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China’s first domestically developed Ultramax methanol dual-fuel bulker pair named

SDARI says two 65,000 dwt methanol dual-fuel bulk carriers, “LEM AZALEA” and “LEM PLUMERIA”, were named on 27 July at Guangzhou’s Nansha district.

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China's first domestically developed Ultramax methanol dual-fuel bulker pair named

Shanghai Merchant Ship Design and Research Institute (SDARI) on Wednesday (29 July) said two 65,000 dwt methanol dual-fuel bulk carriers, LEM AZALEA and LEM PLUMERIA, were named on 27 July at Guangzhou’s Nansha district.

The vessels were designed by the SDARI, part of China State Shipbuilding Corporation (CSSC), for Cyprus-based Lemissoler Navigation and built by CSSC Huangpu Wenchong Shipbuilding.

According to SDARI, the vessels are the institute’s first methanol dual-fuel bulk carrier design and China’s first domestically developed Ultramax methanol dual-fuel bulk carriers.

The bulk carriers are equipped with a methanol dual-fuel propulsion system comprising a conventional fuel tank and two dedicated high-capacity methanol fuel tanks, allowing operators to switch flexibly between fuels while meeting current and anticipated IMO requirements on carbon reduction and sulphur emissions.

The vessels are also fitted with an auxiliary lithium battery system to supply onboard lighting power, reducing overall energy consumption.

Compared with conventionally fuelled bulk carriers, the methanol dual-fuel design is expected to significantly reduce carbon dioxide, sulphur oxide, nitrogen oxide and particulate matter emissions.

SDARI said the project fills a gap in China’s domestically developed methanol dual-fuel bulk carrier segment in the 65,000 dwt class and provides a mature and scalable design that can be replicated for future vessels.

 

Photo credit: CSSC Huangpu Wenchong Shipbuilding
Published: 3 August, 2026

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GCMD, BCG: Engine choices today to shape shipping’s fuel pathways through 2050

New fuels could reach around 60% of fleet energy consumption under a sufficiently strong carbon price signal, modelled at USD 700/tCO2e by 2050.

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GCMD, BCG: Engine choices today to shape shipping’s fuel pathways through 2050

With vessels operating for 25 to 30 years and only around 4% of the fleet renewed annually, newbuild decisions made over the coming decade will establish much of the engine capacity available in 2050, Global Centre for Maritime Decarbonisation said on Thursday (17 September). 

Yet having the capacity to consume a new fuel does not guarantee its uptake. Dual-fuel engines allow shipowners to switch between conventional fuels and the selected new fuel as economics and regulations evolve; continued fuel competitiveness is therefore critical to what vessels ultimately consume.

These are among the findings of Navigating the maritime fuel transition: How fuel economics, regulations, and fleet decisions shape the future bunkering landscape, based on a model jointly developed by the GCMD and Boston Consulting Group (BCG).

The model illustrates this dynamic in its base scenario. With the Tier-2 penalty under the IMO Net-Zero Framework held at USD 380/tCO2e through 2050, methanol dual-fuel engines account for around 10% of fleet engine capacity in 2050, but methanol represents just 2% of fleet energy consumption. With conventional fuels remaining more economical under this regulatory regime, methanol dual-fuel vessels continue to operate on fuels cheaper than methanol (Figure 1).

A global carbon price of USD 700/tCO2e materially changes the transition

The base scenario demonstrates how fuel economics can limit uptake even when vessels have the capacity to use new fuels. This picture changes if the IMO Tier-2 penalty rises to USD 700/tCO2e by 2050, at which point new fuels, including dropins, reach approximately 61% of fleet energy consumption (Figure 1).

By contrast, EU regulations alone will not drive a marked global shift, as they cover only around 20% of international shipping’s energy demand.

Overall cost of using e-methanol and e-ammonia is near parity

While a stronger global carbon price can accelerate the shift towards new fuels, the model does not point to a clear cost winner between e-methanol and e-ammonia.

E-ammonia’s production cost advantage is largely offset by higher logistics costs arising from its toxicity, including specialised crew training, larger exclusion zones, and more complex bunkering. As a result, the overall cost (Figure 2) of using e-ammonia and e-methanol is near parity through to 2050.

Fig 2 Constituents of levelised cost of fuel use

Professor Lynn Loo, CEO of GCMD, said: “Many vessels ordered over the coming decade will still be operating in 2050. Shipowners are therefore making long-lived engine choices before the relative economics of future fuels are clear. 

“Our modelling puts into perspective just how difficult closing the cost gap between new and conventional fuels will be. The carbon price required to close this gap is substantial. And achieving it will be particularly challenging in today’s geopolitical environment. Understanding the signposts that could change these economics will be critical to the decisions the industry makes today.”

Anand Veeraraghavan, Managing Director & Senior Partner at BCG, said: “The maritime fuel transition is being shaped as much by policy and cost uncertainty as by technology readiness. 

“Rather than offer a single prediction, our approach with GCMD maps how sensitive each fuel pathway’s competitive position is to a handful of critical variables — policy scenarios, key cost drivers, and potential restrictions. Our hope is that this gives shipowners, fuel suppliers, port operators, and infrastructure investors a practical tool to stress-test their own fuel strategies as conditions change.”

 

Photo credit: Global Centre for Maritime Decarbonisation
Published: 18 September, 2026

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SGMF releases first ISO-compliant Life Cycle Assessment of methanol as a marine fuel

Study evaluates 15 methanol production pathways and finds that methanol produced using renewable energy sources can deliver substantial emissions reductions.

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RESIZED CHUTTERSNAP on Unsplash

SGMF on Wednesday (16 September) has published its latest Life Cycle Assessment (LCA) on methanol as a marine fuel, highlighting the significant greenhouse gas (GHG) reduction potential of renewable and synthetic methanol production pathways.

The study evaluates 15 methanol production pathways and finds that methanol produced using renewable energy sources can deliver substantial emissions reductions, reinforcing its potential role in shipping’s decarbonisation journey.

The publication follows SGMF’s third edition LNG Life Cycle Assessment, released earlier this year, and its inaugural ammonia LCA, published in 2024. Together, the three studies provide stakeholders with a comprehensive, science-based comparison of the emissions performance of key alternative marine fuels.

The methanol LCA study was conducted by WSP and consistent with earlier SGMF’s studies, this one is critically peer reviewed by industry experts and leading academics and covers multiple pathways, reflecting the distinct carbon intensities of each one. 

The emissions calculations are based on the performance of a wide range of engine types, including medium-speed 4-stroke and low-speed 2-stroke engines.

SGMF noted that LCAs provide a snapshot of industry performance at a specific point in time. 

Given the rapid pace of innovation in alternative fuels, the organisation said regular updates are necessary to ensure future studies accurately reflect technological developments and the latest GHG intensity data.

The report also recognised that a range of additional production-specific pathways, including co-processing approaches, could offer further emissions reduction opportunities and may warrant further assessment.

Mark Bell, General Manager and COO of SGMF, said: “SGMF is the only fuel-agnostic NGO with a proven track on providing clear and fact-based information to the maritime industry, covering technical and environmental aspects of future marine fuels.

“We therefore take pride in being the first organisation that conducted a high-quality full LCA on methanol as a marine fuel, complementing our portfolio of marine fuel LCA’s.”

Note: The full LCA report on methanol as a marine fuel can be found here

Related: SGMF’s LCA finds up to 29% TtW GHG emissions reductions when using LNG bunker fuel

 

Photo credit: CHUTTERSNAP from Unsplash
Published: 17 September, 2026

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Singapore: Bunker fuel sales down by 4% on year in August 2026

4.77 million metric tonnes of various marine fuel grades were delivered at the world’s largest bunkering port in August, up from 4.97 million mt recorded during the similar month in 2025, according to MPA.

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Singapore: Bunker fuel sales down by 4% on year in August 2026

Sales of marine fuel at Singapore port fell by 4% on year in August 2026, according to data from the Maritime and Port Authority of Singapore (MPA).

In total, 4.77 million metric tonnes (mt) (exact 4,772,700 mt) of various marine fuel grades were delivered at the world’s largest bunkering port in August, up from 4.97 million mt (4,965,300 mt) recorded during the similar month in 2025.

Deliveries of marine fuel oil, low sulphur fuel oil, ultra low sulphur fuel oil, marine gas oil and marine diesel oil in August (against on year) recorded respectively 2.1 million mt (11.1% from 1.89 million mt), 2.19 million mt (-12.4% from 2.50 million mt), zero (from zero), zero (-100% from 1,800 mt) and zero (from zero).

Bunker Sales

Bio-blended variants of marine fuel oil, low sulphur fuel oil, ultra low sulphur fuel oil, marine gas oil and marine diesel oil in August, (against on year) recorded respectively 8,700 mt (-74.9% from 34,700 mt), 47,900 mt (-48.9% from 93,800 mt), zero (from zero), zero (from zero) and zero (from zero). B100 biofuel bunkers, introduced in February last year, recorded 800 mt (-83.3% from 4,800 mt). 

LNG and methanol sales were 58,600 mt (-12.5% from 67,000 mt) and zero (from zero) respectively. There were no recorded sales of ammonia for the month and so far since 2025.

 

Photo credit: Maritime and Port Authority of Singapore
Published: 15 September, 2026

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