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Free Container Shipping Cost Calculator
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1 semaine agoon
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Calculate Your Container Costs Freight Rates
Our free container shipping calculator delivers accurate container rate estimates. Just tell us about your shipment to get an estimate from the world’s largest freight rate database. Then join Freightos to compare, book, and manage your upcoming shipments using our freight rate calculator.
Freightos — The Digital Freight Shipping Platform With a Free Freight Quote Calculator
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International Container Shipping Rates
There are many factors that determine the cost of FCL (full container load) container shipping. These factors will impact your shipping container transport cost and ultimately how much it’ll cost to ship a container overseas.
Here are some of the most important ones:
Your Shipping Route
An international container being sent from Shanghai to Los Angeles, for example, is always going to be less costly to ship than one being sent on a less common route.
Size of Your Container
The standard container dimensions are 20 and 40 feet. But there are also other variations, including different sizes and refrigerated units.
Supply and Demand
The global freight industry is dictated by basic economics. During the busiest shipping seasons, container rates go up – sometimes substantially.
Container Rates Today: Shipping Rates Chart and Prices
This data is based on Freightos Terminal.
To protect the underlying data, results here may vary slightly from the actual data points.
You can view live international freight rates, prices, and trends, updated daily from the world’s largest freight rate index on the Freightos Baltic Index (FBX).
Week of December 21st, 2025 Container Shipping Rates and Prices
Ocean Rates – Freightos Baltic Index:
Asia-US West Coast prices (FBX01 Weekly) rose 8% to $2,127/FEU.
Asia-US East Coast prices (FBX03 Weekly) fell 3% to $3,069/FEU.
Asia-N. Europe prices (FBX11 Weekly) rose 11% to $2,707/FEU.
Asia-Mediterranean prices(FBX13 Weekly) rose 15% to $3,850/FEU.
Ocean Freight Rates and Trends:
Transpacific ocean rates continued their Q4 pattern of ups and downs, with Asia–US West Coast prices increasing 8% last week to about $2,100/FEU as carriers increased blanked sailings during a low-demand period.
Despite these fluctuations, carriers have achieved residual gains that have kept transpacific rates above the year lows set in early October.
Asia–US East Coast rates decreased 3% last week, though daily rates this week are up by about $300 to more than $3,350/FEU. Rates may retreat again in the near term, but a more sustained increase is possible as Lunar New Year approaches.
Asia–Europe rates continued to rise, supported by more disciplined capacity management and reports of increasing demand tied to an early start to pre-Lunar New Year orders.
Prices to Northern Europe rose 11% last week to over $2,700/FEU, while Mediterranean rates increased 15% to $3,850/FEU, with daily Mediterranean rates already exceeding $4,000/FEU.
Continued Red Sea diversions are contributing to the early start of pre-Lunar New Year shipping, as shippers seek to avoid longer post-holiday transit delays.
Air Cargo Freight Rates and Trends:
Air cargo demand patterns have shifted following changes to US de minimis rules, with China–US e-commerce air shipments reportedly dropping by up to 50% since the exemption was eliminated for China in May.
Following the elimination of de minimis for all countries, some Chinese e-commerce platforms have redirected their focus toward Europe, where import values have recently doubled.
Overall transpacific air traffic has remained resilient despite lower China–US volumes, supported by growing electronics shipments from Southeast Asia, especially Vietnam, and Taiwan.
China–US airfreight rates have declined from year highs as peak season ends, falling 7% last week to $7.47/kg, with daily rates down to about $6.50/kg.
Southeast Asia–North America air rates are also easing after rising more than 20% since mid-October.
China–Europe air rates are holding around $3.86/kg, well below the $5.00/kg levels seen a year ago, while Southeast Asia–Europe prices are at a year high near $4.15/kg, with daily rates easing.
China – N. America weekly prices fell 7% to $7.47/kg.
China – N. Europe weekly prices rose 6% to $3.71/kg.
N. Europe – N. America weekly prices decreased 1% to $2.51/kg.
This data is based on Freightos Terminal.
To protect the underlying data, results here may vary slightly from the actual data points.
How Much Does It Cost to Ship 20FT and 40FT Containers?
When comparing prices for container shipping and transport, the size of the container will affect the price.
While there are over a dozen different-sized containers, 20-foot (TEU) and 40-foot (FEU) containers are the most frequently used.
20-Foot Container Shipping Costs:
What fits in a TEU will determine the cost of shipping. The cost also depends on the type of goods transported and how efficiently these can be packed and loaded into the container.
The dimensions of a TEU are as follows:
Length: 19.4 ft (5.9 m)
Width: 7.7 ft (2.35 m)
Height: 7.9 ft (2.39 m)
Therefore, the total cubic capacity of a TEU is 1,172 cu ft (33.2 m3) and the payload capacity is 55,126.9 lbs (25,000 kg).
This means that a 20-ft container can generally accommodate 9-10 standard pallets.
40-Foot Container Shipping Costs:
An FEU has double the capacity of a TEU but is not charged at double the price.
If you want to ship a 20-foot container instead of a 40-foot container, it’s worth noting that the latter usually costs just 20-25% more than the former.
These are the dimensions of a FEU:
Length: 39.5 ft (12.03 m)
Width: 7.7 ft (2.35 m)
Height: 7.9 ft (2.39 m)
The total cubic capacity of an FEU is 2,389 cu ft (67.7 m3) and the payload capacity is 61,200 lbs (27,600 kg).
This means you can fit between 20-21 standard pallets in an FEU.
Note that if you’re shipping temperature-sensitive, hazardous, or oversized cargo, you may need a specialized container such as a reefer, open-top, or flat rack.
If you don’t need a full 20′ or 40′ container, you may not need full container load shipping (FCL) and may want to consider less than container load (LCL) shipping. With LCL, you only pay for the space your cargo takes up. One caveat: LCL shipments typically have longer transit times than FCL since they need time for consolidating smaller shipments into a single container.
How Are Container Shipping Prices, Rates & Transport Costs Calculated?
Container shipping rates and prices are determined by the form of the cargo, the mode of transport, the weight of your goods, and the distance and popularity of the delivery destination from the point of origin.
Understanding the total cost of importing or exporting your goods is vital to determining the total landed cost of the goods and what your bottom line will be. Check out the Container Shipping Cost Calculator to help you estimate what it will cost to ship your goods. Once booked, it’s time to see how to track your container.
In addition to base transport costs, shipping quotes often include surcharges such as fuel adjustments (BAF), peak season fees (PSS), terminal handling charges (THC), and currency adjustment factors (CAF). The Freightos Marketplace includes these in your quotes wherever forwarders provide this information, helping you compare more complete pricing.
Your total shipping cost includes components such as pickup from origin, export documentation, origin terminal handling, the ocean leg, import customs, destination terminal handling, and final delivery. On the Freightos Marketplace, you’ll see all of your charges in single quote view, depending on the selected service level and what’s included by the freight provider.
Your costs will also vary depending on the incoterm you choose (e.g. FOB, CIF, DDP), which defines whether the buyer or seller is responsible for each segment of the shipment.
How Much Does It Cost to Ship From China/Central Asia to the United States?
Currently, prices are around $2,100/FEU on the China/Central Asia to North America West Coast route and about $3,350/FEU on the China/Central Asia to North America East Coast route.
Container Shipping Calculator FAQ
Your quote covers all standard transportation costs, but excludes the Freightos Platform Fee (shown at checkout), any disbursement or convenience fees for payment processing, and actual duties and taxes which are calculated at the port of entry.
In order for your goods to clear customs, you’ll need to complete a Power of Attorney form and provide accurate tariff codes and commodity descriptions. Duties and taxes aren’t included in your initial quote because they are calculated at the port of entry. These must be paid before your goods are cleared. If customs flags your shipment for examination, the broker will handle arrangements and pass any additional charges through the platform.
Your freight forwarder must notify you of adjustments and get your approval before proceeding with your shipment.
While Freightos primarily handles general commercial cargo, special shipments may be possible by reaching out to our team for a custom quote.
For special cargo, expect additional handling charges, possible rate adjustments, and requirements for special documentation. You must declare any dangerous materials, and oversized or overweight shipments will need detailed specifications. The platform will notify you if your shipment requires a custom quote instead of an instant quote based on the commodity information you provide.
Your freight forwarder will notify you before storage charges take effect. For shipments with up to 5 paid storage days, charges are added on the platform. Beyond that, the seller invoices you directly off-platform.
The post Free Container Shipping Cost Calculator appeared first on Freightos.
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From Deluges to Dry Beds: How Extreme Weather is Rewriting Logistics Strategy
Published
7 heures agoon
13 juillet 2026By
Historically, supply chain managers viewed extreme weather as a series of isolated, unlinked headaches, a temporary detour here, a delayed container vessel there. But recent events are proving that climate-driven disruptions are no longer isolated events; they are systemic, compounding risks occurring simultaneously. Right now, global logistics are caught in a bizarre paradox of water volatility: inland waterways are concurrently shutting down due to both catastrophic flooding and severe drought.
The Current Snapshot:
In the United States, flash flooding across Missouri and the wider Ohio and Tennessee river valleys has completely knocked out regional road networks, forced emergency evacuations, and pushed the Black River to a projected record crest of 28 feet. Thunderstorms piled on top of each other to dump between 6 and 12 inches of rain across southern Missouri, with some areas near Miaoli receiving nearly 31 inches (80 cm) of downpour. The deluge tore a woman’s home entirely from its foundation, claiming her life, while the Army National Guard had to deploy Black Hawk helicopters to rescue more than 200 children and staff trapped at a summer camp in Lesterville. These slow-moving storms have brought regional last-mile and freight networks to a halt.
Across the Pacific, Typhoon Bavi just battered Taiwan and East China, forcing massive evacuations of over 2 million people and completely disrupting cargo handling and air freight at major hubs like Shanghai, where airlines canceled more than 680 flights. Yet, while parts of the world are drowning, Europe’s most critical commercial artery is choked by a severe mid-summer heatwave. On July 13th, water levels at the critical Kaub chokepoint on the Rhine plummeted to 53cm, well below the 81cm threshold where standard low-water surcharges apply. Freight barges are currently restricted to carrying just 20% of their total capacity, forcing operators to move volumes by individual agreement only. This near-standstill has triggered a massive, expensive migration of freight onto an already maxed-out rail and road infrastructure.
The Strategic Shift: Redundancy is Dead, Dynamic Flex is In
This dual reality underscores a massive trend shaping supply chain management: the shift from static risk planning to dynamic execution. When a primary inland waterway fails, you cannot simply rely on a fixed backup plan, because your backup mode (whether it is rail hubs restricted by local congestion or trucking lanes blocked by flash floods) is likely facing its own climate or operational constraints.
To endure this era of unforeseen climate events, logistics leaders are focusing on three main areas:
Mode Elasticity: Building contractual agility into carrier agreements so that switching from barge to rail, or air to ocean, can happen in hours rather than weeks.
Predictive Visibility Beyond Tier 1: Moving past simple track-and-trace. True resilience requires mapping out how weather events three states over will impact infrastructure, labor availability, and warehouse productivity downstream.
Climate as a Network Design Parameter: Historically, networks were designed almost purely around labor costs, tax incentives, and transit times. Network optimization models must now ingest historical climate data and predictive models as core constraints when choosing warehouse locations and routing strategies.
As the current El Niño cycle threatens to further scramble global rainfall and temperature patterns, the old playbook of waiting out the storm is officially obsolete. Volatility is the new baseline, and the competitive advantage belongs to the networks built to flex.
The post From Deluges to Dry Beds: How Extreme Weather is Rewriting Logistics Strategy appeared first on Logistics Viewpoints.
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Defense Drones Are Becoming an Industrial Supply Chain Race
Published
8 heures agoon
13 juillet 2026By
Ondas’ acquisition of DZYNE shows why competitive advantage in autonomous systems is shifting from technical demonstrations toward component security, modular design, manufacturing scale, and supplier integration.
The defense-drone market is moving from technical experimentation to industrialization.
Companies still need better aircraft, autonomy software, sensors, communications systems, and counter-drone technologies. But as governments prepare to purchase autonomous systems in much larger quantities, competitive advantage will increasingly depend on a different set of capabilities: securing components, expanding production, integrating acquired technologies, and supporting rapidly changing products at scale.
Ondas Holdings’ acquisition of DZYNE Technologies is an indication of that shift.
Ondas announced on July 6 that it had acquired DZYNE, a developer and manufacturer of autonomous aerial systems, surveillance platforms, and counter-UAS technologies. The transaction expands an Ondas portfolio that already includes automated drone operations, autonomous platforms, and systems designed to detect and counter unauthorized aircraft.
The immediate story is one of defense-technology consolidation. The more consequential story is industrial.
As demand for lower-cost autonomous systems grows, success will depend on more than which company develops the most advanced drone. It will depend on which companies can construct resilient supplier networks, standardize components, increase production volumes, manage product complexity, and adapt designs as technologies and operating requirements change.
The defense-drone race is becoming an industrial supply chain race.
From Technical Demonstration to Industrial Production
Defense technology companies have become highly effective at demonstrating new capabilities.
A startup can design a sophisticated autonomous aircraft, complete successful flight tests, and secure an initial government contract. That does not necessarily mean the company can produce thousands or tens of thousands of systems reliably and economically.
Scaling production introduces a different set of challenges.
Manufacturers must secure motors, batteries, cameras, processors, communications modules, navigation systems, electronic assemblies, composite materials, permanent magnets, and specialized sensors. Defense applications may also require component traceability, cybersecurity controls, approved suppliers, domestic-content compliance, and production processes that differ substantially from those used in commercial markets.
A technically successful platform can therefore encounter the same constraints seen across automotive, aerospace, electronics, and industrial-equipment supply chains: long lead times, limited supplier capacity, single-source dependencies, inconsistent quality, and inadequate visibility below the first tier.
Those risks become more serious when demand increases quickly.
The proposed fiscal year 2026 defense budget requested $13.4 billion for autonomy and autonomous systems, including $9.4 billion for unmanned and remotely operated aerial vehicles. The request illustrates the size of the potential demand signal now forming around autonomous defense systems.
Large procurement budgets, however, do not automatically create the industrial capacity required to fulfill them.
A Drone Is Also a Network of Supply Chain Dependencies
The relative simplicity and low unit cost of some small drones can obscure the complexity of the industrial base behind them.
Compared with a conventional military aircraft, an individual drone may be inexpensive and comparatively easy to assemble. Yet its components may come from a globally dispersed and highly concentrated supplier network.
Dependencies can include battery materials, electric motors, rare-earth magnets, semiconductors, carbon-fiber materials, communications equipment, cameras, circuit boards, and lower-level electronic assemblies.
These dependencies create both commercial and strategic risks.
A manufacturer may be able to obtain components economically under normal market conditions but lose access when export controls, trade restrictions, geopolitical tensions, or competing domestic demand intervene. The unavailability of a relatively inexpensive motor, magnet, sensor, or battery component can delay delivery of an entire system.
Research from the Center for Strategic and International Studies has identified rare-earth magnets, carbon-fiber materials, lithium-ion inputs, semiconductors, and other upstream materials as potential chokepoints in the drone industrial base. The analysis also highlights the lack of visibility below many first-tier defense contractors.
The implication is significant.
The strategic value of a drone manufacturer is not limited to its aircraft designs, software, or patents. It also includes its qualified supplier base, access to critical materials, manufacturing processes, contract-production relationships, testing infrastructure, and ability to replace unavailable components without redesigning the entire system.
These capabilities are harder to see than a successful flight demonstration, but they may ultimately determine which companies can deliver at scale.
M&A as Industrial Integration
The Ondas-DZYNE transaction reflects a broader effort to assemble complementary autonomous-system capabilities within larger corporate platforms.
DZYNE adds long-endurance aircraft, smaller autonomous systems, surveillance capabilities, counter-UAS technologies, modular airframe expertise, and established defense-customer relationships. Ondas brings additional autonomous platforms, drone infrastructure, security applications, and corporate resources.
The strategic logic extends beyond expanding the product catalog.
An integrated company may be able to combine engineering teams, share software architectures, consolidate suppliers, increase purchasing leverage, coordinate manufacturing investment, and offer customers a broader group of interoperable systems.
It may also be able to spread the costs of compliance, testing, cybersecurity, government contracting, and business development across a larger revenue base.
These potential advantages are especially important in a market where individual products may change rapidly.
The successful autonomous-defense company may not be the one with a single dominant aircraft. It may be the company with an industrial architecture capable of supporting several types of systems while reusing common components, software, communications technologies, manufacturing processes, and supplier relationships.
That begins to resemble a supply chain platform rather than a traditional aerospace program.
Modular Architecture Becomes a Supply Chain Capability
Autonomous systems are evolving much faster than conventional defense platforms.
New processors, sensors, communications technologies, electronic-warfare systems, navigation capabilities, and software functions can emerge within months. A design optimized for one operating environment may quickly require a different payload, communications module, navigation system, or method of avoiding interference.
Manufacturers therefore need product architectures that support rapid change.
A modular design can allow a company to replace a sensor, processor, battery, motor, or communications module without redesigning the entire aircraft. Standardized interfaces can also make it easier to qualify alternative suppliers when a component becomes unavailable or fails to meet cost, security, or performance requirements.
This is both an engineering strategy and a supply chain strategy.
Modularity can reduce dependence on individual components, support multisourcing, simplify product upgrades, and separate stable elements of a platform from technologies that will change frequently.
It can also reduce the disruption created by export restrictions, obsolescence, supplier failures, and sudden increases in demand.
Companies that manage this effectively will be better positioned to balance technological innovation with manufacturability. Those that do not may find themselves repeatedly redesigning products around unavailable components or operating separate, inefficient supply chains for every platform they develop or acquire.
Consolidation Does Not Automatically Create Scale
Acquisitions can create the appearance of industrial scale without delivering it.
Combining several autonomous-system companies may produce a broad technology portfolio, but it can also create duplicated suppliers, incompatible software, fragmented engineering practices, overlapping products, and multiple low-volume manufacturing processes.
The most important post-acquisition work will therefore occur well below the level of the corporate announcement.
Management will need to determine which components can be standardized, which suppliers can support higher volumes, which manufacturing processes can be shared, and which products should remain operationally independent.
It will also need to decide where vertical integration provides a meaningful advantage.
Some components may be strategically important enough to manufacture internally. Others may be better obtained from specialized suppliers. Still others may require domestic or allied capacity that does not yet exist at an acceptable cost or volume.
The strongest consolidators will not simply accumulate technologies. They will rationalize the industrial systems behind them.
That will require common product-development standards, shared supplier data, coordinated sourcing, manufacturing visibility, and disciplined decisions about which platforms continue to receive investment.
Without that integration, a larger portfolio may simply create a larger collection of low-volume supply chains.
Procurement Must Change Alongside Manufacturing
Manufacturers are only one side of the industrial equation.
Government procurement systems must also adapt to a market in which technologies change quickly and production volume may matter as much as the performance of an individual platform.
Traditional defense purchasing can take years to define requirements, evaluate contractors, select a platform, and establish a long-term program. That approach is difficult to reconcile with autonomous systems that may require frequent software updates, component substitutions, or redesigns based on operational feedback.
The fiscal year 2026 budget discussion itself acknowledged the need for more agile funding across unmanned systems, counter-UAS, and electronic warfare because the technologies and available industry capabilities are evolving rapidly.
The challenge is to increase speed without abandoning security, quality, traceability, interoperability, and operational reliability.
That may require shorter purchasing cycles, continuous testing, modular requirements, larger pools of qualified suppliers, and contracts that allow systems to evolve after initial deployment.
It may also require buyers to evaluate vendors differently.
A successful technical demonstration remains important. But procurement decisions may need to place greater weight on production readiness, supplier resilience, component provenance, manufacturing yield, workforce capacity, and the ability to sustain deliveries over time.
The ability to build 100 systems is not evidence that a company can build 10,000.
Domestic Production Is Both an Economic and Security Objective
U.S. policy increasingly treats domestic drone manufacturing as both a commercial-industrial priority and a national-security concern.
A June 2025 executive order called for expanding domestic drone production, reducing reliance on foreign sources, strengthening critical supply chains, prioritizing compliant American-made systems, and securing the supply chain against foreign control or exploitation.
The objective is clear. Execution will be difficult.
Rebuilding domestic capacity involves more than opening final-assembly plants. A drone assembled in the United States may still depend on imported batteries, motor magnets, semiconductor devices, imaging systems, circuit boards, or raw materials.
A durable domestic strategy must therefore look several tiers into the supply chain.
It must identify which dependencies create unacceptable risk, where allied sourcing is sufficient, where domestic production is economically feasible, and where strategic inventories or long-term purchasing commitments may be necessary.
Demand visibility will be essential.
Suppliers are unlikely to invest in new factories, tooling, automation, and specialized labor based on a sequence of small or uncertain contracts. Government customers may need to provide clearer multiyear demand signals while preserving enough flexibility to avoid locking procurement into technologies that become obsolete.
This creates a difficult balance between scale and adaptability.
Manufacturers need stable demand to invest in capacity. Buyers need enough flexibility to incorporate new technology. The industrial model must support both.
The Emerging Competitive Model
The next generation of autonomous-defense companies will compete across several dimensions simultaneously.
They will compete on technology, but also on cost, speed, manufacturability, component availability, software integration, supplier resilience, and production capacity.
They will need to manage product development like technology companies while operating supply chains more like automotive, electronics, or industrial-equipment manufacturers.
That combination will favor companies capable of building common architectures across multiple systems.
It will also favor companies that can convert acquisitions into operational integration rather than allowing each acquired business to remain a separate collection of products, suppliers, engineering standards, and manufacturing processes.
The Ondas-DZYNE transaction is unlikely to be the last of its kind.
As autonomous systems move from specialized programs toward broader deployment, larger companies will continue acquiring technologies, engineering talent, production capabilities, and supplier relationships that would take years to build internally.
But assembling a portfolio is not the same as building an industrial system.
The winners will be the companies that standardize components, rationalize suppliers, design for substitution, integrate manufacturing, and convert rapidly changing technology into reliable production volume.
The next phase of the defense-drone market will not be determined by innovation alone.
It will be determined by who can industrialize it.
The post Defense Drones Are Becoming an Industrial Supply Chain Race appeared first on Logistics Viewpoints.
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Logistics Viewpoints Expands Its Supply Chain Resource Library
Published
9 heures agoon
13 juillet 2026By
The growing collection now includes strategic white papers, market-research executive summaries, advisory guides, and supplier visibility programs spanning AI, energy, cybersecurity, transportation, warehousing, and global trade.
As of July 2026, Logistics Viewpoints offers more than two dozen downloadable resources for supply chain executives, technology providers, and industry professionals.
The library has expanded beyond traditional market research to include strategic white papers on emerging operating issues, executive summaries covering major supply chain technology markets, guides to ARC Advisory Group research and advisory services, and commercial programs designed to help suppliers reach a targeted industry audience.
Together, these materials provide a practical starting point for organizations evaluating new technologies, assessing market opportunities, strengthening supply chain resilience, or building greater visibility in the market.
Strategic Supply Chain White Papers
The strategic white-paper collection focuses on issues that are reshaping how supply chains are designed, managed, and governed.
AI in the Supply Chain: Architecting the Future of Logistics with A2A, MCP, and Graph-Enhanced Reasoning
This paper examines the emerging architecture behind enterprise AI systems, including agent-to-agent communication, Model Context Protocol, knowledge graphs, and graph-enhanced reasoning.
Download the AI architecture white paper
AI in the Supply Chain: From Architecture to Execution
The second AI paper moves from architecture to deployment. It explores the decision intelligence layer needed to connect AI systems with enterprise data, workflows, governance, and supply chain execution platforms.
Download AI in the Supply Chain: From Architecture to Execution
Oil & Gas in the Supply Chain
Oil and gas remain critical inputs across transportation, manufacturing, agriculture, chemicals, and industrial production. This paper examines how organizations can build more resilient and responsible supply chains amid geopolitical risk, price volatility, infrastructure constraints, and environmental pressure.
Download Oil & Gas in the Supply Chain
Cyber Resilience in the Supply Chain
This paper examines how organizations can strengthen supply chain resilience against cyber threats that extend across internal systems, connected equipment, suppliers, logistics partners, and technology providers.
Download Cyber Resilience in the Supply Chain
Sustainability in the Supply Chain
The sustainability paper explores how companies can balance environmental goals with operational efficiency, resilience, supplier management, and regulatory compliance.
Download Sustainability in the Supply Chain
Energy in the Supply Chain
Energy cost, availability, and reliability influence transportation, manufacturing, warehousing, and network design. This paper considers how supply chains can better manage energy volatility and changing infrastructure requirements.
Download Energy in the Supply Chain
Connected Vehicles and V2X in the Supply Chain
This paper examines how connected vehicles, infrastructure, devices, and logistics platforms may improve transportation visibility, coordination, and responsiveness.
Download the Connected Vehicles and V2X white paper
Market-Research Executive Summaries
The Logistics Viewpoints library also includes executive summaries of major supply chain software and automation markets. These downloads provide concise introductions to market structure, technology capabilities, adoption patterns, and competitive dynamics.
Available summaries include:
Supply Chain Planning Global Outlook
Transportation Management Systems
Transportation Execution Systems
Automated Storage and Retrieval Systems
Omnichannel Order Management Systems
Global Trade Management Solutions
Global Trade Compliance Systems
Supply Chain Management Market Opportunity
These resources are particularly useful for executives seeking a concise overview before beginning a more detailed technology evaluation or market assessment.
Research and Advisory Guides
Organizations that require deeper analysis can also download guides describing ARC Advisory Group research and advisory services.
Custom Market Research Guide
This guide explains how tailored research can support market sizing, competitive analysis, customer research, technology assessments, and strategic planning.
Download the Custom Market Research Guide
Annual Contract Advisory Service Overview
The annual advisory service provides ongoing access to analysts, market insight, research, and strategic guidance.
Download the Annual Contract Advisory Service Overview
Voice of the Customer Survey Guide
This guide explains how structured customer research can help suppliers understand buyer priorities, customer satisfaction, market perception, and unmet needs.
Download the Voice of the Customer Survey Guide
Standard Market Research Report Guide
This guide outlines the structure, methodology, and business applications of ARC Advisory Group’s standard market research reports.
Download the Standard Market Research Report Guide
Sponsorship and Supplier Visibility Programs
Logistics Viewpoints also offers several programs for technology providers and service companies seeking greater visibility among supply chain executives.
Available program guides include:
Logistics Viewpoints Sponsorship Program
ARC Industry Forum Sponsorship
These programs combine industry content, analyst participation, and targeted audience access to help suppliers communicate their market position and expertise.
A Broader Supply Chain Knowledge Platform
The expansion of the Logistics Viewpoints resource library reflects a broader shift in the publication’s role.
Logistics Viewpoints remains an editorial platform covering supply chain technology, market developments, and operating strategy. The growing download library extends that role by giving readers access to more structured research, strategic frameworks, market summaries, and practical service guides.
Executives can use the library to explore emerging issues such as artificial intelligence, cyber resilience, energy, and connected transportation. They can also access established research on planning, transportation, warehousing, automation, order management, and global trade.
Technology suppliers can use the commercial guides to evaluate available research, advisory, webinar, podcast, sponsorship, and supplier visibility opportunities.
The collection will continue to expand as new white papers, market summaries, and program materials are published.
Readers can visit the Logistics Viewpoints White Papers library for the latest additions.
The post Logistics Viewpoints Expands Its Supply Chain Resource Library appeared first on Logistics Viewpoints.
From Deluges to Dry Beds: How Extreme Weather is Rewriting Logistics Strategy
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