Weather Guard Lightning Tech

Everpoint’s BladeBlok Recycles Blades for Drilling
James Timmins, VP of Engineering at Everpoint Services, joins to discuss how recycled wind turbine blades become BladeBlok, a drilling fluid additive for oil, gas, and geothermal wells.
Sign up now for Uptime Tech News, our weekly newsletter on all things wind technology. This episode is sponsored by Weather Guard Lightning Tech. Learn more about Weather Guard’s StrikeTape Wind Turbine LPS retrofit. Follow the show on YouTube, Linkedin and visit Weather Guard on the web. And subscribe to Rosemary’s “Engineering with Rosie” YouTube channel here. Have a question we can answer on the show? Email us!
Welcome to Uptime Spotlight, shining light on wind energy’s brightest innovators. This is the progress powering tomorrow
Allen Hall: James, welcome to the podcast. Thank you. There has been a lot of activity at EverPoint Services. So I wanna back up first because if you’re not familiar with EverPoint Services, they are a recycler f- for renewable projects.
James Timmins: So we’re a, a renewable energy service company that specializes in, um, decommissioning and remediation services for, uh, wind and solar assets.
Allen Hall: So when a solar farm gets hit by hail and the panels are broken, EverPoint comes up and cleans up that mess to, to allow the repair to happen.
James Timmins: Correct, yes.
Allen Hall: And on the wind turbine side, you’re t- decommissioning wind turbines, but you’re also taking the [00:01:00] blades.
James Timmins: Yes. So it’s our responsibility to haul off the damaged, I guess, the scrap.
And, um, obviously there’s a very healthy market for scrap steel that you find in the tower base- Yes … but the fiberglass is a little less straightforward when it comes to disposal and/or recycling.
Allen Hall: So typically with the fiberglass blades or any composite that’s, that’s being recycled, th- there’s really two techniques that are being implemented right now.
Uh, well, really three. Let’s go over three of ’em. One of ’em is you can just bury them. They’re c- essentially construction materials, so you can bury them. Not ideal, but it has happened in the past. The second is they grind up the, the blades and use ’em in, uh, c- the cement-making process, where they’re burning some of the things that are combustible there and using it for fuel, but also the fiber can help with the cement.
Does, does that sound right? Correct. And, and then the third one I’ve seen is just as a reinforcement product. [00:02:00] So it’s, uh, they chop up the fiber in different lengths, they clean it up, and you can u- use it as an additive to different products. Yes. And, and that generally has been the marketplace in the blade recycling area for- Going on 20 years now probably Yes Until now.
And that’s where Everpoint has really changed the game because you’re thinking about blade recycling a completely different way.
James Timmins: Correct. So my background is oil and gas. I was a drilling engineer, uh, for major oil companies, so it was my job to plan, execute, and oversee drilling operations. So I worked kind of all over the world, and this project started as an icebreaker at a friend’s birthday.
I had never met Tyler Goodell before. I- Wait,
Allen Hall: wait, wait. So you’re at a birthday party-
James Timmins: Yes …
Allen Hall: and your kids are having fun. They’re eating cake. Oh,
James Timmins: we were at a dive bar, so we- Oh, okay … yeah, watching a band, uh- … sitting over a bucket of Lone Stars and yeah.
Allen Hall: Okay. That’s the [00:03:00] best place for new ideas to occur clearly.
So you’re, you’re, you’re at a birthday event, you’re hanging out, and what happens?
James Timmins: He asked me what, what I would do with tens of thousands of tons of scrap fiberglass.
Allen Hall: And you get asked that every day, or is it- No. Okay.
James Timmins: And I thought it was a weird question, and I kinda put it in the back of my mind. And about 15 minutes later I was like, “Well, I have an idea that we could, uh- Put at least some of that to work.
Allen Hall: And what was that idea?
James Timmins: The idea was that we could grind it to a specific particle size distribution and use it as a fluid loss additive in oil, gas, and geothermal drilling operations.
Allen Hall: Okay. That’s a unique application.
James Timmins: Yes.
Allen Hall: So I think we need to walk into what happens when we’re drilling an oil well or any sort of well, I suppose.
Uh, there’s unique things that happen that require specialty fluids or specially …
James Timmins: Uh, specialty additives you could say. Additives.
Allen Hall: Yes. [00:04:00] So- Okay. That’s a, that’s a good way to describe it. All right. So, uh, I’m drilling a well. I’m in Texas. I’m an oil tycoon. I wanna drill this well. What am I doing?
James Timmins: So you have what’s called drilling mud, which is pumped down the drill string through the bit.
Um, helps cool the bit, um, power down hole tools, and sweep the cuttings out, which is the- Okay … drilled up rock.
Allen Hall: Yep.
James Timmins: So there’s a, a hydrostatic pressure that the fluid column exerts on the formation. And if that fluid column exerts more pressure than the formation can stand, it splits open like a fracture.
Allen Hall: Okay.
James Timmins: In this case, an accidental fracture. Or you could have just a porous formation of, uh, low pressure. And so you have this pressure imbalance from the wellbore where the fluid wants to flow to the area of low pressure. And, uh, this mud is $300 or $400 a barrel. And if you’re- Whoa … losing 100 barrels an hour, the costs add up really quick.
Can’t drill ahead. Um, it’s what’s called non-productive time. [00:05:00] So you’re spending 80 or $100,000 a day for all this equipment to be out there, and you’re not drilling ahead, so.
Allen Hall: Okay. So as the, the drill bit goes down into the formation, you’re hitting rock. You hit a crack in a rock, or you create a crack in a rock.
All your drilling mud, and it’s not really mud, right? No, it’s- It’s, it’s a special compound-
James Timmins: Yes … that we call mud. Very,
Allen Hall: uh,
James Timmins: yeah, it’s drilling fluid, I guess, is the technical term. Okay . But, um- I’ve
Allen Hall: heard mud used universally.
James Timmins: It kinda looks like chocolate milk most of the time.
Allen Hall: There you go. Yeah. Okay. So it’s an expensive fluid.
You’re pushing it down in, but then you get a, a crack or a formation that you run into, and all that precious fluid goes running off somewhere else. Yep. So which it doesn’t allow you to cool the bit, which basically stops all drilling.
James Timmins: Correct.
Allen Hall: Okay, that’s a big problem.
James Timmins: And in worst case scenario, the fluid column falls and the pressure on the formation falls, and then the well starts flowing and you have a well control problem, so.
Allen Hall: So now you got a big problem.
James Timmins: Yep. [00:06:00]
Allen Hall: All right. So now you have fluid coming back at you that you’re not ready for.
James Timmins: Correct, yeah.
Allen Hall: Okay, that seems like quite the mess.
James Timmins: Yeah, so it’s actually one of the… You know, in some parts of the world, one of the top drivers of non-productive time and cost. So it’s a, kind of a problem as old as the oil field itself, but…
Allen Hall: Okay, c- ’cause at the end of the day, you would like to have a specific hole tapped at a specific location pulling-
James Timmins: Yes …
Allen Hall: hopefully petroleum products from that area or whatever you’re going for. It’s could, could be gas- Yeah … uh, off of that site, but you have to have some constraints about it, right? Right.
You d- d- to control everything. Okay. So n- that sets the problem. All right. We’re gonna run to this, uh, area where we’ve, we’ve cracked the found- the, the rock or there’s porous rock and we’re pumping this, a really expensive fluid down it and we would like to stop that from happening. How does that end up involving wind turbine blade recycling?
James Timmins: So we grind this material to a specific size and you mix it at a certain [00:07:00] concentration. Could be two pounds per barrel of mud or 80, uh, depending on the severity of the losses. But, um, this mixture is pumped down into the formation and this, um, kind of acts like a… Technical term is bridging. So this, these fibers from the recycled turbine blades cannot fit through all of the pore spaces.
Sure. And gradually they be- begin to accumulate on the wall of the, the wellbore. So they- Okay … uh, eventually it’s kinda like a clogged sink with… You know, you get enough- So you get enough hair in the sink … chopped vegetables. Yeah. Yeah. It, it eventually will stop flowing.
Allen Hall: Oh, well, who hasn’t experienced that?
So it’s, it’s… So you, you wanna put things down into this hole that prevent the fluid from running off. Recycled blades seems like a very viable option just because it’s in an inert substance, it’s pretty durable.
James Timmins: It is.
Allen Hall: It’s tough. It can handle high temperatures [00:08:00] and it now can be pumped.
James Timmins: Yes.
Allen Hall: Wow. All right.
So that’s a, that’s a remarkable idea. But ideas and products, there’s usually a long distance between those two.
James Timmins: Correct, yes.
Allen Hall: So from initial concept to where you are today, walk through what you had to go do to make this into a real product.
James Timmins: Uh, so we… I basically have- was familiar with these types of products in the past, but at the level I was at, I was not getting into the granular detail-
Allen Hall: Sure
James Timmins: of the qualification of the product, of the spec of the product. So, um, I kind of had to do a lot of research reading technical papers online about product development for this particular type of product. So, um, I started with a, basically in my garage, um, a geologist sieve. Okay. I got a sample of shredded fiberglass, which I think was, was like five-inch shred.
So I [00:09:00] bought a blender from Target, not knowing what else to use, and I stuffed it down in, with a crescent wrench and blended it up and broke the blender and eventually got enough usable material to, uh, start testing it in a lab. And so-
Allen Hall: Oh …
James Timmins: there are third-party labs that do these kind of tests, and they’re all industry standard, um, prescribed methods, so they’re called mud checks and, uh, what’s called a pore plugging apparatus, which is like a, either a ceramic disc that’s simulates a formation and it’s porous, it’s got a certain permeability, or you have what’s called a slotted liner, which is a stainless steel plate with two-millimeter slots on it.
And you put the mixture in, and you pressurize it, and if it stops it, then you know it works. So- So
Allen Hall: you’re plugging a hole- Yeah … in a laboratory,
James Timmins: basically. Exactly, and it’s under high temperature and pressure, so it’s designed to simulate kinda downhole conditions. But-
Allen Hall: [00:10:00] Wow. Yeah Okay, so- Got a
James Timmins: little into the weeds,
Allen Hall: but So you’re, no, you’re in your garage, you chop up some material, you go, “All right, let’s go check this out.”
You, you get a, a- an independent laboratory to try it, and they say it works.
James Timmins: Yes.
Allen Hall: And then it’s, then you’re off to the races now because- Well, that’s what I thought … you opened Pandora’s box
James Timmins: Yeah … a
Allen Hall: little
James Timmins: bit. So I was not expecting how much, how rigorous the t- the qualification would be on the industry side as well.
Right. Sure. Yeah So, um, that was kind of the starting line for, uh, product qualification, but, um, I had a very coarse particle size, thinking that would be adequate because I was not familiar with what’s actually used.
Allen Hall: What the ingredients are, yeah.
James Timmins: Right. So, um, I was kinda shopping it around to friends, and they’re like, “It’s a niche product where it is right now.
It needs to be finer.” So that’s kind of been the process is, okay, it needs to be [00:11:00] this particle size D50, which is 50th percentile mean particle size, basically. And so then the question is how do we get there? And- Right … so- Grinding composites
Allen Hall: can be difficult because- It is … they’re tough, and they’re, as you have learned with the, the- The-
blender experiment
James Timmins: Right … chopping them is not easy. Right. Very abrasive, uh, very high tensile strength. It’s basically designed not to be cut or not to be torn. Um-
Allen Hall: Right. That’s why we love it …
James Timmins: not to be, not to ever degrade in weather. So it has been an ongoing Kind of research project to find out what’s the best equipment for this, uh, can we do this at, you know, a reasonable cost?
‘Cause it’s not gonna be as cheap as grinding up or, you know, picking up sawdust from a sawmill or- Right … or chopping up cedar trees or whatever. So- Which
Allen Hall: are generally soft and easy to, to chop and-
James Timmins: Right. And not nearly as abrasive and so- Right … we [00:12:00] have identified, um, a process that we think is economical, and we’ve demonstrated it in, you know, kind of a small commercial run.
But, uh, you know, it’s kind of going back and forth to consumers and them saying, “We want this product size,” and then me going back and forth to our partners saying, “Can we do this? Can we do a lot of it? Can we do it-”
Allen Hall: Right. The quantity’s gonna
James Timmins: be big. Right. Exactly. So, you know, talking to equipment manufacturers, they’ll all tell you that their product, their, their machine can handle this material.
And they’re usually all right, but, you know- Can they
Allen Hall: handle the quantity?
James Timmins: Exactly. Without- They can do it for a month, or, you know, six months, and then it’s, well, do we have to overhaul the whole machine now ’cause this- That’s it … yeah.
Allen Hall: It’s, those composites are rough on blades.
James Timmins: Yep.
Allen Hall: So you’ve, you’ve broken through that barrier.
You obviously have figured out a way to, to chop the material down or grind the material down into the right particle size. So [00:13:00] now you have a material that is, one, clean, is using existing blades right off the turbines, being ground down, and is a, a product that will be consumed by industry in large quantities.
James Timmins: Yes.
Allen Hall: So all these blades that have, that were gonna be recycled anyway because of the age of the turbine now have a home-
James Timmins: Yes …
Allen Hall: in the oil and gas industry, which is sort of ironic, right? Right. The renewable industry is taking over oil and gas. At the same time, we’re supporting it in a way, but, uh, the product is called what?
James Timmins: BladeBlock.
Allen Hall: BladeBlock. Okay. Great name. So BladeBlock is then, is a product that’s, it comes in a, in a bag, or is it a cylinder? Is it a truckload?
James Timmins: Comes in whatever the customer wants it to come in.
Allen Hall: Okay.
James Timmins: So 50-pound sacks, uh, super sacks, or bulk trucks.
Allen Hall: So it must have a really unique, uh, application i- in terms of, I have a big problem where I can’t use off-the-shelf expensive mud.
I need to f- fill this hole relatively quickly. [00:14:00] I’m just gonna go grab some BladeBlock and solve this problem right now.
James Timmins: Yes.
Allen Hall: And, and it… So that changes the industry quite a bit. So places that you may have had trouble drilling wells in, you can now drill wells.
James Timmins: Yes.
Allen Hall: That’s remarkable. So what has been the response from the industry?
James Timmins: Uh, they love it. Um- I bet … they love the idea. They, they kind of giggle at the irony of- … you know, oil and gas solving a renewable problem. Um, and-
Allen Hall: And a renewable problem solving an oil and gas problem.
James Timmins: Right. We are selling on the performance and the cost of the product, but there is also a sustainability and circular economy, you know, aspect as well that is marketable, and there’s still an appetite on both the operator side and the oil field service side for that.
Allen Hall: This is not a… We’re in Texas at the moment, but this is not a Texas, Oklahoma, N- uh, New Mexico kind of problem. You’re actually fixing problems globally with BladeBlock.
James Timmins: Yes.
Allen Hall: So the product is, [00:15:00] although made in the United States, can be shipped anywhere I would assume. Yep. So, uh, y- are you getting any requests outside of the United States for it?
James Timmins: We have talked to overseas partners, I guess, kind of industry leaders overseas, and there is definitely some interest. Um, we are also talking to, uh, service companies domestically headquartered who have operations internationally who have expressed interest in, uh, using it overseas. But, I mean, right now, you know, we’re close enough to the ship channel that we can ship it wherever they want it.
That’s amazing.
Allen Hall: And it’s a patented product also,
James Timmins: right? Yes. So- We are in the… I guess, we’ve received our notice of allowance, and we’re in the final stages of issuance, so.
Allen Hall: So you have a, a patented, US patented, or is it, is it a world patent? Are you, you going outside the United States- Uh, we will … on patent?
James Timmins: Yes.
Allen Hall: Wow. All right. So you have eventually a somewhat global patent, so to speak. That’s not how it works, but it… that’s essentially [00:16:00] what you’ll have, uh, for BladeBlock to solve problems globally. Would, would that also involve, like, offshore wells too? Yes. Do they have the same problem? So I’m thinking of Texas ’cause we’re here, but offshore of the coast of Norway where they’re drilling wells, or in the North Sea or-
James Timmins: Persian Gulf.
Yeah …
Allen Hall: Persian Gulf, sure, that they can use BladeBlock to solve some of their problems- Yes … which they couldn’t have solved today.
James Timmins: Yeah.
Allen Hall: So d- have they abandoned wells because of this problem?
James Timmins: Yes. Um, especially in certain formations you have what are called vugs, which are basically just large limestone caves that have been-
Allen Hall: Limestone
James Timmins: is tough.
Yeah … so you can put a whole car down there if you want- … and, uh, still not fill it in. So, um, you know, this product, it basically is practically inexhaustible from you know, it’s… We’re kind of only limited by how much we can manufacture on- How much you can
Allen Hall: process …
James Timmins: right. So, um- It’s kind of a good problem to have for us, but
Allen Hall: [00:17:00] Yes.
It changes the whole dynamic of blade recycling, because the blade recycling effort up to this point has been the operator or the OEM pays the recycler to grind the blades, and then they have to find a way to source out that material. But the, basically everybody’s trying to reuse the material because it, it does have value.
How do we best reuse this, right? This is what the recycling efforts are on the recyclable blade, uh, resin systems that are happening. But you’re just taking the existing blades that weren’t meant to be recycled and recycling now in a product that has a lot of value.
James Timmins: Correct, yes. So obviously the biggest challenge everyone faces is the economics of it.
And you-
Allen Hall: You know how many people have been working on that problem? Literally thousands of people have been working that problem, and you guys figured it out at a birthday event.
James Timmins: Yeah, uh- … totally out of left field. Um, it, it just, it’s one of those things that sticks in the back of your head, and you think about it for 10 minutes, and you’re like, “Oh, uh, why-” But
Allen Hall: I have [00:18:00] a, I have a solution.
Like, we can use it here. Yeah, which, you know, most people, that would never have occurred to.
James Timmins: Right. And it’s kind of a technical rabbit hole, like the drilling fluid is- It is … it’s, it’s, so it’s not a whole lot of people out there thinking about lost circulation material- … uh, on a daily basis. Um, but that was, you know…
The problem with so many of these applications is you’re competing with, in some cases, literal dirt and sand. We pay f- five cents a pound for sand or concrete filler, fly ash, whatever, and it’s like, well, you’re never gonna process it that cheap, or you’re never gonna way to, to be able to economically process it that cheaply, so.
Allen Hall: Sure, but there’s unique applications where those things don’t work.
James Timmins: Right.
Allen Hall: And you can now make an unprofitable drill hole profitable.
James Timmins: Yes.
Allen Hall: That’s a game changer. So this is remarkable, and I, I know you guys have been working on this for a couple of years, and it’s, EverPoint has always been, [00:19:00] and we’ve talked to EverPoint for a couple of years now on the podcast of, when we talk to recyclers, we don’t act- we actually have talked to a number of recyclers, but we don’t have them on the podcast because it’s, seems like the amount of material coming into their facility and the amount of material going out are not the same.
Correct. They’re landfilling them or whatever’s going on, which is, it, it to me is trouble, right?
James Timmins: Right.
Allen Hall: You, your, EverPoint has always been, “We are actually gonna do what we say we’re gonna do. We’re gonna take the solar panels, we’re gonna recycle, we’re gonna…” You’ll be able to follow it. Correct, yeah. Which is one of the technologies that EverPoint brought, is you could follow your recycling product all the way from the site to where it finally ended up at.
That was remarkable. That was an industry-changing, uh, idea, and I appreciate that EverPoint was doing that. Now, you’re actually turning it into a viable product called Blade Block. Game changer. Now, our podcast is probably not heard by a lot of oil and gas folk, but the, you know, the word does spread and we [00:20:00] have almost two million YouTube subscribers at this point.
How do people get ahold of you to purchase BladeBlock? Do they go onto your website? Are they-
James Timmins: Yeah. I mean, LinkedIn, website.
Allen Hall: Okay. However.
James Timmins: Yeah.
Allen Hall: So- And, and what’s your website address?
James Timmins: It’s everpointservices.com.
Allen Hall: Okay. And you’re based in Texas?
James Timmins: We are. Houston.
Allen Hall: In Houston, right. So the, everybody that is interested in having improved oil and gas drilling mud, uh, can use BladeBlock now, and it’s a viable product that’s being offered, it’s patented, it’s gonna ship globally.
It’s the right time and it’s the right way to recycle your blades. So if you have a, a wind turbine farm that’s being decommissioned, there’s a lot of repowering happening right now, uh, there should be a lot of, of blade material available to make BladeBlock with. So congratulations. That’s remarkable.
James Timmins: Thank you so much.
Allen Hall: James, so thank you so much for being on the podcast. Of course. It was great to meet you.
James Timmins: Nice to meet you as
[00:21:00] well.
Renewable Energy
New ACORE Resource Breaks Down the Complexities of Energy Tax Equity Structures
-
Finance -
Project Finance -
Tax Incentives & Appropriations -
Press Releases
New ACORE Resource Breaks Down the Complexities of Energy Tax Equity Structures
WASHINGTON, D.C. – A new report from ACORE presents survey data from leading investors about the performance of tax equity structures and how they continue to play a significant role in financing clean energy projects.
For more than two decades, tax equity has provided a stable private financing mechanism and an important source of capital for new clean energy projects in the United States. The U.S. clean energy industry now attracts over $45 billion in tax credit investments annually, of which more than $20 billion is provided by banks through tax equity arrangements. The report provides an expert look into how tax equity financing transactions are structured and the risks and returns associated with these deals.
Key takeaways from the report include:
- Overwhelmingly Positive Returns: An ACORE survey representing over 75% of the tax equity market showed that these investors typically receive a median 8.4% return on current investments.
- Minimal Downside Risk: Risks associated with recapture, foreclosure, and bankruptcy have been exceptionally low for tax equity investors.
- Demand for Tax Equity Exceeds Supply: Tax equity is responsible for between one third and two thirds of a clean energy project’s overall financing, and about 45% of tax equity is provided by banks through tax equity arrangements. Demand for tax equity will accelerate as investors look to finance energy storage and other eligible technologies that continue to qualify for tax credits.
“This report reflects ACORE’s commitment to delivering solid, impartial insights from the entire span of the clean energy industry,” said Ray Long, President and CEO of ACORE. “Getting clean energy tax policy right is the key to ensuring the United States is ready to deliver the power needed for tomorrow’s economy.”
The Risk Profile of Tax Equity Investments: 2026 Edition, is available in full on the ACORE website.
###
About ACORE
ACORE is a nonpartisan nonprofit organization that operates at the intersection of affordability, reliability, and clean energy deployment. Our work is focused on stabilizing energy prices, strengthening the electric grid, and driving investment in cost-effective technologies to ensure that clean energy delivers for people, businesses, and the U.S. economy.
ACORE’s membership includes clean energy investors, developers, energy buyers, power generators, manufacturers, and energy providers. In 2024, nearly 80% of the booming utility-scale domestic clean energy growth was financed, developed, owned, equipped, or contracted by ACORE members. For more information, visit www.acore.org.
Media Contacts:
Chris Higginbotham
higginbotham@acore.org
The post New ACORE Resource Breaks Down the Complexities of Energy Tax Equity Structures appeared first on ACORE.
https://acore.org/news/new-acore-resource-breaks-down-the-complexities-of-energy-tax-equity-structures/
Renewable Energy
An Economy that Works for Everyone
Right-wingers, like the fellow shown here, tend to make broad and unfair generalizations about the left.
Progressives would like to see an economy that works for everyone, not just the uber-rich. We want wealth creation for the people who need it most.
The best way to make this happen is strong, high-quality public education and universal healthcare.
These are not radical concepts; this is the way the vast majority of the developed world operates.
Renewable Energy
Blade Breaks at He Dreiht, Suzlon Posts Record Quarter
Weather Guard Lightning Tech

Blade Breaks at He Dreiht, Suzlon Posts Record Quarter
A V236 blade fails during construction at He Dreiht. Plus a 53 GW US wind forecast, Suzlon’s record quarter, and what turbine noise really measures.
Sign up now for Uptime Tech News, our weekly newsletter on all things wind technology. This episode is sponsored by Weather Guard Lightning Tech. Learn more about Weather Guard’s StrikeTape Wind Turbine LPS retrofit. Follow the show on YouTube, Linkedin and visit Weather Guard on the web. And subscribe to Rosemary’s “Engineering with Rosie” YouTube channel here. Have a question we can answer on the show? Email us!
The Uptime Wind Energy podcast, brought to you by StrikeTape. Protecting thousands of wind turbines from lightning damage worldwide. Visit striketape.com. And now your hosts
Allen Hall: Welcome to the “Uptime Wind Energy” podcast. I’m your host, Allen Hall, and I’m here with Matthew Stead, Yolanda Padron, and Rosemary Barnes. And to lead off this week, s- there’s been some trouble in the North Sea. On July 22nd, a blade failed on one of the turbines at EnBW’s 960-megawatt He Dreiht offshore wind farm.
Uh, EnBW spokesperson said there were no injuries, thank goodness, and that the authorities were notified immediately, which is generally the case in Europe. They’re very safety conscious, of course. But the machine was a Vestas V236, which is a– that 15-megawatt offshore turbine that Vestas is offering. And He Dreiht is where the platform [00:01:00] has made its debut.
So Vestas and EnBW are working together on an investigation, an RCA, a- along, uh, looking at the environmental impact because parts of the blade landed in the water. And the, the images I saw online were like a sheer web that was being pulled in onto a ship, so big pieces of blade. Uh, there’s gonna be 64 of these turbines going into that wind farm, but this is probably a little bit of a weird thing because it does seem like that the wind farm is under construction when the blade broke, which is not the first time this has happened, right?
That we’ve seen blade breaks at, uh, Vineyard Wind and at Dogger Bank on the GE side. Is this just a construction issue, Yolanda, you think? Or is it some sort of, uh, vibration that’s happening during construction that’s putting extra stress on the blades?
Yolanda Padron: We were talking about it a little bit offline and how it might be a loading [00:02:00] issue because it’s not, uh, it’s not in the optimal operating, uh, conditions, right?
Uh, but this is– It’s– I don’t like that it’s becoming a trend more than an anomaly from what we’ve seen on this podcast. Uh, Matt, I know you work a lot in solutions, right? What, what would you recommend people start doing?
Matthew Stead: Yeah. I think, um, more and more there’s ways of just checking out, you know, pre-construction, um, you know, some of the vibration modes, some of the unusual, um, wind loading when it’s in standstill, you know, different yaw angles and so forth.
So there, there’s more and more ways of, um, checking out what the blade is doing when it’s in those unusual, um, sort of pre-con, pre-operation phases. So, um, you know, for instance, um, we do know that there is some sort of sometimes edgewise or flatwise vibration, which, um, you know, maybe is not normal, um, and maybe could be, be [00:03:00] thought about in a bit more detail.
Um, certainly I know there are some research organizations which are looking into this and also, you know, things like blade twists. Um, so what is actually happening in terms of the, um, the twisting of the blade along, along its axis.
Allen Hall: I think the last time this happened, I remember going back and looking at patents about how to protect the blades during this construction phase.
So you wanna prevent the blade from generating lift from sideways winds pretty much. So the designs that I saw were like putting like a, a netting across the blade to disrupt the airflow so that it wouldn’t generate lift. But I haven’t really seen that implemented. Maybe it is being implemented, but these loads are a little odd, right?
I, I, I’m wondering if there’s any IEC certification test that looks into them, uh, just because it’s, it’s happened a couple of times now, more than a handful.
Matthew Stead: We, we saw, um, we saw that picture of some blades on the ground. [00:04:00] You remember they were in storage. Um, there was a, a strong wind that came across them when they were in storage, and there was some, some flutter and, you know, some, some damage it caused, uh, even when they were on the ground.
Um, yeah, I think just thinking out loud, you know how on some, you know, wind stacks and, or, you know, turbine stacks and, um, you know, poles, you know, exhaust stacks. Sorry, that’s the word I’m looking for. Exhaust stacks. They have the, the spiral around it. You know, it’s for around vortex shedding. So maybe it’s an opportunity for, for Rosie to jump in here and, uh, and comment.
But, um, maybe we can put like vortex, uh, spiral vortex, um, you know, dissipators on the, on the blades before they’re fully commissioned.
Rosemary Barnes: So it’s cer- certainly not a, a matter of the design just being a little bit wrong, right? That would mean that it would last for a, for a while and then And then break. But it, it also, it could be several things.
It could [00:05:00] have been a manufacturing defect, a bad one. It could have been transport damage. Tho- those are two other things. It could have been, yeah, you know, like a, a new design feature or material that performed massively differently under real loads than what it did, um, you know, in their computer models and in their coupon tests and in their, um, static tests, fatigue tests that they did.
It could be any of those things. Sometimes you do see problems where technically you’re not supposed to leave the rotor locked out for any period of time because it is not designed for the off, off-axis weird loads that you can get when the blade is oriented in a suboptimal way compared to the wind.
And there have been instances where it’s like technically, you know, that was in the instruction manual, however, nobody ever followed it, and it’s only under extreme circumstances where that actually is severe enough to break it. There, there can be instances like that [00:06:00] where I would say that it- it’s pretty difficult/impossible to actually design s- for safety during any conceivable series of events during installation.
The way that you would do it would be to make sure that the blade can handle any wind load and, you know, up to the maximum gust at any, at any time in any position. But having, you know, done a little bit of work, um, on blade design in my past, it is massive. That is just a massive, massive load that is y- it will never see in its lifetime.
You would have such heavy, expensive blades if you actually designed it like that. Um, and so yeah, the That, that would be probably the most charitable reason for a failure where nobody really did their job wrong. It’s just kind of like some bad luck that happens every now and then.
Allen Hall: Well, it does seem like there’s a trend there between Dogger Bank, Vineyard Wind, [00:07:00] some of the things we’ve seen in China.
During the construction phase, those turbines are very vulnerable and the, the blades can break. Aren’t there extra precautions that could be put in place? Like, you, you could obviously do weather forecasting, and I know that that’s done, but it does seem like it’s, uh, such a consequential problem to have a blade break on a turbine in the North Sea, near Germany.
Like, that, that’s just bad PR. Even if you have all the engineering precautions in the world there, you would still maybe play it a little bit safer so this wouldn’t happen?
Rosemary Barnes: It’s really hard. Like I said, if you want to design it so that a blade won’t break under these, like, really unusual set of operating conditions that happen during construction, not during– Like, during operation it has to be able to handle whatever is thrown at it, like, no doubt.
Um, everybody agrees on that, including, you know, certification bodies. But during installation, yeah, if you want your blade to be able to handle anything that [00:08:00] that area can throw at it, even, you know, one in 50, one in 100 year storm that comes up unexpectedly, I personally think I haven’t done the optimization.
I wouldn’t be surprised if people had. In fact, I would be surprised if they hadn’t. But I bet that it will cost more to design every blade to withstand that than it would to lose the occasional one, you know, one out of What is it? Like one out of 500 blades or something this happens to, one out of 1,000?
I, I, I don’t know, maybe even less, less than that. Um, you know, so it’s, I don’t know how much these blades cost new, but, you know, say a few hundred thousand. Uh, it’s just, it’s gonna be it, it’ll be more cost-effective to lose the odd one every now and then. And like you say, it’s bad PR, but, um, I don’t know.
Is it that, like- It- … things, things happen, things break sometimes. Um, yeah, I don’t know. Is the PR that bad? I’m not sure.
Matthew Stead: So [00:09:00] I, I’ve got a question and, um, you know, on LinkedIn, you know, you see whenever there’s a, um, whenever there’s a failure on L- um, e- everyone posts about it.
Rosemary Barnes: Condition monitoring would’ve stopped this.
If there had only been condition monitoring that, that turbine, then they wouldn’t have had a blade break during construction. That’s why I’m so hesitant to, to, you know, make any calls now ’cause I don’t wanna sound like one of those
Allen Hall: LinkedIn losers. LinkedIn loser.
Rosemary Barnes: I learned that the last, um, root cause analysis, like, you know, catastrophic blade failure, um, the last one that I, uh, yeah, got approached to work on, I was told y- you know, like half a dozen different companies have approached us after they saw this in the news.
So people are ambulance chasing. I’m like, “Oh my goodness, should I, should I be ambulance chasing? Is this a new, a new thing that I should be doing?”
Allen Hall: Let’s take a quick break and when we come back, a fresh forecast says the United States is building more wind than anyone expected As wind energy professionals, staying [00:10:00] informed is crucial, and let’s face it, difficult.
That’s why the Uptime podcast recommends PES Wind magazine. PES Wind offers a diverse range of in-depth articles and expert insights that dive into the most pressing issues facing our energy future. Whether you’re an industry veteran or new to wind, PES Wind has the high-quality content you need. Don’t miss out.
Visit peswind.com today. Well, here’s a number that runs against the mood of the industry. Wood Mackenzie now expects the United States wind industry to add more than 53 gigawatts of capacity by 2030. That is a 5% increase over the previous quarter’s five-year forecast, and the reason is really straightforward.
Shovels are in the ground. Developers pushed to start construction ahead of the July safe harbor deadline, and firm turbine orders reached 1.1 gigawatts, five times the level of a year earlier. So demand is holding up too, [00:11:00] led by a 1.9 gigawatt deal between Google and Xcel Energy. So the One Big Beautiful Bill, or OB3 as I’ve heard it called more recently, is driving wind energy installations up for the time being.
This is somewhat of a positive measure. Does it demonstrate in, in sort of uncertain terms that wind is still a choice for a lot of energy developers?
Yolanda Padron: I mean, we’ve still seen a lot of wind developers continue on, right? And just maybe put something further back down the timeline than they initially would for, for a new project.
Uh, but I, I don’t know. I kind of equate this to, like, you know when there’s, like, a massive sale or something on a, at a store where it’s like, “Everything must go”? And I feel like everybody was just kind of leaning towards that in the short term, and then there’s probably gonna be a lull, [00:12:00] and then just go back to, things will probably just go back to normal, I think.
Matthew Stead: My, my take is that if I had a spare few billion dollars, um, and I was in the energy market I would be building wind solar and battery. And so I would see it continuing
Allen Hall: The existing Department of War review, this is that are not being completed, so it’s holding up a number of projects. That’s gonna eventually hit the courts.
I know it’s in the courts right now. I’m– At least that seems to be some of the news about it, and my guess is based on previous history in the courts is that they’re gonna force the Department of War to either finish the analyses and make some sort of proclamation or to allow them all to pass through.
Uh, just put a stay on the, in the Department of War. I’m not sure how that works because I’ve never heard of that happening in the past, but w- you know, we’re in new times [00:13:00] obviously. But if they, if the courts were able to tell the Department of War to stand down and let the developers go, that would be very interesting.
I think you may see some more activity in wind and that was, you know, off the table just a couple of weeks ago. Is, is that the feeling? I, I know that there’s also some larger discussions. I was listening to this discussion from an MIT analysis about how wind is gonna suffer because solar is so cool and battery is the hot thing.
But in reality, good luck, right? I think you have to have all of the above scenario to get your projects done. If you can’t rely on gas turbines, you better be looking for every possible electricity-generating piece of equipment you can get your hands on right now.
Yolanda Padron: Do you guys think it’s gonna be one of those things where the US kind of turns away from its traditional cowboy-like way of approaching wind [00:14:00] turbines?
Or at least like blades, you know? Because there’s gonna– there seems to be a lot more I, I don’t know if a lot more restrictions, but a lot more implementation of those restrictions on the operation of wind turbines, um, just like from bird monitoring and just a lot of issues that you might see on a wind site that maybe people didn’t care too much to look at before.
Allen Hall: Well, the argument that MIT was making was operating wind turbines is harder than running a solar farm, which generically is true early on. I think that’s probably true. But from what I see from solar farms and hear from operators, solar farms are not easy either. They have their own problems like fire, hail, uh, yeah, bad inverters, electrical problems, animals eating the wires.
Like, everything comes with this set of issues that it has to work through. But wind’s been going a little bit longer. I feel [00:15:00] like there’s an infrastructure there that solar is just now developing, and the history from large solar developments like in, in Spain has not been great over time. And Australia’s sort of a little bit of a different case, Rosemary, where most of the solar in Australia is put on top of people’s roofs.
But is there a real advantage to solar and battery over wind?
Rosemary Barnes: I think yes. I think it’s, it, like, it’s not The scale is, yeah, there, it, there is maintenance and management to be done on a solar farm, but it’s not like on a wind farm, uh, in my opinion.
Allen Hall: Why? Why do you say that?
Rosemary Barnes: So when I talk with asset managers for solar farms, their number one challenge, at least in Australia, is, is grass, managing the grass.
And in fact, there were some solar farms in Victoria that got shut down briefly by the safety regulator because the grass levels were not s- not safe in terms of, you know, being a fire hazard. You know, like basically it’s mowing the grass, and it’s once a year driving some drones around that are doing [00:16:00]thermal imaging and seeing if there’s any faults there, and then replacing them.
So there’s stuff to do, but it’s not like as much stuff as there is in a wind farm. I’ve always thought that it’s wrong to have wind and solar competing against each other, and it’ll be, you know, like one renewable generation to rule them all. I think it’s definitely true that solar is cheaper and simpler than wind energy.
It had a big disadvantage up until recently because it turns out that the sun sets every single night. I’m not sure if you guys were all aware of that, but, um, yeah, people, people have gotten in touch with me on LinkedIn comments to let me know that that’s true, that the sun sets every night, and sometimes it’s not windy.
Are these two… You know, mind absolutely blown from the, um, YouTube commenters.
Matthew Stead: LinkedIn losers. Yeah.
Rosemary Barnes: Not so much LinkedIn losers, like YouTube, YouTube, um, I don’t know, Y- YouTube enthusiasts. But then batteries came along and started getting cheap enough that you can quite easily cover, you know, at least the evening peak with, um, by adding [00:17:00] batteries to a solar farm.
So I think that that together has reduced how much wind energy we need by a bit. But what it hasn’t touched is, um, the times when there isn’t solar available. So wind can step in for that, wind can step in for cloudy weeks and, you know, that’s somewhere like Australia, which is, you know, the most favorable place for solar plus batteries.
But then when you head to somewhere more northern, somewhere with a more severe winter, less sun, uh, and more, you know, demand for heating, et cetera, then y- you know, you just can’t do without wind. It’s, it’s, it’s doing a different thing than what solar is. So I do think that it’s wrong to think solar or wind.
We have to be better than solar. Um, we need to be better for sure. We being wind energy. Wind energy does need to be better, but not because it’s in a competition with solar, but because it’s in a competition with, you know, fossil fuels and y- just being able to [00:18:00] do the transition, energy transition at all.
Allen Hall: We’ll be right back after a short break, and when we return, a turbine maker having a very good year, and it may not be one that you would guess
Delamination and bondline failures in blades are difficult problems to detect early. These hidden issues can cost you millions in repairs and lost energy production. CIC NDT are specialists to detect these critical flaws before they become expensive burdens. Their nondestructive test technology penetrates deep into blade materials to find voids and cracks traditional inspections completely miss.
CIC NDT maps every critical defect, delivers actionable reports, and provides support to get your blades back in service. So visit cicndt.com because catching blade problems early will save you millions.
Well, not [00:19:00] every wind turbine maker is having a hard year. Suzlon Energy has posted its highest ever first quarter deliveries, 506 megawatts of wind turbine generators. Revenue for the first quarter of the fiscal year came in at 3– 38.19 billion rupees, or roughly $398 million. That is up 22 and a half percent from a year ago.
506 megawatts delivered in a single first quarter says the machines are not just being ordered, they are going up. So there’s a, a big demand in India. India is trying to get into a lot of solar and wind and some battery storage to improve the electricity grid there. S-Suzlon is gonna be a, a winner in that race.
At least there’s just a handful of companies that can really participate because of the way that India has structured the market there. But the Suzlon stock dropped, uh, a couple of percentage points on this news as the net profit was a little tighter than analysts would have [00:20:00] preferred, so there was a lot of profit-taking earlier in the day.
But the long-term forecasts have to be very positive for Suzlon, right? It, it’s just been a long-term player in India and elsewhere even, United States being one of those places, um, Australia being another Is it a positive sign that they’re just seeing more orders, more deliveries, that eventually the profit margin will jump up and that Suzlon will be extremely profitable, kinda like Vestas is now?
Matthew Stead: Yeah, I mean, they’re a, you know, great, great company. They’ve got great product. Um, they’ve got a great market in India. You know, India is growing. Um, I think they’ll continue to improve. I, I would’ve thought it’d be a great stock.
Allen Hall: It’s, it does seem to be a little bit of a rough ride just because there’s now a lot of competitors within India, Adani being one of them.
There’s o- other wind turbine manufacturers in India. Uh, not a lot of European participation. And was it GE Vernova is essentially out. [00:21:00] Is that right, Rosemary? GE Vernova is out of India altogether at the moment.
Matthew Stead: And Siemens Gamesa as well?
Allen Hall: Oh, that would be Omtera. I’m not sure if Omtera is in India at the minute.
Yeah.
Matthew Stead: Thanks for the reminder.
Allen Hall: Do you think it’s gonna be a little bit of a rough ride? I think that’s my take on it. And even though the demand will be there and the, the government is making a huge push for it, it, it… Nothing is easy in wind is when you’re trying to scale up because it’s such a huge industry.
Everything’s big. Everything’s expensive. You’re trying to expand your capacity. It doesn’t go smooth, and you’re gonna spend more than you would’ve spent because you gotta get new people in, and you need more equipment, you need more tooling. Everything gets more expensive as you’re doing it. I would expect the profits to drop down a little bit as you’re growing.
That’s normal.
Matthew Stead: I disagree. I, I think, you know, that they know what they’re doing. They’ve been doing it for a long time. You know, the market is growing, uh, but, you know, they’ve done it before. So I, you know, apart from their little wobble a while ago, um, I, I think it’s, it’s optimistic for [00:22:00] Suzlon.
Allen Hall: The growth of Suzlon and all the Indian wind turbine manufacturers internally allow them to, uh, do much more work outside of India.
Do you think that will help their order book, just because they’re successful in India and have that baseline of a marketplace that they can reach out to other parts of the world?
Matthew Stead: Yeah, I think that one’s– That’s gonna be harder , ’cause there’s a whole lot more competition.
Allen Hall: Right. That’s the real question.
How are they gonna compete against the Chinese in, in places where they don’t have a foothold yet?
Matthew Stead: Yeah, I mean, that one’s tricky. And, you know, I think, you know, while Suzlon has done well in Australia, they haven’t necessarily maintained their, their lead in Australia. So yeah, outside of India, it’s probably a different story.
Allen Hall: Isn’t Europe the next marketplace just because it won’t be banned like China has essentially been with- within Europe, the greater Europe? That Suzlon would be that one place, that one company that would be allowed in to, to make some onshore turbines?
Matthew Stead: I think we spoke about that probably about two months ago, and that was definitely in the news that, you know, Suzlon were looking at expanding into, into [00:23:00] Europe and, uh, exactly making the most of that.
Um, yeah. So that, maybe that’s their, their golden, um, export market.
Allen Hall: Well, a project in Queensland just got cut in half, and for two reasons at once. Alinta Energy has dropped the southern portion of its Mount Challenger wind farm in the Whitsunday Hinterlands. Six months of LiDAR monitoring showed that the wind resource at Kelsey Creek was not as strong enough to really to support the turbines, and the company also heard from residents opposed to turbines in that area, and a local action group gathered more than 6,000 signatures.
And for developers, it’s, it’s really a case study in wind data and the community arriving at the same result. But we’ve seen a lot of action up in Queensland more recently. Uh, I’m not sure what’s driving all the opposition to wind turbines, but I’ve seen news stories about it in the United States. [00:24:00] It’s great to have Matthew here because he’s an acoustician.
Uh, some of the discussion in the community, uh, event that I saw was just discussing 40 decibels of wind turbine noise, and which didn’t sound like a lot. And when I looked it up online, 40 decibels was like a library, which I think is being fairly quiet.
Rosemary Barnes: Yeah. Imagine if something got built near your property that was so noisy it was as bad as being inside a library or having a refrigerator in your home.
Easy to see how your life could be ruined.
Allen Hall: Matthew, what’s the, what’s the amount of noise from a, a road going by? Like a truck going by on a road, what is, roughly what is that?
Matthew Stead: I mean, that can quite easily get well above 60, 70, um, sometimes 80. I mean, the analogy, um, that I like to use is that each turbine has the sound emission which is similar to a truck.
[00:25:00] You know, a reasonable sized truck. Okay? So each– imagine each turbine is a truck. Um, but those trucks are a kilometer away. So, you know, the noise level decays in a logarithmic way. Um, and so by the time you’re a kilometer away, the noise from that truck is quite low. An individual turbine is gonna be way, way, way, way, way less than 40 But, you know, there’s more than one turbine, so you need to add them up and it’s n- it’s not a, it’s not a, you know, 20 plus 20 equals 40.
It’s a logarithmic addition. There are many, many, many people that live on busy roads with not 100 trucks, but thousands of trucks. So, you know, the noise exposure from a road can be way, way, way more than from a, you know, a wind farm.
Rosemary Barnes: That’s one of the things that strikes me when I have a, a look at, um, yeah, like Twitter comments for this particular post and everyone’s like, “Oh my God, that’s so terrible, 40 decibels.”
Like, yeah, I can see [00:26:00] why you’re ruining– that’s ruining your life. And yeah, I, um, I, you know, said that sarcastically at the start, but there’s, there’s plenty of, you know, hundreds of people that are, um, you know, thinking along the same lines, but the majority of them are like, “It should be legislated. You know, there should be rules around this.
They can just do whatever they want.” But, uh, the, it is legislated, right? Like, we all accept that wind turbines make noise. It is legislated. You can measure it, right? And so if you h- uh, have a property and you think it’s too noisy for the wind turbines two or three kilometers away, there’s something you can do, right, Matt?
Can you maybe tell us what is the process that, that happens when somebody thinks that a wind farm is too noisy?
Matthew Stead: So a few things. So, um, normally at a house, um, where you’re, say you’re a kilometer away, normally the ambient environment can be louder than the wind farm. The first challenge is to actually measure the noise from the wind farm and not from the ambient environment.
So what that means is that normally, um, measurements are taken around a wind [00:27:00] farm before the wind farm’s even built, and so that way we actually know, well, how much is the ambient noise. Um, and you know, the ambient noise is probably above 40 for a good proportion of the time. So th- that’s the first thing.
You need to understand what the noise environment is like before the wind farm. And then, um, using highly sensitive, highly calibrated, um, sound level meters, which can be, you know, 0.1 decibel accuracy, um, you can then monitor the sound before and after And then compare the two. But what happens is, um, as I said, it’s normally very difficult to separate out the sound from the wind turbine from the general environment.
So then what, um, there are different methods then to, um, either measure in like, um, halfway. So if you measure halfway between the wind turbine and the house, then you can start to separate out the wind turbine noise from the general environment and then do a, you know, propagation or a [00:28:00] prediction or extrapolation of what it’d be at the house.
Um, the other way of doing it is actually measuring at the turbines. So you can measure the individual turbine sound and compare that to what was expected, um, and then sort of validate, um, the initial, you know, source levels. You know, is it really a truck or is it, um, quieter or, or louder than a truck?
Rosemary Barnes: And if they do, it, it– I mean, I’m sure on occasion that people do get it wrong in terms of the noise.
They are able to do stuff about that. That’s partly what the, um, serrations on a blade are, are there to make a, um, a blade quieter. And you can also just do something as simple as turning down the turbine when, um, wind conditions are such that you know that it’s gonna be particularly noisy. No one wants to do that because you get less power output, but certainly you can do something about it if it turns out to violate the conditions of the, um, y- you know, the noise that they promised it when the turbine was, when the wind farm was developed.
Matthew Stead: Yeah. And, um, you know, in the past, it’s [00:29:00]improved a lot, but in the past there were some unusual sounds that came from some turbines, which came from like the gearboxes and, you know, you know, the drivetrain and so forth. Um, but, you know, those things are– they’re, they’re mechanical machines as we spoke about, you know, and they can be addressed, and they can be dealt with through, through design and good engineering, and also, also fixed, you know, retrospectively as well.
And like you say, Rosie, um, if there’s too– if there’s more aerodynamic noise than expected, um, there are serrations and, and lower noise add-ons that can be added. Um, but also many of the turbines also have noise modes, uh, so it can be slightly derated y- with, with certain sectors of wind, um, wind direction and wind speeds to, you know, reduce the noise further.
It is an absolute science. It’s really well understood. It’s, it’s measurable. I mean, there is some uncertainty in the measurements, but it’s, it’s, yeah, there is a lot of knowledge about this topic.
Allen Hall: Well, I just had a math question. If they want to reduce the decibels by like three [00:30:00] dB, what kind of power reduction are we talking about?
Is it like a 5% decrease or 50% decrease in power output to achieve that three dB reduction in noise
Matthew Stead: Yeah. Uh, I don’t have the maths in front of me, but it would depend on the power curve and the actual make model, but I, I… It’s not, it’s not half the power. It’s, it’s, it’s, it’s, um, less tweaks to the power output than, than that much.
Allen Hall: So i- it’s not a massive number. It’s, it’s a reduction of course, but it’s not, you’re not losing a, a ton of revenue.
Matthew Stead: No, no. I mean, obviously it depends, but yeah, it’s not necessarily a ton of revenue loss.
Rosemary Barnes: But I think it’s a real shame, ’cause like when I look at, you know, social media posts where, um, people are up- upset about noise, like they are clearly not aware that there is a very mundane process to go through.
Like, you know, it is not… You don’t, you don’t have to get so worked up. If you’ve got noise at your house and, um, you know, it’s upsetting you, [00:31:00]there is a very established process that you can go through and it can be, it can be fixed. And I know from, you know, the asset managers that I, I work with, um, that are some of my friends, like I, I know that they want to help you.
They do not want people living around the wind farm to hate the wind farm. So y- you need to get in touch and let them know, and, and I… They’re gonna be able to fix your problem. If it’s, if it’s detectable y- you know, with the methods that Matt said, then they are gonna be able to, um, fix it. I know that sometimes people say that they can hear noise, and you just cannot find any evidence of it, and therefore you cannot, there is nothing you can do to that wind farm operation to be able to solve that problem.
So I’m not saying in every case if you think you’ve got a problem they’re gonna be able to solve it, but if they can pick it up with a, what is it called? A noise meter? A decibel meter? Yeah, whatever that doodad’s called. If they can pick it up on that, then they can, they can fix the problem for you. And yeah, it’s just, uh, it, it upsets me that, you know, people are really, are really getting worked up [00:32:00] about this issue, but there’s a, a process to go through.
Matt’s holding it now for everyone just listening in. It’s like the size of, I don’t know, a liter of milk. It’s just not it’s not, not a complicated thing.
Matthew Stead: I think one of the big challenges that we’ve had is that there’s been a lot of negativity around noise, and then people get sensitized. And so, um, the, you know, what I’ve, um, what I, what I’ve heard many times is, um, the sensitivity to noise can be communicated Um, so, you know, like Rosie, if I tell you you’re gonna be really annoyed by this thing, this thing is coming, you’re not gonna like it, you’re gonna hate it, and then you’re sensitized to it, and then you’ll tend to have more of a, you know, a, a response
Rosemary Barnes: If we’d gone on a nationwide campaign to, you know, visit every house that’s within 600 meters of a y- you know, of a road and, um, you know, given impassioned speeches to them about [00:33:00] how it would ruin their life, then yeah, it is easy to see how we would be so fixated on it that our lives would really be ruined.
Allen Hall: Meanwhile, the Australian band AC/DC came to Charlotte the other day to a sold-out concert at the huge football stadium, and I guarantee you that concert was way above the noise level of a wind farm.
Rosemary Barnes: I hope so. Imagine if imagine if a, a bunch of whingers in the audience are like, “Excuse me, I’ve got my little noise measuring doodad and it’s over 40 decibels.”
Allen Hall: Well, that wraps up another episode of the Uptime Wind Energy podcast, and thank God for that. If today’s discussion sparked any questions or ideas, we’d love to hear from you. Reach out to us on LinkedIn, and if you found some value in today’s conversation, please leave us a review. It really helps other wind energy professionals discover the show.
And don’t forget to subscribe so you never miss an episode. And so for Rosie, Yolanda, and Matthew, I’m Allen Hall, and we’ll see you here next week on the Uptime Wind Energy [00:34:00] podcast.
-
Greenhouse Gases12 months ago
Guest post: Why China is still building new coal – and when it might stop
-
Climate Change12 months ago
Guest post: Why China is still building new coal – and when it might stop
-
Greenhouse Gases2 years ago嘉宾来稿:满足中国增长的用电需求 光伏加储能“比新建煤电更实惠”
-
Climate Change2 years ago嘉宾来稿:满足中国增长的用电需求 光伏加储能“比新建煤电更实惠”
-
Climate Change2 years ago
Bill Discounting Climate Change in Florida’s Energy Policy Awaits DeSantis’ Approval
-
Renewable Energy9 months agoSending Progressive Philanthropist George Soros to Prison?
-
Carbon Footprint2 years agoUS SEC’s Climate Disclosure Rules Spur Renewed Interest in Carbon Credits
-
Greenhouse Gases1 year ago
嘉宾来稿:探究火山喷发如何影响气候预测
