energy sources such as wind and solar power quite easily. For aviation and shipping, however, the situation is much more difficult: both modes of transport must carry an appropriate energy supply on each voyage. This severely limits the options available to them. There is currently no alternative to the combustion principle to generate the massive thrust needed to propel a large aeroplane or ship. For a transitional period of one or two decades as the world inches towards decarbonization – or rather, carbon-neutral renewable fuels – there is no way around fossil fuels as a main energy source on board, specifically for deep sea shipping.

Go for the most advanced technology

For owners ordering newbuilds today it is essential to plan for the strictest emission limits foreseeable, considering the operating life of a typical container vessel of roughly two decades. Choosing the right fuel and propulsion technology means ensuring that today’s newbuilds will be marketable for their entire lifespan. Future emission legislation is unlikely to include any grandfathering clauses for non-compliant legacy tonnage.

There are several factors to consider when making this choice, whether today or at some time in the future. The 0.5 per cent sulphur cap taking effect in 2020 will increase the average fuel costs. Shipowners relying on HFO and scrubbers should bear this in mind – and the fact that open-loop scrubbers are hotly debated and may be banned at least in environmentally sensitive regions at some point. Closed-loop scrubbers, on the other hand, are subject to complex waste disposal requirements.

Furthermore, the IMO NOX Tier III limits, in effect for newbuilds in North American Emission Control Areas (ECAs) since 2016, and taking effect in the North Sea and Baltic Sea ECAs from 2021, require additional after treatment of diesel engine exhaust gases by selective catalytic reduction (SCR) systems or exhaust gas recirculation (EGR) on most engine types. For newbuilding projects, the costs of installing and operating all this pollution mitigation technology are, or will soon be, in the same range as the cost associated with the use of alternative fuels and propulsion systems. In addition, further regulation could be implement, like limits for particulate matter (‘black carbon’) emissions which will further increase the costs of using conventional fuels.

The most diffcult aspect, however, is CO2. The IMO greenhouse gas strategy essentially requires a container ship ordered today to cut CO2 emissions during its lifetime by 40 per cent compared to a similar vessel operated in 2008. Great strides have been made in energy effciency enhancements and emission reduction technologies in recent years, from hull and propeller optimization, high-effciency ship engines, air lubrication and friction-reducing hull coatings to slow steaming and route optimization. All these technologies have made signifcant contributions to reducing both the emission profles and the OPEX of container vessels. Emerging technologies such as system optimization with battery-assisted on-board power grids and new propulsion technology as outlined in the PERFECt ship project offer additional opportunities to further limit the CO2 footprint. Selecting the best combination of these measures with a suitable fuel strategy can help the industry reach the 40 per cent CO2 emission reduction goal the IMO envisions for 2030. It should be mentioned in this context that the challenge is somewhat greater for container ships than for other similarly sized vessels because container ships are typically fitted with more powerful main engines with higher emission volumes.

LNG a favoured option

Taken together, all these considerations make liquefed natural gas (LNG), without doubt the cleanest fossil fuel, look increasingly attractive in view of present and future emission restrictions in general, and the 40 per cent GHG reduction target for 2030 in particular. LNG produces the lowest tank-to-propeller CO2 emissions of all fossil fuels and is already cheaper per kilowatt hour (kW/h) than HFO. With the supply chain gradually improving and the market volume increasing, LNG prices are likely to drop further. The emission profile of LNG beats all other fossil fuels across the four emission groups (SOX, NOX, particulate matter and CO2). German owners opting for LNG might benefit from government subsidies which are currently being offered.

There are various combustion technologies available for LNG. The diesel principle is efficient but requires exhaust gas after-treatment to meet Tier III NOX limits. The Otto four-stroke combustion principle, while slightly less efficient, will comply with current environmental standards without exhaust gas after treatment. Turbine technology is still met with scepticism by the industry because of less-than-satisfactory past experiences. However, advanced COGES implementations are very efficient, free of methane slip, and feature low emission values. Turbines definitely deserve to be reconsidered. DNV GL and various industry partners have performed in-depth studies of COGES ship propulsion technology, with positive results. But even without turbine technology, the efficiency of a reciprocating engine can be increased substantially by installing waste-heat recovery (WHR) systems, which offer a number of benefits on LNG-burning engines, such as reducing the load demand on the auxiliary engines. A well-designed WHR system can recover five to ten per cent of the mechanical power of an engine. DNV GL stands ready to advise customers on proper WHR system design.

The space question

But there is a downside of sorts even to LNG: its volumetric density is significantly lower than that of diesel, which means that nearly twice the tank volume is needed to achieve the same endurance for a vessel. However, this effect can be compensated at least in part through an optimized system with flexibility in the arrangement. The DNV GL PERFECt study investigated this in detail, showing that a smart machinery arrangement can allow the container intake to be increased.

Furthermore, as the global LNG bunkering infrastructure improves, containerships may be able to avoid sacrificing container slots in favour of LNG fuel tanks by simply refuelling a bit more often. The optimum tank size should be determined based on the intended trading pattern and bunkering frequency. It should be noted that while the volumetric energy density of LNG is lower compared to conventional fuels, requiring almost twice the tank volume for the same endurance of the ship, its gravimetric energy density is higher, meaning that more payload can be transported.

Squeezing the GHG footprint

While nobody can safely forecast future fuel prices, the laws of supply and demand continue to apply, and LNG is not an exception, considering the enormous reservoirs still waiting to be tapped. LNG, especially when combined with other state-of-the-art efficiency enhancements, is more attractive than ever as the safest bet for the next generation of container ships – it meets all emission limits relevant for the current generation of ships, its availability is improving rapidly as more bunkering vessels are deployed, and the return on investments in LNG propulsion technology is accelerating and will continue to do so as the technology enters the mainstream. It avoids or at least reduces the complexities of exhaust gas after treatment systems, can be carried on board safely, and will be a competitive advantage for companies whose reputation, at least in part, depends on their environmental footprint.

Once the production of synthetic fuels using renewable energy — usually referred to as ‘Power to Fuel’ (PtoF) and ‘Power to Gas’ (PtoG) technology — reaches an appropriate scale and economic feasibility, LNG-powered ships and their bunkering infrastructure will be fully compatible without requiring any technical modifications. The IMO’s IGF Code provides clear technical guidance, and DNV GL has all the experience and knowledge to assist in its implementation.

Source and photo credit: DNV GL
Published: 22 January, 2019

 

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LNG Bunkering

PIL’s LNG dual-fuel boxship “Kota Elok” arrives in Singapore on maiden call

As the first of 13 new 13,000 TEU vessels joining its fleet, Kota Elok is equipped to operate on LNG and low-sulphur fuel oil that helps reduce our greenhouse gas emissions.

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PIL's LNG dual-fuel boxship “Kota Elok” arrives in Singapore on maiden call

Singapore-based Pacific International Lines Pte Ltd on Monday (20 July) said its first 13,000 TEU LNG dual-fuel container vessel, Kota Elok, recently made her maiden call to Singapore on 15 July.

As the first of 13 new 13,000 TEU vessels joining its fleet, Kota Elok is equipped to operate on liquefied natural gas (LNG) and low-sulphur fuel oil that helps reduce our greenhouse gas emissions. 

The vessel also incorporated energy-saving features and digital technologies to reduce fuel consumption and enhance operational performance, as well as a bow windshield to improve aerodynamics, contributing to improved fuel efficiency and lower emissions over the course of long-haul voyages.

“Following Singapore, Kota Elok will continue her voyage on our East Coast Service 1 (ES1) route to South America, calling at ports in Brazil, Uruguay, and Argentina before returning to Asia,” the company said in a social media post. 

Kota Elok also became PIL’s first vessel to receive Lloyd’s Register certification for compliance with the IACS UR E26 and UR E27 cyber security requirements.

Developed by the International Association of Classification Societies (IACS), UR E26 and UR E27 are mandatory cyber resilience requirements for newbuild vessels contracted from 1 July 2024. 

 

Photo credit: Pacific International Lines
Published: 21 July, 2026

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LNG Bunkering

CIMC SOE secures order for 12,000-cbm LNG bunkering vessel from Sinopec Clean Energy

Once operational, the vessel is expected to strengthen Sinopec’s domestic coastal LNG bunkering network and help address gaps in China’s alternative fuel bunkering infrastructure.

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CIMC SOE secures order for 12,000-cbm LNG bunkering vessel from Sinopec Clean Energy

China’s Nantong CIMC Sinopacific Offshore & Engineering Co., Ltd. (CIMC SOE) recently signed a contract with Sinopec (Beijing) Clean Energy Co., Ltd. to build a 12,000-cubic metre (m3) LNG bunkering vessel, according to Chinese maritime media.

The vessel is scheduled for delivery in 2028 and will support Sinopec’s efforts to expand its presence in the marine clean energy sector.

Once operational, the vessel is expected to strengthen Sinopec’s domestic coastal LNG bunkering network and help address gaps in China’s LNG bunkering infrastructure.

With this signing , CIMC Pacific Offshore Engineering’s LNG bunkering vessel orderbook is further strengthened, maintaining its leading position in the global market for small and medium-sized LNG bunkering vessels.

The contract also marked another milestone for CIMC SOE, which has seen a sharp increase in orders and business performance this year amid a surge in domestic LNG vessel demand.

 

Photo credit: Nantong CIMC Sinopacific Offshore & Engineering
Published: 21 July, 2026

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Alternative Fuels

ENGINE on Fuel Switch Snapshot: LSMGO surges to greater premium over biofuel

B100 discount to LSMGO widens to $541/mt in Rotterdam; Singapore’s B100 drops to $106/mt below LSMGO; Rotterdam LBM at $639-833/mt discounts to LSMGO.

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ENGINE on Fuel Switch Snapshot: LSMGO surges to greater premium over biofuel

Once a week, bunker intelligence platform ENGINE will publish a snapshot of alternative and conventional bunker fuel prices in the world’s two biggest bunkering hubs. The following is the latest snapshot:

20 July 2026

  • B100 discount to LSMGO widens to $541/mt in Rotterdam
  • Singapore’s B100 drops to $106/mt below LSMGO
  • Rotterdam LBM at $639-833/mt discounts to LSMGO

B100’s premium over HSFO in Rotterdam has narrowed by $50/mt over the past week to $64/mt, while its discount to VLSFO has widened by $83/mt to $105/mt.

B100 has become far more competitive against LSMGO in Rotterdam, with its discount widening by $180/mt over the past week to $541/mt, as a surge in conventional fuel prices left B100 broadly unchanged by comparison.

B100’s price has risen by $109/mt in Singapore, but its discount to LSMGO has still widened by $102/mt to $106/mt, as LSMGO surged by an even greater $211/mt.

Rotterdam’s LNG premium over VLSFO has widened by $35/mt to $201/mt for vessels with Otto medium speed (Otto MS) engines. For vessels with diesel slow speed (diesel SS) engines, LNG has flipped to a $15/mt premium over VLSFO, from a $22/mt discount the prior week.

Liquefied biomethane (LBM) discounts to VLSFO in Rotterdam have narrowed by $50-52/mt to $203-396/mt over the past week. Against LSMGO, LBM discounts have widened by $45-47/mt to $639-833/mt, depending on engine type.

In Singapore, LNG is now $42/mt cheaper than LSMGO for vessels with Otto MS engines, and $134/mt cheaper for vessels with diesel SS engines.

ENGINE on Fuel Switch Snapshot: LSMGO surges to greater premium over biofuel

Liquid fuels

HSFO and VLSFO prices in Rotterdam have jumped by $66/mt and $99/mt respectively over the past week, while LSMGO has surged by an even steeper $196/mt. A $9.69/bbl ($71/mt) rise in front-month ICE Brent futures, to $87.94/bbl ($645/mt), drove bunker prices sharply higher across the board.

Bunker fuel availability is tight for prompt delivery dates in the ARA ports, with buyers advised to enquire about stems between 5-7 days ahead to get good coverage, a trader said.

Rotterdam’s B100 price has risen by $16/mt over the past week. Dutch ZRE A ticket prices were unchanged at €107.50/mtCO2e.

Singapore’s HSFO and VLSFO prices have risen by $130/mt and $132/mt respectively, while its LSMGO price has gained an even steeper $211/mt over the past week.

VLSFO availability in Singapore has been tight, with several suppliers reporting low stock levels. Recommended lead times have widened from 13–17 days last week to 14–19 days now.

Liquid gases

Rotterdam’s LNG prices have surged by $134-136/mt over the past week, while its LBM prices have climbed by $149-151/mt.

LBM discounts to LNG in Rotterdam have narrowed by $15/mt to $404-411/mt.

Singapore’s LNG bunker benchmarks have surged by $196-197/mt over the past week.

By Erik Hoffmann

 

Photo credit and source: ENGINE
Published: 21 July, 2026

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