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VPS on methane slip: A growing challenge in shipping’s decarbonisation threat

Emilian Buksak, VPS Decarbonisation Advisor of VPS, dives into how methane slip can be reduced when LNG is used as a marine fuel in a ship’s engine as LNG emerges as a key transition maritime fuel.

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Emilian Buksak, VPS Decarbonisation Advisor of marine fuels testing company VPS, on Wednesday (27 February) dived into how methane slip can be reduced when liquefied natural gas (LNG) is used as a marine fuel in a ship’s engine as LNG emerges as a key transition fuel in the maritime industry: 

As an industry the world’s shipping fleet consumes over 230 million metric tons of fuel per year, which in turn produces 716 million metric tons of CO2-equivalent emissions. However, shipping is in the midst of a major transition to reduce its emissions and become a far more sustainable industry.

There are many options and opportunities to achieve this, including the development and configuration of ships engines, plus consideration of numerous low-to-zero carbon fuels. According to Clarksons Research, nearly 30% of all vessels on order are designed to use alternative fuels, with another 14% carrying “alternative-fuel ready” notations—clear evidence that greener shipping solutions are on the rise. Regarding marine fuels, we see an increase in the uptake of sustainable biofuels and Renewable Liquid & Gaseous Fuels of Non-biological Origin (RFNBO, e.g., methanol) but this is still limited. Therefore, LNG has become a leading transition fuel for the maritime sector.

Since 2021, the number of LNG-fuelled vessels has tripled, now surpassing 1,200 ships according to the DNV Alternative Fuels Insight (AFI) platform. This fleet includes about 452 container ships, 242 tankers, 208 car carriers, 73 bulk carriers, and 49 cruise vessels, underscoring LNG’s accelerating adoption as a transitional fuel. All those, in addition to 751 LNG carriers.

But why use LNG as a marine fuel? Well, LNG is primarily methane (85-95%) with a high energy content of 55.5MJ/Kg and offers around 30% lower CO₂ emissions (TTW) than traditional bunker fuel. However, a major negative impact to using LNG is that methane has a global warming potential (GWP) 29.8 times higher than CO₂ over 100 years—and more than 80 times higher over 20 years. This makes reducing any methane emissions across the entire LNG lifecycle critical.

When used as the fuel in a ship’s engine, a certain percentage of the methane present remains unburnt and can escape to atmosphere. This is known as “methane-slip”. Our data shows that double-digit slip (in g /kWh) can and does occur—often due to engine malfunctions or low-load operation. Beyond combustion, fugitive emissions (leakage) and emergency releases also add to the total methane footprint.

Efforts to mitigate methane slip vary widely—from proactive collaborations with engine manufacturers that achieve 50–70% reductions, to a “do nothing” approach relying solely on EU MRV default slip factors. Under these regulations, default slip values range from 3.1% for dual-fuel medium-speed engines to 0.2% for dual-fuel slow-speed engines. Notably, four-stroke LNG engines make up nearly 30% of all LNG-capable vessels.

While the industry considers future fuels such as, biofuels, renewable bio-methane and e-methanol, these introductions alone will not resolve methane slip in existing methane-fuelled operations. Consequently, equipment manufacturers, shipowners, operators, and regulators are focusing on practical, near-term measures to reduce onboard methane slip at the vessel level—an essential step toward lowering the climate impact of LNG-fuelled shipping.

Across international shipping, there are still no dedicated regulations specifically targeting methane slip. Within the EU’s Fit for 55 package we have the FuelEU Maritime, which includes well-to-wake (WtW) methane slip in its compliance framework. This requires operators to account for the CO₂-equivalent impact of methane across the entire fuel life cycle. We also have the Emissions Trading System (ETS), which already mandates tank-to-wake (TtW) methane slip reporting in CO₂-equivalent terms. Starting in 2026, methane emissions will directly influence ETS allowance requirements, linking methane slip more tightly to trading costs.

Meanwhile, the Global Methane Pledge calls for rapid methane reductions to keep the 1.5°C climate target within reach. Furthermore, the IMO’s 2024 Guidelines on Life Cycle GHG Intensity of Marine Fuels may soon drive stricter measures relating to methane slip. Taken together, these developments signal a future with tighter regulations, stronger enforcement of methane accounting in CO₂-equivalence terms, and a faster pace of innovation to reduce methane slip in shipping.

So, how can methane slip be reduced? There are four key areas starting with:

Engine Design Improvements

Reduce Crevice Volumes: 

  • Redesign piston crowns, cylinder heads, and valve seats to minimize gaps.
  • Use advanced manufacturing tolerances and materials for tighter seals.
  • Exhaust Gas Reduction: Moderates combustion temperatures, improving overall efficiency and reducing unburned fuel.
  • Lambda Control: Real-time monitoring of oxygen levels for precise air-fuel ratio control, preventing incomplete combustion.

Transition to Diesel-Cycle Gas Engines with High-Pressure Gas Injection:

  • Direct High-Pressure Injection: Adopt high-pressure gas injection (HPGI) systems that inject LNG directly into the combustion chamber at high pressures and near the end of the compression stroke.
  • Upgrade engine components to support higher compression ratios and improved ignition control, optimized for HPGI.

Optimize Low-Pressure Dual-Fuel Engines (Otto-Cycle)    

  • Use updated software and hardware to fine-tune gas admission timing and pilot-fuel injection (if applicable).
  • Align ignition timing with real-time load conditions to improve combustion completeness.
  • Adapt piston and cylinder designs specifically for low-pressure gas engines.
  • Incorporate design features—like shaped combustion chambers—to minimize fuel trapping.
  • Employ sensors and electronic controls to continuously monitor combustion quality.
  • Adjust the air-fuel ratio and pilot-fuel quantity in real time to maintain efficient ignition and reduce slip.

After-Treatment Solutions

Install Methane Oxidation Catalysts:

  • Incorporate catalysts into the exhaust system of newbuild ships.
  • Ensure catalysts are maintained and replaced as needed to sustain up to 80% reduction in methane slip.
  • Monitor exhaust temperatures and adjust as necessary to keep catalysts within optimal operating ranges.

Operational Adjustments

Avoid Prolonged Low-Load Gas Operation:

  • Plan voyages and engine use to maintain higher loads when running on LNG.
  • Use operational strategies such as scheduling heavier loads or adjusting speeds to minimize low-load scenarios.

Switch Between Gas and Fuel Oil at Low Loads:

  • Utilize the dual-fuel capability to switch to fuel oil when LNG combustion efficiency drops at low loads.
  • Establish clear operational thresholds for switching based on load conditions and engine performance data.
  • Note that dual-fuel engines often run with a higher pilot fuel percentage to prevent maintenance issues with fuel injectors.

Ensure Proper Maintenance and Engine Optimization:

  • Implement routine inspections and cleaning of fuel injectors, valves, and sensors.
  • Regularly calibrate and tune engine settings such as injection timing and air-fuel ratios for optimal combustion.
  • Train crew in best practices for engine management and maintenance procedures.

Hybrid or Battery Integration

Integrate Hybrid Systems or Batteries:

  • Install batteries or hybrid power systems to assist during periods of low power demand.
  • Use energy storage to maintain engine operation at higher, more efficient loads around 95%.
  • Design the ship’s power management system for seamless interaction between engine and battery, allowing for consistent high-load operation.
  • Plan system integration to account for space, weight, and cost considerations while optimizing fuel and emission performance.

Note: The full article by VPS on methane slip read be found here.

 

Photo credit: VPS
Published: 27 February, 2025

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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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