An Introduction to Ballard Power Systems Company Reviews
Ballard Power Systems is a Canadian company specializing in fuel cell technology. They are known for their work in the fuel cell industry, particularly in the development of hydrogen fuel cells for various applications, including transportation and stationary power.
Ballard Power Systems is a leading Canadian company at the forefront of fuel cell technology. With a strong presence in the global market, the company has garnered significant attention from both investors and customers. Reviews of Ballard Power Systems Company provide valuable insights into its products, services, and overall performance in the field of hydrogen fuel cells.
These reviews often cover a range of topics, including the company’s technological innovations, environmental impact, financial stability, and customer experiences with their products. Whether you’re considering investing in the company or interested in their sustainable energy solutions, reading Ballard Power Systems Company reviews can help you make informed decisions and gain a better understanding of their reputation and performance.
Ballard Power Systems History
Ballard Power Systems is a Canadian company with a significant history in the development and advancement of fuel cell technology.
Here’s a brief overview of their history:
Foundation (1979)
The company was founded in 1979 as Ballard Research Inc. by Dr. Geoffrey Ballard and Keith Prater. Their initial focus was on lithium batteries, but they soon shifted their attention to proton exchange membrane (PEM) fuel cells.
Fuel Cell Development (1983-1990s)
In the 1980s and 1990s, Ballard made substantial progress in fuel cell development. They played a pivotal role in advancing PEM fuel cell technology, which is now widely used in various applications.
Partnerships and Alliances (1990s-2000s)
Ballard formed strategic partnerships with major companies, including Daimler, Ford, and several others, to collaborate on fuel cell projects. These partnerships helped drive the development and commercialization of fuel cell vehicles.
Commercialization (2000s-Present)
The company has continued to work on making fuel cell technology more commercially viable. They have developed fuel cell products for various applications, including buses, trucks, and backup power systems.
Global Reach
Over the years, Ballard Power Systems expanded its operations internationally, establishing a presence in Europe and Asia. They have played a significant role in advancing the use of hydrogen as a clean energy source.
Sustainable Transportation
Ballard has been a key player in the development of fuel cell-powered buses and commercial vehicles, contributing to the growth of hydrogen fuel cell transportation.
Ongoing Innovation
The company remains committed to research and development in fuel cell technology, focusing on improving efficiency and reducing costs to make fuel cells more competitive in the energy industry.
Ballard Power Systems Company Profiles
Here’s a brief company profile of Ballard Power Systems:
Company Name: Ballard Power Systems Inc.
Founded: 1979
Key People
– Randy MacEwen (President and CEO)
– Tony Guglielmin (CFO)
Overview
Ballard Power Systems is a leading global provider of clean energy solutions. The company specializes in the development and commercialization of hydrogen fuel cell technology. They are known for their work in advancing proton exchange membrane (PEM) fuel cells, which have a wide range of applications in transportation, industrial, and stationary power generation.
Key Areas of Expertise
Transportation
Ballard Power Systems is a key player in the development of hydrogen fuel cell technology for various transportation applications. This includes fuel cell buses, trucks, trains, and marine vessels. They work with major automakers and transportation companies to promote clean and sustainable mobility solutions.
Industrial and Stationary Power
The company provides fuel cell products for industrial and stationary power applications, offering reliable and environmentally friendly power solutions for a range of industries, including backup power and distributed energy generation.
Hydrogen Production
Ballard Power Systems also focuses on hydrogen production technologies, contributing to the growth of the hydrogen economy by enabling the production of clean hydrogen for use in fuel cells.
Global Reach
Ballard has a global presence, with operations and partnerships in North America, Europe, and Asia. Their products and solutions are used worldwide, with a particular emphasis on regions embracing clean energy and hydrogen infrastructure.
Sustainability and Innovation
The company is committed to advancing clean energy and reducing greenhouse gas emissions. They continue to invest in research and development to improve fuel cell efficiency, reduce costs, and promote the adoption of hydrogen as a clean energy source.
Headquarters
Burnaby, British Columbia, Canada
Ballard Power Systems’ headquarters is located in Burnaby, British Columbia, Canada.
Here is the address:
Ballard Power Systems Inc.
9000 Glenlyon Parkway
Burnaby, BC V5J 5J8
Canada
Ballard Power Systems Visions and Missions
Here’s the vision and mission of Ballard Power Systems:
Vision
“Ballard Power Systems’ vision is to create a sustainable and zero-emission future by leading in the development and commercialization of hydrogen fuel cell technology. We aspire to be at the forefront of the clean energy revolution, driving innovation and providing solutions that reduce greenhouse gas emissions and improve air quality.”
Mission
Ballard Power Systems is dedicated to delivering innovative and reliable hydrogen fuel cell solutions that address the world’s pressing energy and environmental challenges.
Ballard Power Systems Mission is to:
1. Enable Clean Mobility: We aim to revolutionize transportation by providing fuel cell solutions that power a wide range of vehicles, from buses and trucks to trains and ships, reducing emissions and enhancing efficiency.
2. Advance Industrial and Stationary Power: We are committed to offering clean energy alternatives for various industrial and stationary power applications, helping industries reduce their carbon footprint and improve sustainability.
3. Promote Hydrogen Economy: We strive to play a pivotal role in advancing the adoption of hydrogen as a clean and sustainable energy carrier, supporting the development of a global hydrogen economy.
4. Drive Innovation: We invest in research and development to continuously improve our fuel cell technology, making it more cost-effective and efficient, and thereby accelerating the transition to a hydrogen-based future.
5. Deliver Value to Stakeholders: We are dedicated to creating value for our customers, partners, shareholders, and employees by providing cutting-edge, environmentally friendly solutions that contribute to a cleaner and more sustainable world.
Ballard Power Systems Manufacturer’s
Ballard Power Systems is primarily known for its role in the development and commercialization of hydrogen fuel cell technology, but the company itself does not manufacture vehicles or equipment that directly use fuel cells. Instead, they provide fuel cell stacks and systems to various original equipment manufacturers (OEMs) and partners.
These OEMs and partners integrate Ballard’s fuel cell technology into their products.
Here are some examples of manufacturers and industries that have used Ballard’s fuel cell technology:
1. Automakers: Companies like Daimler, Ford, and Honda have used Ballard’s fuel cell stacks in their fuel cell electric vehicles (FCEVs).
2. Commercial Vehicle Manufacturers: Manufacturers of buses, trucks, and other commercial vehicles have integrated Ballard’s fuel cell technology into their products to create zero-emission vehicles.
3. Industrial Equipment: Various industrial equipment manufacturers have adopted Ballard’s fuel cell technology for applications like forklifts and material handling equipment.
4. Marine Industry: Companies in the marine industry have explored the use of fuel cell systems developed by Ballard for hybrid and electric propulsion systems on boats and ships.
5. Rail Transportation: Some rail transportation companies have incorporated fuel cell technology to power trains and rail vehicles.
6. Backup Power and Stationary Power Generation: Ballard’s fuel cell systems have been used in stationary and backup power systems for applications such as data centers and critical infrastructure.
Sustainability in Ballard Power Systems
Sustainability is a key focus for Ballard Power Systems, and they are committed to promoting clean and environmentally friendly energy solutions.
Here are some ways in which sustainability is integrated into the company’s operations:
1. Clean Energy Solutions: Ballard specializes in the development of hydrogen fuel cell technology, which is a clean and sustainable energy source. Hydrogen fuel cells produce electricity with zero emissions, making them an environmentally friendly alternative to traditional fossil fuels.
2. Reducing Greenhouse Gas Emissions: The use of Ballard’s fuel cell technology in various applications, such as transportation and stationary power generation, helps reduce greenhouse gas emissions. This contributes to mitigating climate change and improving air quality.
3. Advancing the Hydrogen Economy: Ballard is actively involved in promoting the growth of the hydrogen economy. By providing fuel cell solutions for a range of industries and applications, they play a role in establishing hydrogen as a viable and sustainable energy carrier.
4. Innovation and Research: The company invests in research and development to improve the efficiency and cost-effectiveness of fuel cell technology. This innovation is crucial for making fuel cells more accessible and competitive in the market.
5. Global Reach: Ballard Power Systems operates internationally, working with partners and customers around the world to expand the use of clean energy solutions.
6. Corporate Responsibility: The company likely has corporate responsibility and sustainability initiatives in place to ensure that their own operations are conducted in an environmentally responsible manner.
7. Compliance and Standards: Ballard likely adheres to environmental and sustainability standards and regulations in the regions where they operate.
Products of Ballard Power Systems
Ballard Power Systems specializes in the development and production of hydrogen fuel cell technology for various applications.
Here are some of their key products:
1. Fuel Cell Stacks: Ballard designs and manufactures fuel cell stacks that are the core components of fuel cell systems. These stacks come in various sizes and power outputs to suit different applications, from small portable devices to heavy-duty transportation.
2. Modules and Systems: Ballard offers complete fuel cell modules and systems that integrate their fuel cell stacks with balance of plant components, making it easier for OEMs and partners to incorporate fuel cell technology into their products. These systems are used in buses, trucks, and other vehicles.
3. Fuel Cell Powertrains: Ballard has developed fuel cell powertrains designed for use in commercial vehicles, including buses and trucks. These powertrains provide zero-emission propulsion for a range of applications.
4. Fuel Cell Products for Material Handling: The company produces fuel cell products for material handling equipment, such as forklifts, providing efficient and clean power solutions for warehouses and distribution centers.
5. Marine Fuel Cell Solutions: Ballard’s fuel cell systems are used in the marine industry for applications such as hybrid or electric propulsion systems in boats and ships.
6. Backup and Stationary Power: Ballard offers fuel cell products for stationary power generation and backup power application.
Future of Ballard Power Systems
Here is some insights into the potential directions the company may take based on industry trends and their areas of expertise:
Continued Growth in Hydrogen Economy
Ballard Power Systems is well-positioned to benefit from the growing interest in hydrogen as a clean and sustainable energy carrier. The company may continue to play a significant role in advancing the hydrogen economy, especially as governments and industries seek to reduce carbon emissions.
Expansion in Transportation
The use of hydrogen fuel cells in transportation, including buses, trucks, trains, and even passenger vehicles, is expected to grow. Ballard may expand its product offerings and partnerships in this sector.
Technological Advancements
The company is likely to invest in research and development to enhance the efficiency and cost-effectiveness of fuel cell technology. This includes improving the performance and durability of fuel cell stacks.
Global Reach
Ballard may further expand its global presence by partnering with companies and organizations in regions with a strong commitment to clean energy and hydrogen infrastructure.
Diversification
While transportation remains a key focus, Ballard may explore new applications for fuel cell technology, such as in the aerospace industry or distributed energy generation.
Environmental Initiatives
The company is likely to continue its commitment to sustainability and environmental responsibility, aligning its strategies with global efforts to combat climate change.
Conclusion for Ballard Power Systems Company Reviews
Ballard Power Systems is a Canadian company with a strong reputation in the field of hydrogen fuel cell technology.
Their commitment to clean energy solutions and advancements in fuel cell technology has garnered attention from various industries, including transportation and stationary power generation.
Their focus on reducing greenhouse gas emissions, their contributions to the growth of the hydrogen economy, and their partnerships with leading manufacturers and organizations make Ballard Power Systems a prominent player in the transition to a cleaner and more sustainable energy future.
With ongoing research and development efforts, the company is poised to continue making strides in fuel cell technology, potentially expanding into new markets and applications in the years to come.
https://www.exaputra.com/2023/11/ballard-power-systems-company-reviews.html
Renewable Energy
From RFK — Sr.

Renewable Energy
The IEC Standard That’s Costing Wind Farms Millions (And the Industrial Fix That Already Exists)
Weather Guard Lightning Tech
The IEC Standard That’s Costing Wind Farms Millions (And the Industrial Fix That Already Exists)
How proven industrial technology exposed a fundamental flaw in wind turbine lightning protection – and what every wind professional needs to know about it
The Phone Call That Unintentionally Created a Case Study
This scene plays out in O&M buildings across the US from March through November; it starts when an early-morning call comes into the operations center of a large wind farm.
“We’ve got more lightning damage,” the site supervisor reports. “CAT 4 damage, about 15 meters down from the tip. That’s the third one this month.”
“We need to shut it down and call a ropes team.”
When the O&M supervisor pulls up the damage reports from the past year, something doesn’t add up. According to IEC 61400-24 standards – the international specification that governs wind turbine lightning protection – nearly all lightning damage should occur within 2 meters of the blade tip.
But the operational data tells a different story entirely.

The Multi-Million Dollar Problem Nobody’s Talking About
Often, when operators investigate their lightning blade damage, what they find in their data runs contrary to what the experts predict. This is why Weather Guard collects real lightning data from the field.
The examples cited in this study were documented on eight sites in Texas and Oklahoma that we monitored in the summer of 2024. Their GE Vernova turbines, equipped with the industry-standard (IEC standard LPL1 certified) LPS system, had experienced damage patterns that completely contradicted engineering specifications. According to the standards:
- 71-99% of damage is expected to be seen within 2 meters of the blade tip
- Only 4% of damage will occur beyond 10 meters from the tip
Here’s what was actually happening:
- Only 45.6% of damage was within 2 meters of tip
- 28.5% of damage occurred between 2 and 10 meters from the tip, and
- 25.9% of damage beyond 10 meters from the tip
That’s a massive increase in the most expensive type of damage, impacting spar caps and shear webs that require $150,000 repairs and months of unanticipated downtime.
What the operations team was seeing wasn’t unusual. Across the industry, wind professionals see the same disturbing patterns, but few understand what the data really shows – and it’s an expensive problem.
How Aerospace Engineers Fixed the Same Problem
While wind turbine manufacturers currently struggle with this problem, aerospace engineers already solved it in other critical applications. Major airplane manufacturers including Boeing, Airbus, Gulfstream, and Embraer have been using an advanced lightning protection solution for years with proven results.
The “secret” solution? StrikeTape Lightning Diverters.
Instead of trying to force lightning to attach at specific points (the wind turbine approach), aerospace engineers guide lightning energy along controlled pathways that protect critical structures.
That’s exactly what StrikeTape does. The same technology that’s proven in aerospace applications has been adapted to provide the same protection for wind turbine blades.
The Study That Shook the Industry
When RWE, the German energy giant, decided to test StrikeTape at one of their US wind farms, they unknowingly initiated one of the most important lightning protection studies in wind energy history.
In 2024, Weather Guard analyzed operational data from eight wind farms across Texas and Oklahoma – all using GE Vernova turbines, all in similar lightning-prone environments. Seven farms used the industry-standard GE Vernova SafeReceptor ILPS protection. One farm in West Texas applied StrikeTape to drive lightning towards the GE Vernova receptor system.
The results were stunning.
StrikeTape-protected site:
- 74 lightning events
- 3 damage incidents
- 4.0% damage rate
Seven conventionally-equipped farms:
- 2,038 lightning events
- 415 damage incidents
- 20.4% average damage rate
StrikeTape achieved an 80.4% reduction in lightning damage compared to the seven nearby wind farms.
While the collected data is dramatic enough to be surprising, the results make sense considering how traditional lightning protection for wind turbines is designed, and why it doesn’t work the way it should.
Why Traditional Lightning Protection Is Fundamentally Flawed
To understand why this matters, let’s walk through how wind turbine lightning protection was developed, and how it currently works.
The SafeReceptor ILPS system, installed on virtually every LM Wind Power blade since 2011, uses a two-receptor approach. The idea is simple: attract lightning to specific points on the blade tip, then conduct the energy safely to ground through insulated pathways. The theory, on paper, is brilliant.
The standard system is:
- IEC61400-24 Level 1 certified
- Validated by Germanischer Lloyd
- Designed from the results of 90,000+ lightning-protected blades
- Ideally ILPS would intercept >98% of lightning strikes
- Withstands 200kA strikes
In reality, it’s fallen short. Spectacularly.
Why Traditional Lightning Protection Is Fundamentally Flawed
To understand why this matters, let’s walk through how wind turbine lightning protection was developed, and how it currently works.
The SafeReceptor ILPS system, installed on virtually every LM Wind Power blade since 2011, uses a two-receptor approach. The idea is simple: attract lightning to specific points on the blade tip, then conduct the energy safely to ground through insulated pathways. The theory, on paper, is brilliant.
The standard system is:
- IEC61400-24 Level 1 certified
- Validated by Germanischer Lloyd
- Designed from the results of 90,000+ lightning-protected blades
- Ideally ILPS would intercept >98% of lightning strikes
- Withstands 200kA strikes
In reality, it’s fallen short. Spectacularly.
The problem isn’t that the system doesn’t work – it’s that it’s optimized for the wrong type of lightning. Independent research using eologix-ping lightning strike sensors on wind turbines reveals something shocking:
Lightning strikes that cause damage average only -14kA.
These lower-amplitude strikes slip past traditional protection systems and hit blades in structurally critical areas far from the intended attachment points. These strikes cause damage that “doesn’t fit” the type we expect to see, but in fact, makes perfect sense – and costs the industry millions.
The $2.4 Million Math Problem
Let’s talk about what this means in dollars and cents.
Traditional Lightning Protection (Industry Average):
- Damage rate: 20.4% of lightning events
- Average cost per incident: $160,000 (repair + downtime)
- For 100 lightning events: $3,264,000 in damage costs
StrikeTape Protection (RWE Sand Bluff Performance):
- Damage rate: 4.0% of lightning events
- Average cost per incident: $160,000
- For 100 lightning events: $640,000 in damage costs
Net savings: $2,624,000 per 100 lightning events
And here’s the kicker: StrikeTape installs in just 15-30 minutes per blade, requiring no special equipment. It doesn’t void warranties, and regulatory approval is not required.
Field-Proven Success
StrikeTape isn’t an experimental technology; it’s based on lightning protection systems that have proven effective in critical industrial applications.
How StrikeTape Works
Segmented lightning diverters like StrikeTape consist of a series of small metal segments mounted on a flexible, non-conductive substrate with small gaps between each segment. When lightning approaches, the diverter creates an ionized channel in the air above the surface. This channel provides a preferred path for lightning, directing it safely toward the blade’s LPS receptors.
Lightning doesn’t flow through the diverter itself, as it would in a solid conductor, but instead jumps from segment to segment through the air gaps. This “stepping” action through ionized air channels greatly reduces the amount of destructive heat and current that would otherwise pass through the blade structure.



Current industrial users include
- Boeing
- Airbus
- Gulfstream
- Embraer
- SpaceX
Instead of trying to outsmart lightning, it gives lightning what it wants: the path of least resistance.
When adapted for wind turbines, StrikeTape installs near the existing tip receptors on both the pressure and suction sides of blades. It doesn’t replace the SafeReceptor system; it makes it work better.
The Industry Leaders Who Have Already Adopted
Word about StrikeTape’s performance is spreading quickly through the wind industry. Major operators are implementing the technology.
US Wind Energy Operators:
- Ørsted
- RWE
- Invenergy
- American Electric Power (AEP)
- BHE Renewables
- NextEra
Turbine Manufacturers:
- Siemens Gamesa
- GE Vernova
- Suzlon
These aren’t companies that take risks with unproven technology. They’re adopting StrikeTape because the technology is proven, and the data is undeniable.
What This Means for Wind Professionals
If you’re managing wind assets, StrikeTape can fundamentally change how you think about lightning risk.
The traditional approach:
- Trust that IEC 61400-24 certification means real-world performance
- Accept 20.4% damage rates as “normal”
- Budget for expensive repairs as a cost of doing business

The StrikeTape approach:
- Reduce damage rates to <4.0% with proven technology
- Save substantial amounts annually on lightning damage
- Install during routine maintenance windows
- Benefit from proven industrial reliability
The Uncomfortable Truth About Industry Standards
Here’s what’s really uncomfortable about this story: the industry has been relying on standards that don’t reflect real-world performance.
IEC 61400-24 testing occurs in laboratory conditions with specific strike parameters. But those conditions don’t match what’s actually happening in the field, where lower-amplitude strikes are causing the majority of damage.
The wind industry isn’t unique in this regard. Many industries have experienced similar gaps between laboratory standards and field performance. (The automobile industry perhaps being the most obvious.)
The difference is that wind energy operates in an environment where every failure is expensive, highly visible, and takes a long time to correct.
The Financial Impact That Can’t Be Ignored
The math is compelling. The real question isn’t whether StrikeTape makes financial sense – it’s how quickly you can implement it.
We’re witnessing a fundamental shift in wind turbine lightning protection. The old paradigm of accepting high damage rates as inevitable is giving way to proven industrial solutions that actually work.
What’s Next for Lightning Protection
Early adopters have experienced significant advantages:
- Reduced lightning damage frequency
- Lower O&M costs
- Improved turbine availability
- Enhanced asset reliability
Meanwhile, operators who rely on traditional protection will continue experiencing the expensive damage patterns that have plagued the industry for years.
- Reduced lightning damage frequency
- Lower O&M costs
- Improved turbine availability
- Enhanced asset reliability
- What are our actual lightning damage rates vs. our protection system’s claimed performance?
- How much are we spending annually on lightning-related repairs and downtime?
- Can we afford NOT to implement proven solutions that reduce these costs by over 80%
The data from RWE’s West Texas wind farm provides clear answers. The remaining question – if or when lightning protection standards will change to reflect what we now know – cannot be answered by individual operators. In the meantime, it is up to independent wind professionals to act on this data to protect their assets.
Technical Study Information
Key details of the study are below. Readers who need additional information should contact Weather Guard Lightning Tech.
Study methodology: Analyzed operational data from 8 wind farms (907 total turbines) across Texas and Oklahoma, all operating GE Vernova turbines.
Damage classification: Used industry-standard 5-category system, with Categories 4-5 representing structural damage requiring extensive repairs.
Financial calculations: Based on actual repair costs ($10,000-$150,000) plus business interruption costs ($10,000-$150,000) per incident.
Performance improvement: An 80.4% relative risk reduction, representing significant improvement over conventional protection, was seen on the site with StrikeTape installations. Ongoing field studies have StrikeTape reducing damages by 100% in some cases.
For Additional Information
For a full analysis of this study, or for StrikeTape technical specifications, materials testing data and additional information, contact Weather Guard Lightning Tech.
+1 (413) 217-1139
500 S. Main Street, Mooresville, NC 28115
References
Kelechava, Brad. Standards Supporting Wind Power Industry Growth, ANSI Wind Power, April 23, 2020. Accessed 8/5/2025 at https://blog.ansi.org/ansi/standards-wind-power-growth-turbine-iec-agma/
Myrent, Noah and Haus, Lili. Blade Visual Inspection and Maintenance Quantification Study, Sandia Blade Workshop October 19, 2022.Accessed 8/5/2025 at https://www.sandia.gov/app/uploads/sites/273/2022/11/EPRI-Blade-Maintenance-Quantification-October19_2022-21.pdf Kaewniam, Panida, Cao, Maosen, et al. Recent advances in damage detection of wind turbine blades: A state-of-the-art review, Renewable and Sustainable Energy Reviews, Vol 167, October 2022. Accessed 8/5/2025 at https://www.sciencedirect.com/science/article/abs/pii/S1364032122006128
https://weatherguardwind.com/the-iec-standard-thats-costing-wind-farms-millions-and-the-industrial-fix-that-already-exists/
Renewable Energy
How To Generate Power Off-Grid?
The post How To Generate Power Off-Grid? appeared first on Cyanergy.
https://cyanergy.com.au/blog/how-to-generate-power-off-grid/
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