The ocean cleanup | Deep Sea News https://deepseanews.com All the news on the Earth's largest environment. Mon, 14 Jan 2019 00:00:31 +0000 en-US hourly 1 https://wordpress.org/?v=7.0 The (ocean) physics of The Ocean Cleanup’s System 001 https://deepseanews.com/2019/01/the-ocean-physics-of-the-ocean-cleanups-system-001/ https://deepseanews.com/2019/01/the-ocean-physics-of-the-ocean-cleanups-system-001/#comments Wed, 09 Jan 2019 18:46:18 +0000 https://www.deepseanews.com/?p=58761 The following is a guest post by Dr. Clark Richards, a physical oceanographer at the Bedford Institute of Oceanography in Halifax, Canada. It was originally…

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The following is a guest post by Dr. Clark Richards, a physical oceanographer at the Bedford Institute of Oceanography in Halifax, Canada. It was originally posted on his personal blog. Clark is an expert in geophysical fluid dynamics, ocean robots and throwing really expensive stuff in the ocean in treacherous places.

Introduction

The Ocean Cleanup, brainchild of Dutch inventor Boyan Slat, was in the news again this past week after announcing that in addition to the fact that their system is unable to collect plastic as intended, it suffered a mechanical failure. “Wilson” is currently being towed to Hawaii, where it will undergo repairs and upgrades, presumably to be towed back out to the garbage patch for a second trial.

I am not a mechanical engineer, so I don’t intend to comment on the details of their mechanical failure. I am, however, a sea-going oceanographer. Which means that I am used to the sorts of situations with scientific research equipment that was so succinctly paraphrased by Dr. Miriam Goldstein:

“The ocean is strong and powerful, and likes to rip things up.” ![Dr. Miriam Goldstein. Prescient oceanographer]
“The ocean is strong and powerful, and likes to rip things up.” ![Dr. Miriam Goldstein. Prescient oceanographer]
In short — the ocean is a difficult place to work. There are literally CONFERENCES dedicated to the engineering of putting thing out to sea and having them survive (see the MTS Buoy Workshop, which I have participated in). There is a saying in oceanographic fieldwork: if you get your gear back, it was a successful program. If it recorded data — that’s icing on the cake.

Designing for physics

But beyond the engineering, there are the questions of what the *physics* are that TOC are relying on for their system to be successful. Some of you may recall that the original design was to moor (i.e. *anchor*) their device in 6000m (20000 feet) of water, and let existing ocean currents sweep garbage into the U-shaped structure. Thankfully, they realized the challenges associated with deep-ocean moorings, and abandoned that idea.

The latest design iteration (misleadingly called “System 001”, as though they haven’t built and tested any other previous to it), is to have a freely-drifting system, avoiding the use of anchors. TOC claim that under the influence of current, wind, and waves, their design will drift *faster* than the plastic — causing it to accumulate in the U, making for easy pickup. They summarize the concept with a little explainer video on their website, with a representative screen shot below:

Nice how the wind, waves, and current all are going in the same direction!!!
Nice how the wind, waves, and current all are going in the same direction!!!

Based on a quick Twitter rant that I had after thinking about all this for a few minutes (see here), I wanted to explain out the various points that have either a) been missed by TOC design team, or b) deliberately excluded from their rosy assessment of how they expect their system to actually collect garbage. What follows is a “first stab” at a physical oceanographic assessment of the basic idea behind “System001”, and what TOC would need to address to convince the community (i.e. scientists, conservationists, etc) that their system is actually worth the millions of dollars going into development and testing.

The premise

As outlined in the video, the premise of System001 as a garbage collection system is that through the combined action of wind, waves, and currents, the U-shaped boom will travel faster through the water than the floating plastic, thereby collecting and concentrating it for eventual removal. This appears to be based on the idea that while both the boom and the plastic will drift with the current, because the boom protrudes from the water (like a sail), it will actually move faster than the surface water by catching wind.

There are some issues with this premise. Or, at least, there are some real aspects of oceanography that have either been ignored or missed in thinking that such a system will behave in the predictable way described by TOC. I’ll try and outline them here.

Stokes drift

Any of you who may have had an introduction to ocean waves may have heard that during the passage of a wave, the water particles move in little circles (often called wave orbital motion). While not a bad “first-order” description, it turns out that for real ocean waves there is also some drift in the direction of wave propagation. This drift is named after Gabriel Stokes, who first described it mathematically in 1847 (see wikipedia article here).

Image of stokes drift
Stokes Drift

The amount of drift depends nonlinearly on both the amplitude and the wavelength of the wave. For example, for a 0.5m amplitude wave with a wavelength of 10m and period of 10s (something like typical ocean swell), the drift velocity is about 10 cm/s right at the surface.

Of course, the Stokes’ solution describes the motion of the water parcels being moved by the wave. For those water parcels to then have an effect on anything in the water, one would need to consider the various components of force/impulse/momentum (i.e. our buddy Sir Isaac Newton). Needless to say, it seems obvious that a smallish piece of neutrally buoyant plastic will respond to the Stokes drift much more readily than a 600m long floating cylinder with a large mass (and therefore large inertia).

This alone could be enough to quash the idea of a passive propagating collection system. Mr Slat?

Ekman currents

While we’re talking about long-dead European fluid mechanics pioneers, any study of the effect of winds and currents wouldn’t be complete without a foray into the theories proposed by Swedish oceanographer Vagn Walfrid Ekman in 1905. What Ekman found was that when the wind blew over the surface of the ocean, the resulting current (forced by friction between the air and the water) didn’t actually move in the same direction as the wind. The reason for this is because of the so-called “Coriolis effect”, whereby objects moving on the surface of the Earth experience an “acceleration” orthogonal to their direction of motion that appears to make them follow a curved path (for those who want to go down the rabbit hole, the Coriolis acceleration is essentially a “fix” for the fact that the surface of the Earth is non-inertial reference frame, and therefore doesn’t satisfy the conditions for Newton’s laws to apply without modification).

Anyway — the consequence is that in an ideal ocean, with a steady wind blowing over the surface, the surface currents actually move at an angle of 45 degrees to the wind direction! Whether it’s to the left or right of the wind depends on which hemisphere you are in — I’ll leave it as an exercise to determine which is which. And what’s cooler, is that the surface current then acts like a frictional layer to the water just below it, causing it to move at an angle, and so on, with the effect being that the wind-forced flow actually makes a SPIRAL that gets smaller with depth. This is known as the Ekman spiral.

Ekman Spiral
Ekman Spiral

The actual depth that the spiral penetrates to depends on a mysterious ocean parameter called Az, which describes the vertical mixing of momentum between the layers — kind of like the friction between them. What is clear though, is that a small particle of plastic floating close to the surface and a 3m deep floating structure will likely not experience the same wind-forced current, and therefore won’t move in the same direction. Hmmm … that’s going to make it hard to pick up pieces of plastic.

What is a “Gyre” anyway?

The final point I wanted to make in this article (I have more, which I’ll summarize at the end for a possible future article), is to try and give a sense of what currents in the ocean (including in the “gyre” or in the region often referred to as the “Great Pacific Garbage Patch”) actually look like. The conception that there is a great swirling current 1000’s of km across is true only when the currents are averaged for a very long time. At any given instant, however, the ocean current field is a mess of flows at various space and time scales. An appropriate term for describing typical ocean flow fields is “turbulent”, as in an oft-viewed video made by NASA from satellite ocean current data.

To illustrate this, I took some screenshots of current conditions from the wonderful atmosphere/ocean visualization tool at earth.nullschool.net showing: ocean currents, surface waves, and wind.

Ocean Currents
Ocean Currents

 

Ocean Waves
Ocean waves
Wind
Wind

These images illustrate the potential problem with TOC idea, by highlighting the fact that the wind, wave, and current fields of the ocean (including even in the “quiet” garbage patch) are highly variable spatially and temporally, and are almost never aligned at the same period in time. What’s more, is that the currents and waves at a given time and location are not always a result of the wind at that location. Eddies in the ocean are generated through all kinds of different processes, and can propagate across ocean basins before finally dissipating.

Similarly, surface waves have been measured to cross oceans (i.e. the famous “Waves across the Pacific” study pioneered by the transformative oceanographer Walter Munk).

Other issues

Following the “rule of three”, I tried to hit what I consider to be the biggest concerns with TOC system design and principle, from my perspective as a physical oceanographer. However, there are other issues that should be addressed, if the system as designed is really believed by the TOC team to be capable of doing what they say. And really, it seems like a crazy waste of time on behalf of everyone involved to have spent this much time on something if they aren’t sure it will even work theoretically … not to mention the money spent thus far. So, part of me *has* to believe that all the dozens of people involved care deeply about making something that might actually work, and they have studied and considered all the effects and potential issues I (and others) have raised.

Anyway, the other issues are:

  • What is the actual response of the system to a rapid change in wind/wave direction? Wind can change direction pretty quickly, especially compared to ocean currents. What’s to prevent a bunch of accumulated plastic getting blown out the open end of the U after a 180 degree shift in wind but before the system can re-orient?
  • What about wave reflection from the boom structure itself? It is a well-known fact that objects (even floating ones) can reflect and “scatter” waves (scattering is when the reflected waves have a shorter wavelength than the original ones), and it seems like this could create a wave field in the U that might actually causes drift *out* of the system.
  • The idea that all wildlife can just “swim under” the skirt (because it’s impermeable) is not supported by anything that I consider to be rigorous fluid mechanics, aside from the fact that much of what actually lives in the open ocean are non-motile or “planktonic” species. There are a lot of communities in the open ocean that float and drift at the surface, and I see no way that if the System collects floating plastic as it is designed that it won’t just sweep up all those species too. The latest EIA brushed off the effect of the System on planktonic organisms by stating that they “are ubiquitous in the world’s oceans and any deaths that occur as a result of the plastic extraction process will not have any population level effects”. But that doesn’t take into account that the stated mission is to deploy 60 such systems, which are estimated to clean the garbage patch of surface material at a rate of 50% reduction every 5 years. It stands to reason that they would also clean the Pacific of its planktonic communities by the same amount.

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What did the Boyan Slat and the Ocean Cleanup do last summer? https://deepseanews.com/2017/01/what-did-the-boyan-slat-and-the-ocean-cleanup-do-last-summer/ https://deepseanews.com/2017/01/what-did-the-boyan-slat-and-the-ocean-cleanup-do-last-summer/#comments Tue, 03 Jan 2017 14:54:20 +0000 https://www.deepseanews.com/?p=57513 Because I haven’t written an update on the Ocean Cleanup and Boyan Slat in a while… They deployed a 100-m long prototype that is really…

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Because I haven’t written an update on the Ocean Cleanup and Boyan Slat in a while…

They deployed a 100-m long prototype

that is really 30-year old RO-BOOM technology

with some new fancy hardware.

 

Deployed in only 30 m of water

during a calm summer

the prototype failed after 2 months.

Because shackles.

It cost $2 million euros

and collected ZERO pieces of plastic.

If you, like me, are concerned about plastic in the ocean consider helping groups like The Ocean Conservancy who collected more than 18 million pounds of trash during the 2015 Coastal Ocean Cleanup or Mr. Trash Wheel and Professor Trash Wheel who has collected 1,050,540 lbs. of trash from Baltimore’s Inner Harbor since May 9, 2014. The problem of ocean plastic isn’t solved yet.

 

 

 

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The Ocean Cleanup deployed a prototype and I honestly have A LOT of questions https://deepseanews.com/2016/06/the-ocean-cleanup-deployed-a-prototype-and-i-honestly-have-a-lot-of-questions/ https://deepseanews.com/2016/06/the-ocean-cleanup-deployed-a-prototype-and-i-honestly-have-a-lot-of-questions/#comments Thu, 23 Jun 2016 19:38:20 +0000 https://www.deepseanews.com/?p=57084 Judging from the number of emails Miriam and I received from reporters today, the general public wants to hear what we have to say about…

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Judging from the number of emails Miriam and I received from reporters today, the general public wants to hear what we have to say about the project a lot more than the Ocean Cleanup does. But with the new media blitz that is going on, I admit I checked out the prototype that the Ocean Cleanup just deployed in the North Sea. I have to say that I am glad they are testing a smaller prototype before deploying the largest structure in the ocean, but I also have a lot of questions. At the risk of being called some kind of ocean-progress luddite for the umpteenth time on the internet, I am going ask them here. Hell, I might even put on my ocean-old-lady cranky pants and ask them in ALL CAPS. BECAUSE I CAN. But seriously, projects can only get better and succeed if they answer criticism so I hope the Ocean Cleanup can answer them!

Why are they using RO-BOOM oil booms?

Andrew Thaler over at Southern Fried Science pointed this out. RO-BOOMS are commercially available oil containment spill booms that have been around at least since 1988. I would assume that something is known about their durability?

Image from The Ocean Cleanup Media Department
Image from The Ocean Cleanup Media Department

Yup, definitely a RO-BOOM.

Image from https://amp.twimg.com/v/bb87e82f-f2e4-4f57-95bb-5195ece6bc5a
Image from Netherland’s Ministry of Interior and Environment https://amp.twimg.com/v/bb87e82f-f2e4-4f57-95bb-5195ece6bc5a

 

Excuse my language, BUT WHY THE F** ARE THEY BLACK?

You just spent all this money to add a custom paint job to a floating advertisement potential maritime hazard and it’s one of the least visible colors at sea. I CAN’T EVEN.

Image brought to you by the photoshoppers at The Ocean Cleanup Media
Image brought to you by the photoshoppers at The Ocean Cleanup Media Department

 

Where are the booms?

There’s gotta be a notice to mariner’s out there somewhere. In case you don’t know what this is, it’s a public announcement that you have to put out when ever you deploy anything at sea. So people don’t run over it or anything cause it’s camouflaged.

Are these the booms the 1 km deployment planned for Japan will use?

ARE THEY? I NEEDS TO KNOW. They look a lot different from the booms that were tested at the Marin Facility. PoolNoodle

which also seems to be different than what was tested at the Deltares facility.

dws-ocean-clean-up-boom-test-deltares-350px

Do the maybe intended booms actually collect plastic?

No seriously, there seems to have been a lot of effort to test the structural stability, but no testing whether they actually collect plastic and debris. I would have liked to see them drag the barrier around a bit just to see before deploying a big and expensive mooring if it is indeed the one they are going to use. As the Feasibility study indicated, sometimes the barriers can’t collect plastic so it would be useful to know when this is.

Remember that time Boyan tested the concept with three pieces of plastic...SO DREAMY.
Remember that time Boyan tested the concept with three pieces of plastic…SO DREAMY.  https://www.youtube.com/watch?v=6IjaZ2g-21E

How did they get funding EUR 0.5 Million from the Dutch Government?

Is there a public proposal? It would be great to see, especially since this is now a publicly funded project and it would be great resource for reporters interested in the project (instead of them asking Miriam and I to constantly peer review it…grumble grumble).

Original image from the Ocean Cleanup Media Team
Original image from the Ocean Cleanup Media Department

 

That’s all I got for now. Any more questions you can ask Andrew Thaler at Southern Fried Science who also has questions.

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Where is the best place to put your ocean cleanup device? Not where currently proposed. https://deepseanews.com/2016/01/where-is-the-best-place-to-put-your-ocean-cleanup-device-not-where-currently-proposed/ Wed, 20 Jan 2016 17:55:06 +0000 https://www.deepseanews.com/?p=56650 You might think that to clean up the problem of plastic in the ocean, you should place your cleanup device where there is the most…

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You might think that to clean up the problem of plastic in the ocean, you should place your cleanup device where there is the most plastic. And this isn’t a horrible initial assumption, which has been made by “The Ocean Cleanup”. But a slick new modeling study by Peter Sherman and Erik van Sebille show that’s not the case. If you want to extract plastic from the ocean, you had better cast your nets right off the coasts of the world’s largest polluters, not in the center of the North Pacific Garbage Patch as proposed by the Ocean Cleanup.

Them dots? That's where you should remove ocean plastic.
Them dots? Put your newfangled contraptions there. [Source: https://iopscience.iop.org/article/10.1088/1748-9326/11/1/014006 ]
To do this, a bunch of plastic was dumped into a model ocean. They simulated litter bugs: countries that mismanaged waste and had higher population densities input more plastic; and chronic human addiction to plastic use: exponentially increasing plastic input from 1965-2025. Stir in some tracers, sprinkle in a bunch of hypothetical sinks to capture plastic, add in a dash of ecosystem modeling (moar plastic = moar problems for phytoplankton), prepare 500 different scenarios and simmer for a week*.

The results? You had better put most of your 29 giant plastic scooping machines close to where the biggest litter bugs reside, near coastal Asia. Where you shouldn’t put them? In the center of the North Pacific Gyre.

Depressing graph shows removing plastic isn't that effective
Depressing graph shows removing plastic isn’t that effective [Source: https://iopscience.iop.org/article/10.1088/1748-9326/11/1/014006]
Even sadder, if you place the sinks at the most optimal locations, only 31% of the total plastic in the ocean will be removed by 2025. That means there will STILL BE A 4% increase in plastic. If the sinks are placed in the locations proposed by the Ocean Cleanup, only 17% of plastic will be removed. Bummer on both accounts.

But it’s not all doom and gloom people, this study lends support for reducing plastic use and just stopping it from getting into the ocean. That’s why I think projects like the Baltimore’s Mr. Trash Wheel and Seabin are so awesome, they are stopping trash and plastic from getting into the ocean right now. And while it’s known that I am not an ardent fan of the Ocean Cleanup, and this is certainly not an endorsement, this study does lend some support for relocating the proposed array closer to the coasts in shallower water which would be easier to design, build and service**. Here’s to hoping the Ocean Cleanup takes the conclusions of this research to heart, but I’m not holding my breath since they are only oceanographers.

*This paper judiciously doesn’t address engineering or even feasibility, but rightfully so. It just assumes that no matter where a plastic sink was put it operates at 45% efficiency (the number put forth by the Ocean Cleanup people), which is all you need to figure out the best place for your ocean cleanup booms.

** This is totally ignoring that when the array is moved inshore, you might not be in international waters anymore, subject to maritime laws of different countries and will now have to contend with much more ship traffic and larger sea life.

REFERENCES:

P. Sherman and E. van Sebille. Modeling marine surface microplastic transport to assess optimal removal locations. Environmental Research Letters, 11(1):014006, 2016.

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The Ocean Cleanup, Part 2: Technical review of the feasibility study https://deepseanews.com/2014/07/the-ocean-cleanup-part-2-technical-review-of-the-feasibility-study/ https://deepseanews.com/2014/07/the-ocean-cleanup-part-2-technical-review-of-the-feasibility-study/#comments Mon, 14 Jul 2014 14:00:10 +0000 https://www.deepseanews.com/?p=52719 INTRODUCTION This is the second of a two-part post. In the first installment, Kim presented alternatives to this project. This installment is a collaboration between…

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Im
Image courtesy of Shutterstock

INTRODUCTION

This is the second of a two-part post. In the first installment, Kim presented alternatives to this project. This installment is a collaboration between Kim and Miriam. Dr. Kim Martini is a physical oceanographer who has been involved in the deployment of a variety of deep sea oceanographic moorings. Dr. Miriam Goldstein is a biological oceanographer who has studied the ecological impacts of plastic pollution in the North Pacific Subtropical Gyre.

Last year, we reviewed the Ocean Cleanup project. This project was created by 19-year-old engineering student Boyan Slat, who was drawn to the idea after encountering plastic pollution in the Mediterranean. In the first draft of the project which was presented through conceptual renderings and a TEDx talk, Mr. Slat claimed that his design could clean the North Pacific Subtropical Gyre of plastic in 10 years. This garnered substantial publicity, causing us to write a lighthearted review of the project pointing out serious technical concerns. In response, Boyan assured us and other critics that these critiques would be addressed in an feasibility study. That feasibility study was released on June 3, 2014.

Originally, we had decided not to engage with this project again, since being a naysayer is neither fun nor professionally rewarding [1]. However, we have decided to team up to conduct a serious technical review of the feasibility study for the following reasons:

  • We believe that the popular momentum behind the Ocean Cleanup could lead to real change provided it is channeled into a workable solution.
  • We believe that scientists have a duty to communicate to the public on topics that the public wants to know about. Our education and research has been largely funded by federal and state taxpayers, and we believe that brings a responsibility to use it.
  • We believe in the peer review process, both before publication and post-publication. Science is built on criticism. While peer review is by no means perfect, we have both found that a robust peer review process has greatly improved our own science. Since crowdfunding sidesteps the formal grant review process and makes funding requests public, it is appropriate that the review be public as well.
  • We have received many requests for a critical evaluation of this study. So far as we know, no other scientists have conducted a review of the full Ocean Cleanup feasibility study.
  • As Mr. Slat has indicated in this post, our previous comments on this project are indeed outdated. He has also indicated that he is open to serious critiques of the feasibility study.

The reader may notice that this post has a much more serious tone than our past critique, or our usual blog posts. This is because we wish to convey that we are critiquing the Ocean Cleanup feasibility cleanup project in a formal, impersonal manner – the same way that we conduct reviews in the standard scientific peer-review process.

SUMMARY

We think that the Ocean Cleanup genuinely wants to help the ocean, and we commend them for taking our past critiques seriously. Some parts of the feasibility study are thoughtfully and carefully done, such as Chapter 3.3, Boom Capture Efficiency. However, other sections of the feasibility study are incomplete and/or inaccurate, and there is a lack of cohesion between sections. In addition, some of the conclusions presented in the executive summary are not backed up by the conclusions in the individual sections.

The feasibility study still has major technical issues that must be addressed before such as large-scale project is truly functional. The most fundamental problem is that there is an overarching use of average rather than extreme current speeds to estimate operational limits in the design process. This is a faulty assumption on which to base engineering specifications, one which propagates through many of the modeling studies used to assess both the technical and economic feasibility of this project. Another fundamental problem that has not been adequately considered is biofouling – the inevitable growth of marine life on the structure – which will change the hydrodynamics and may add considerable load to the structure. As currently designed, the moored array is under-engineered and likely to fail.

In addition, many of our original comments have not been fully addressed. While the feasibility study includes chapters on boom design, environmental impacts, bycatch, and high seas law, they are largely reviews and do not provide a framework for how the Ocean Cleanup will address these fundamental issues.

We recognize the substantial work that has gone into producing this feasibility study, and commend the Ocean Cleanup for their methodical response to past critiques. However, it is our opinion that information contained in this report has not proven that the Ocean Cleanup as currently described is feasible.

We provide detailed technical critiques of fundamental aspects of the project below. Because the full feasibility study is 528 pages long and spans many fields, this review is not comprehensive. We have focused on two main issue areas – the design of the structure, and the environmental and legal context in which the structure would be deployed. Our major criticisms are:

  • The pilot study of plastic pollution upon which the array design is based was inadequate to obtain a depth profile of ocean plastic.
  • The preliminary testing and analysis of a prototype boom is incomplete and does not “validate the capture and concentration potential of a floating barrier with a skirt depth of 3 m” (p. 29).
  • The modeling studies severely underestimate potential loads and tensions on the moored array and boom. Therefore, they are insufficient to properly design a mooring concept and estimate potential costs.
  • No workable solution for biofouling is suggested.
  • Since the authors had access to ORCAFLEX, a professional software package to design offshore marine structures, a full-scale mooring array could have been modeled to estimate loads and tensions on the moored array, but was not.
  • Structural deformation of the array and loss of functionality by ocean currents are not addressed.
  • The final boom presented in Section 3.6 is significantly different from the designs modeled in Section 3.3, 3.4 and 3.5. Collection efficiency calculations are likely inaccurate in light of the radical redesign.
  • It is unlikely that it will take only one ship to assemble and deploy what could potentially be the largest offshore structure ever designed as estimated in the feasibility study.
  • There are several very difficult design hurdles for the processing plant that need to be overcome.
  • Many of the taxa discussed in Chapter 6 (Environmental Impacts) do not actually inhabit the North Pacific Subtropical Gyre. No serious attempt is made to assess effects on the taxa most likely to be impacted.
  • The legal chapter is inadequate, especially when dealing with potential bycatch of highly migratory species, which the chapter itself deems “highly likely.”
  • Inconsistent numbers/statements are used between sections.

Further explanations are given below.

DESIGN ISSUES

The pilot study of plastic pollution upon which the array design is based  was inadequate to obtain a depth profile of ocean plastic.

The pilot study to measure the depth profile of plastic (p. 100) was conducted in the northeast Atlantic in November. It is unclear why the authors only measured plastic densities in the upper 5 meters of the water column, especially when plastic has been documented to mix below this depth (Kukulka et al. 2012), and the upper ocean structure during the survey is favorable to deep plastic mixing. There is a deep surface mixed layer that reaches down to 100 m in November (de Boyer Montégut et al. 2004), and it is known that winds are easily able to mix surface plastic throughout this layer (Kukulka et al. 2012).

The authors’ conclusion that the majority of plastic is in the upper 3 meters is invalid, since they did not sample below 5 meters. At least one sample below 5 meters should have been taken to compare plastic concentrations deeper in the water column. In addition, since the top of the multilevel trawl varied between 1-1.5 meters above the surface (page 101 and minute 1:31 in this video), we can assume the depths of the net varied by up to 0.5 meters. In this circumstance, a vertical bin resolution of 1 m can only be obtained if one assumes that the frame is completely vertical, which it likely was not.

Since plastic size is important, as the array can not extract particles smaller than 2 cm (p. 175) the authors should have also divided the samples by size.

The preliminary testing and analysis of a prototype boom is incomplete and does not “validate the capture and concentration potential of a floating barrier with a skirt depth of 3 m” (p. 29). Instead of building a larger prototype as proposed, the authors should conduct a more rigorous field test with the prototypes they have.

The preliminary testing of 40-m boom moored in 25 meter deep water is extremely problematic for four reasons:

  1. There is insufficient data to determine whether the boom structure could capture floating plastic as the extent of their testing was watching four pieces of floating plastic thrown directly into the boom arch become captured by it, and move towards its center at an unmeasured speed, distance or duration. This can be seen at minute 2:33 in this video and is described on p. 349: “From the boat, one buoy, one bottle, one mesoplastic fragment and one microplastic fragment were released. Visual observations of the movement of plastic particles in front of the boom were made from the boat. This plastic was later recovered by a diver, who also witnessed the plastics’ behavior from under the water.”
  2. The boom was unable to capture plastic when currents were increased to 0.3-0.6 m/s by towing it, causing the skirt to surface (p. 353). These are current speeds the boom the array is expected to experience (Table 2.1.2). It is unclear at what current speeds the skirt worked because the current velocity was not quantified and only stated to be “moderate.”
  3. The content in Section 7.4 Motion Observations (p. 352) is insufficient to determine how the boom will operate in real ocean conditions.
  4. To determine impacts on zooplankton abundance, the authors anchored a zooplankton net to the side and behind the boom and skirt apparatus. However, this design does not actually measure the quantity of zooplankton entering the net. Therefore, it is not possible to quantitatively determined (nor qualitatively determined as the authors suggested on p. 29) whether there is zooplankton bycatch, since the amount of zooplankton entering vs. the amount of zooplankton existing the net cannot be compared.

Moreover, as described on p. 351, the authors use a “visual comparison” of the zooplankton biomass to conclude that there is no zooplankton bycatch. While we do not believe that zooplankton interactions are a particular issue with this design (but see comments on the Environmental Impacts section below), simply looking at the cod ends and concluding they look more or less the same is not an adequate scientific design. We recommend that future studies use the standard metrics of displacement volume and/or dry biomass to make such a comparison. In addition, it would be helpful to determine if particular taxa (e.g., larval fishes) are vulnerable to bycatch in the apparatus.

Recommendations for further testing:

  1. Retest the existing boom under more realistic conditions: longer duration deployment with a trawl net attached at the center so that the capture of free-floating plastic and absence of zooplankton bycatch can be verified. This could potentially be done close to shore at relatively low cost.
  2. Quantification of environmental variables during testing such as current speeds, plastic particle speeds and winds.
  3. Complementary modeling and testing of the prototype skirt and boom, as the skirt weight, ballast weight and current conditions are all potentially known. From this, the accuracy of the conceptual boom model could be evaluated and will aid in further boom design.

The modeling studies severely underestimate potential loads and tensions on the moored array and boom. Therefore, they are insufficient to properly design a mooring concept and estimate potential costs.

The authors have carefully modeled the variability of the surface sea state in modeling loads due to wave action (p. 197). However, similar attention was not paid to surface current velocity. It is very troubling that mean ocean currents (p. 197, 158, 204) rather than the maximum currents are used for the majority of the modeling studies. The moored array will experience much higher currents for over 50% of its deployment (p. 124-125) and therefore may exceed the tensions and loads for which it was designed. Some attention is paid to the impact of storms on p. 302, but no solution is presented. As designed, the array could be damaged by above-average currents and may suffer complete structural failure.

We presume the skirt and ballast modeling also used the mean, although the value used is not provided (Section 3.6.3 and 3.6.5). This is a particularly important for the skirt modeling as the preliminary field tests showed that at relatively moderate current speeds (0.3 m/s, p. 353), the lateral forces on the passive particle collection skirt were too great, causing it to surface and to be unable to collect plastic.

It should be noted that smaller than average currents were used in the Boom Capture Efficiency Modeling (0.05-0.15 m/s, p. 158). Larger currents could either lead to increased efficiency because particles are transported to the central collection spar buoy faster or decreased efficiency as larger flow velocities push plastic under the skirt.

Another possible load source, windage on the area of the boom that is above water, is not considered. It is also unclear how biofouling or very large debris items such as ghost nets would impact the loads on the structure. (For more on biofouling, see Biofouling section below).

The input parameters to the OrcaFlex program could also have been more consistent with the final design. A water depth of 100 or 200 m (on p. 195 the Orcaflex model depth is 100 meters, on p. 197 depth is 200 meters) was chosen instead of 4,000 m. They also model the anchor lines tilted at 45 degrees to horizontal, when they estimate it will be at 20 degrees on p. 228. The boom design also changed significantly in Chapter 3.6, Boom Concept Refinement. While these changes were done to save computational time, it is unclear how the estimated tensions will scale up to a full-sized array and the authors’ statement that they “assume” it will is not reassuring.

To determine open-ocean feasibility, OrcaFlex should be parameterized using open-ocean values, such as realistic depths and extreme (winter storm) conditions.

No workable solution for biofouling is suggested. (Section 5.3, p. 294).

The main conclusion of the biofouling chapter is that mechanical cleaning is too expensive, which indicates the only solution is the use of a biocide to kill biological growth. However, even with the biocidal coating, the array will certainly become fouled. Even non-stationary platforms such as gliders become fouled, despite using coatings, and the North Pacific Subtropical Gyre is home to a robust rafting community (e.g., Goldstein et al. 2014). The report states that biocidal antifoulants last for 5 years at best before the structure has to be hauled out, cleaned, and repainted (p. 299), but the Ocean Cleanup structure is intended to be deployed for 10 years (p. 144). Essentially, the biofouling chapter in the feasibility report states that they do not yet have a feasible plan to control biofouling on such a large, remote, stationary structure.

There is also no estimate for increased drag caused by biofouling. On p. 296, the report states, “One of the largest problems presented by fouling on a floating structure is that of increased weight. The structure will be designed to sit at an optimal position on the surface. But if the weight is significantly increased, it could float below the surface or even sink entirely. As the Array’s booms are estimated to be tens to hundreds of kilometers in length, the potential for fouling weight problems is substantial. Under optimal conditions the mass of biofouling can reach tens to hundreds of kilograms per square meter. The conditions in the open ocean are far from optimal, but this value may serve as a useful worst case scenario for designers.” While the oligotrophic North Pacific Subtropical Gyre is relatively unproductive, substantial fouling communities do develop (e.g, the buoy in this photo), and the surface current velocity of 0.15 m/s assumed in the report is close to the optimal conditions for maximum fouling biomass. “Of course, all marine fouling assemblages are different and exist in different oceanographic conditions, but a general estimate is that the critical current velocity for many species to reach their maximum biomass is 0.2 to 0.5 meters per second.” (p. 298).

Not only will ignoring the effects of biofouling lead to egregious underestimates of structural loads and tensions, but it could also render the careful hydrodynamic calculations presented in the report irrelevant. A well-developed fouling community has a high likelihood of altering the “fluid and particle flow perpendicular to the boom sections” (p. 176) upon which the plastic capture design depends.

Since substantial biofouling is a virtual certainty, the Ocean Cleanup cannot be said to be feasible unless it develops a realistic plan to address this fundamental ocean deployment issue.

Since the authors had access to ORCAFLEX, a professional software package to design offshore marine structures, a full-scale mooring array could have been modeled to estimate loads and tensions on the moored array, but was not.

It is also unclear where they got a tension of 3600 kN for the mooring design load as stated on p. 229.

Structural deformation of the array and loss of functionality by ocean currents are not addressed.

As stated by the authors on p. 197, the boom is unable to collect plastic if the currents are not directly perpendicular to the array. “As a result of acquired environmental data, presented in Chapter 2, the input for current speed was set at 0.15 m/s and it was directed perpendicular to the boom. The perpendicular direction is an operational requirement to collect the plastic.”

Even in the best case scenario, assuming that plastic can be collected when the currents are within 90 degrees of the optimal southwest direction, currents that push plastic into the array only occur 46% of the time (Table 2.1.2). The authors have not considered what would happen to the array if the currents reversed completely, coming from the northeast. Not only would the array be seriously deformed, but plastic that has already been captured by the boom (before reaching the processing plant) could be released back into the Garbage Patch. Increased loads due to horizontal current shear and eddies are not considered.

The final boom presented in Section 3.6 is significantly different from the designs modeled in Section 3.3, 3.4 and 3.5. Collection efficiency calculations are likely inaccurate in light of the radical redesign.

The modeled design has a freely hanging, ballasted skirt that is pushed downstream of the boom, while the final design has a tensioned skirt that creates a “scoop.” While we appreciate adaptive design, the substantial changes to the structure in the new design means that most of the modeling and pilot studies presented in the report are no longer relevant. We cannot assess the feasibility of the new design because no data are presented.

It is unlikely that it will take only one ship to assemble and deploy what could potentially be the largest offshore structure ever designed as estimated in the feasibility study (Chapter 5.1).

Compared to traditional oceanographic moorings, the design of the array is quite complicated. There are multiple cables with multiple connection points. The authors have come up with an interesting plan to deploy the cables with flotation, so that the connections can be made at the surface and later tensioned to the desired depth. However, this design is also potentially very dangerous as these floating cables are not stationary and could become entangled with the deployment ship propellor while making these connections. While more expensive, it would be more sensible to use more than one ship to minimize stray lines that could foul ship propulsion during the array deployment.

There are several very difficult design hurdles for the processing plant that need to be overcome.

The authors have chosen a spar buoy design for the processing plant, which has a deep draft making it a very stable platform (Chapter 4.3). However, spar buoys are very difficult to deploy because the loads and tensions on them are extremely large, so they are rarely, if ever, deployed in water greater than 2,500 meters deep.

ENVIRONMENTAL ISSUES

Many of the taxa discussed in Chapter 6 (Environmental Impacts) do not actually inhabit the North Pacific Subtropical Gyre (NPSG). No serious attempt is made to assess effects on the taxa most likely to be impacted.

In the zooplankton chapter (p. 318), the authors seem unaware that the NPSG is a subtropical, oligotrophic ecosystem with a distinctive neustonic community. Substantial space is given to a discussion of the spring bloom, which is important in the temperate and boreal North Pacific, but not the subtropics where the array will be located. (They reference Cooney 1986 which took place in the northern Gulf of Alaska, a very different ecosystem than the NPSG.) None of the species mentioned in the Zooplankton Diversity section (p. 320) actually inhabit the NPSG. No attention is given to the specialized community that inhabits the air-sea interface (the “pleuston”) in the subtropics (Cheng 1975). Since these taxa (e.g., the drifting chondrophores Velella & Porpita) are obligate inhabitants of the surface layer, they would almost certainly be subject to substantial bycatch and mortality in the Ocean Cleanup plastic collection mechanism.

In the Vertebrate chapter (p. 326), there is no attempt to determine what vertebrates actually inhabit the NPSG. This is reasonably well known thanks to fisheries data and projects such as the Tagging of Pacific Predators study. In particular, commercially important fishes that are known to be drawn to offshore structures, such as tuna and mahi mahi, should have been discussed.

Bycatch is acknowledged to be a problem – “Vertebrates present close to the platform pose the biggest problem. Here, they run the risk of injury or death from the moving parts of the conveyer belt or the slurry pump.” (p 327). Solutions that work in fishing nets (Turtles Excluder Devices) and longlines (pingers) are briefly mentioned, but there is no descriptions of how they would prevent bycatch in the context of NPSG ecology or the Ocean Cleanup’s design. To give one example, sperm whales are known to inhabit the NPSG, but their response to pingers is unknown.

Given the vast and unprecedented size of the Ocean Cleanup array, serious thought must be given to what impacts it might have on protected or commercially important species. More vulnerable taxa (e.g., fishes, turtles, marine mammals) should be given more attention than less vulnerable taxa (e.g., phytoplankton).

The legal chapter is inadequate, especially when dealing with potential bycatch of highly migratory species, which the chapter itself deems “highly likely.”

This section is simply a summary of the current maritime laws. There is no plan for how the Ocean Cleanup will engage with the regulatory process, or monitor catch of protected species as required by international treaties. In the executive summary, the authors indicate that “With regard to vertebrates, harm caused by the barriers seems unlikely because non-permeable barriers are used, although some bycatch may occur in the near vicinity of the platform’s extraction equipment (p. 29).” This statement is directly at odds with the following assessment on p. 378, “Highly migratory species will be highly affected by this project. Swordfish, marlin, sailfish, sharks, tuna-like species are all highly susceptible to being caught in the holding tanks, and possibility diverted by the booms into the platform.” Moreover, the bycatch mitigation methods discussed in the Environmental Impacts section (p. 329) are either not applicable to fishes (pingers and TEDs) or to the Ocean Clean design (changes in bait and hook design and deployment).

OTHER

Inconsistent numbers/statements are used between sections.

Examples include:

  1. Ship costs for mooring deployment on p. 289 is $80,000 USD per day, while in the total costs in Table 5.1, it is only $16,500 USD per day (12K Euro).
  2. The cost estimate for towing the boom platform is only for the outbound trip (7-days on  p. 291 while on p. 290 it is 16.6 day round trip for towing the boom), and does not include the cost and length of the return trip and deployment.
  3. On p. 195 the Orcaflex model depth is 100 m, then on p. 197, the input depth is 200 m.

 

REFERENCES

Cheng, L. 1975. Marine pleuston-animals at the sea-air interface. Oceanography and Marine Biology: An Annual Review 13:181–212.

de Boyer Montegut, C., Madec, G., Fischer, A. S., Lazar, A., & Iudicone, D. (2004). Mixed layer depth over the global ocean: An examination of profile data and a profile‐based climatology. Journal of Geophysical Research: Oceans (1978–2012), 109(C12).

Goldstein, M. C., H. S. Carson, and M. Eriksen. 2014. Relationship of diversity and habitat area in North Pacific plastic-associated rafting communities. Marine Biology 161:1441–1453.

Kukulka, T., Proskurowski, G., Morét‐Ferguson, S., Meyer, D. W., & Law, K. L. (2012). The effect of wind mixing on the vertical distribution of buoyant plastic debris. Geophysical Research Letters, 39(7).

FOOTNOTES

[1] Note from Miriam: As regular Deep Sea News readers might know, my Ph.D. focused on North Pacific Gyre plastic pollution, and I have published several papers on the topic. To his credit, before the feasibility study was released, Mr. Slat reached out to me and asked me to be a reviewer on the physical oceanography chapter. However, by the time he contacted me, the release date for the feasibility report was firmly set, and they needed a 2-week turnaround for a review of a 50-page chapter, which I could not meet. I attempted to find other scientists to review the chapter. Everyone I contacted felt that their time would not be well spent offering serious, substantive comments, since the Ocean Cleanup would not have time to incorporate substantive critiques into their report before the release date. At my request, Dr. Peter Franks, a senior faculty member at Scripps Institution of Oceanography, also agreed to organize Scripps faculty to review the feasibility study if it was presented in a 15-page NSF-style format. The Ocean Cleanup did not respond to this offer.

 

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The Ocean Cleanup, Part 1: Alternatives to reduce ocean plastic https://deepseanews.com/2014/07/the-ocean-cleanup-part-1-alternatives-to-reduce-ocean-plastic/ https://deepseanews.com/2014/07/the-ocean-cleanup-part-1-alternatives-to-reduce-ocean-plastic/#comments Mon, 14 Jul 2014 13:00:09 +0000 https://www.deepseanews.com/?p=52726 This is the first of two-part post. This installment is written by Kim, who will present alternatives to the Ocean Cleanup project to help curb the…

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Shutterstock, providing many images of a polluted ocean.
Shutterstock, providing many images of a polluted ocean.

This is the first of two-part post. This installment is written by Kim, who will present alternatives to the Ocean Cleanup project to help curb the problem of plastic pollution in the oceans. The second installment is a technical review of the Ocean Cleanup feasibility study and is a collaboration between Kim and Miriam .

Last year, Deep Sea News reviewed the Ocean Cleanup project. The brain child of Boyan Slat, he claimed that his design could clean the ocean of plastic in 10 years. At the time the project was just a concept. It was a concept that we found had serious potential problems. As is explained in the technical review, we still think it has a lot of problems.

We can all agree here, we WANT to see plastic in the ocean cleaned up. But it isn’t an easy job and right now there isn’t a catch-all solution. Therefore, I’ve assembled a list of organizations that are actively trying to reduce ocean plastic, and suggestions on how you can help facilitate positive change. Because ocean plastic is a big problem that needs a big solution, and we need to work together on multiple fronts to solve it.

ORGANIZATIONS THAT ARE HELPING REDUCE OCEAN PLASTIC

5 GYRES, BEAT THE MICROBEAD, and THE NORTH SEA FOUNDATION

These microbead containing products may exfoliate, but they also kill the ocean.

These organizations have waged an awesome and successful war against ocean plastic and in particular the terrible microbead. Microbeads are the little pieces of plastic that cosmetic companies put in their products for some extra scrubbiness. But once you wash your face, these microbeads go straight into waterways because they can’t be removed from wastewater*. Working together, 5 Gyres, Beat the Microbead (part of the Plastic Soup Foundation) and The North Sea Foundation has successfully convinced Unilever, The Body Shop, L’Oreal, Colgate-Palmolive, and Johnson & Johnson to all stop using microbeads in their products. These organizations are also working with lawmakers to enact microplastic bans in the US, Canada and Europe. Keep up the good work you banishers of microplastics!

You can also stop using cosmetics with plastic microbeads, but make sure you dispose of them properly.

OCEAN CONSERVANCY

Sometimes you got to use a little muscle to clean the ocean. And that’s just what the ocean conservancy does, each year they organize the International Coastal Cleanup. The next one is September 20. Volunteering is good for your soul and the beach.

SURFRIDER FOUNDATION – RISE ABOVE OCEAN PLASTICS

They surf, they shred, they care about the ocean. The Surfrider foundation is on it with their Rise above Plastics campaign, working at the local and state level to get plastic bags banned and help pass other plastic reducing initiatives.

BALTIMORE’S INNER HARBOR WATER WHEEL

Writer at Southern Fried Science and friend of Deep Sea News Andrew Thaler just alerted us to this really neat trash collecting water wheel. In development since 2008, its collecting plastic before it enters the ocean RIGHT NOW.

Baltimore’s Inner Harbor Water Wheel. Photo by Andrew Thaler.

THINGS YOU CAN DO TO CURB OCEAN PLASTIC

GET INVOLVED LOCALLY

Does your town/city/state recycle? Do they have a plastic bag ban? Is there a ban on microbeads? No? Then get on it people! You can find ways to help make these plastic reducing initiatives a reality in your area and in your country. Congressman Frank Pallone has just introduced legislation to ban microbeads nationwide. But for reals, Seattle started making everyone pay 5 cents per plastic bag and I can see the change when almost everyone brings reusable bags to grocery shop!

REDUCE, REUSE, RECYCLE

Having trouble recycling? Let this totally not posed  for shutterstock infant help you.
Having trouble recycling? Let this totally not posed for shutterstock infant help you.

I have a confession to make to you all. I may love all my new-fangled science gadgets, but I am a big earth loving hippie at heart. I try my best to make my footprint on this earth as small as I can. And you should too.

Before you run away screaming from what you imagine to be my patchouli stink, I just want to clarify that I’m not here to tell you to go all Ed Begley Jr. tomorrow because the ocean is filled with plastic. Instead I just want you to think about making one small change. One small change that you try and abide by regularly to reduce the amount of plastic you use.

Put a reusable bag in your car so you always have a bag at the grocery store. Use tupperware instead of a plastic baggies. Buy something you really want used instead of new (and save money…SCORE!). Bring a reusable water bottle/coffee mug. Cloth diapers if you dare. Cloth wipes if you double dare. Pick up a piece of trash and put it in a waste basket. Use a razor with replaceable blades. Even better, look badass and use a straight razor. Buy laundry detergent in cardboard boxes. Switch out your plastic microbead face wash for one with a natural biodegradable exfoliant like apricot seeds. Use paper disposable plates and compostable dinnerware. Reuse a ziploc bag or get compostable ones. Throw your cigarette butt in the trash instead of the street. Hold onto that bottle until you find an appropriate recycling bin.

Once you get the hang of this one change, add another. It might take a while to make the change a habit, but stick with it. Because I seriously do believe that a little change by everyone is much more effective than one person changing everything. And we all need a little less plastic in this world.

AND FINALLY AN IDEA I LIKE…A LOT.

STORM WATER DEBRIS NETS

I’ll admit, I am particularly enamored with this idea and I REALLY want it to work. By adding nets to the outlets of storm drains, a lot of plastic can be captured before it potentially gets to the ocean (which is also why Baltimore’s water wheel is SO awesome!). But this solution also has its problems, as the nets need to be emptied and maintained. That costs manpower and money. Money many municipalities don’t have right now. I really wish they did. And even if the array doesn’t work, it would be wonderful if the plastic collection technology that results from ocean cleanup project could be adapted to filter plastics from stormwater runoff.

This is the kind of gross stuff that ends up in a stormwater drain and eventually makes its way to the ocean. I repeat, gross.

 

Have any other solutions to reduce ocean plastic? Please list them in the comments below!

*The Ocean Cleanup array can’t collect microplastics, so even if you think the plan will work, STOP USING MICROBEADS NOW.

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