NOAA Teacher at Sea Talia Romito
(Almost) Onboard NOAA Ship R/V Fulmar July 24– July 29, 2012
Mission: Ecosystem Survey Geographical area of cruise: Cordell Bank National Marine Sanctuary Date: June 28, 2012
Personal Log:
Here I am!
Greetings from Monterey, CA! My name is Talia Romito and I teach Physics and Biology at Trinity Christian High School in Monterey, CA. The upcoming school year will be my first year as a Warrior and I am really looking forward to it. The students and staff are amazing and I hope to make a lot of new friends.
I applied to the NOAA Teacher At Sea program so I could get a first hand look at how scientists gather data to better understand the Earth’s environment, and more specifically conserve and protect the plentiful resources our oceans have to offer.
On my voyage I will be joining the crew and scientists aboard the Research Vessel (R/V) Fulmar. Click the name of the ship to find out more about this amazing vessel and the work it allows NOAA to accomplish with the help of the crew and scientists. We will be monitoring the ecosystems in the Cordell Bank National Marine Sanctuary.
The Cordell Bank National Marine Sanctuary is collaborating with the PRBO (Point Reyes Bird Observatory) Conservation Science and the Gulf of the Farallones National Marine Sanctuary in a monitoring effort called ACCESS (Applied Califronia Current Ecosystem Studies).
This monitoring program is amazing and I’m so excited to be a part of this work. I’ve been preparing for a few months to go on this cruise; everything from a very comprehensive online training to increasing my daily workout routine to ensure I am well prepared for the adventure ahead. The next time you hear from me I’ll be onboard the R/V Fulmar in the Cordell Bank and Gulf of the Farallones National Marine Sanctuaries. I plan to create some awesome lesson plans from my experience to teach students about what oceanography is all about! Cheers!
NOAA Teacher at Sea Andrea Schmuttermair Aboard NOAA Ship Oregon II June 22 – July 3
Mission: Groundfish Survey Geographical area of cruise: Gulf of Mexico Date: June 24, 2012
Ship Data from the Bridge Latitude: 2858 N
Longitude: 9310.96 W
Speed: 10 mph
Wind Speed: 6.77
Wind Direction: N/NE
Surface Water Salinity: 30.9
Air Temperature: 28.5 C
Relative Humidity: 79%
Barometric Pressure: 1009.84 mb
Water Depth: 24.3 meters
Personal Log
About ready to set sail!
And the journey has begun! I arrived in Houston on Thursday afternoon, only to be whisked away by Chief Scientist Andre DeBose to meet a few of the other scientists and crew for dinner. I had a great time getting to know a few of the people I will be working with over the next couple of weeks. We arrived to the port at Galveston about 10pm, where I got a quick tour of the Oregon II, my home for the next 2 weeks. Exhausted from traveling, I made myself at home in my stateroom before turning in for the evening.
Because we weren’t scheduled to set sail until 1400, I had a bit of time in the morning to explore Galveston. Being the adventurous type , I took this time to explore the land I would soon be leaving. The Oregon II is docked at Pier 21, located on “The Strand”, a strip filled with historic buildings and tourist shops. I spent most of my morning snapping photos, checking out the shops, and tracking down a good breakfast burrito at one
of the many Mexican food places that don the strip.
The pier in Galveston
Once back at the ship, we were briefed on the “Do’s and Don’ts” while on board, and what our shifts would look like. I am on the night watch, which means I will be working from midnight until noon each day. This will be a tough schedule to get used to, but I’m hoping we’ll see some neat things at night, and that it will be a little cooler out. I knew I should get to sleep as soon as we set sail, however I couldn’t help hanging out on deck for a little while as we left the port. I was rewarded for this opportunity by watching the pelicans and dolphins seeing our ship out of the port. I snapped a few more photos, enjoyed the cool breeze, and then headed down for bed.
I had quite a blast on my first night shift. I think keeping busy was a good thing, even though it was exhausting. I enjoyed getting to know my team a little better, and of course, checking out all the critters! Some of my favorites were the squid, sharp-nose and dogfish sharks, lizardfish, and my all-time favorite so far – the bashful crab.
Why do you think he is called the “bashful crab”?
Science and Technology Log
I am always under the mindset that if you want to learn something, you need to throw yourself in head first. Well, that’s exactly what I did on my very first shift on the Oregon II. We are split up into 2 shifts — midnight to noon or noon to midnight. On my watch, I am working with our watch leader, Alonzo, 2 scientists, Lindsey and Alex, and a volunteer, Renee. Our Field Party Chief Scientist (FPC), Andre, had to leave unexpectedly. Our new FPC, Brittany, was with us a bit of this first watch to make sure we understood our tasks, as I had lots of questions! Not only did I get the privilege to work the nightshift (I know you’re probably wondering why I said privilege — I’ll explain soon), but we also had one of the busiest shifts we’re anticipated to have for the length of this cruise. Just after midnight on Saturday morning, we pulled up our first trawl and conducted our first CTD.
The CTD warming up just below the water’s surfaceRinsing out the CTD with freshwater
A CTD, if you remember from my first blog, stands for Conductivity, Temperature, and Depth. We put the device overboard in the front of the ship (the bow), and let it sit just below the surface for about 3 minutes so the sensors can warm up before we drop it to its scheduled depth. Then we lower it so it is as close to the ocean floor as possible. We do this at every station to collect important information about the oxygen level in the water in these areas. This information is important because we want to find out what the optimal conditions (temperature, salinity and oxygen levels) are for the specimens we collect. Knowing what environmental conditions suit each species allows us to see how shifts in the environment can impact populations. The data from the CTD is displayed on the computer in our dry lab, where the data points are plotted on a graph.
The dry lab is where we process a lot of our data both from the CTD and the sampling. We can monitor our CTD casts and find the weather information here. It is also the area where scientists go when there is a bit of downtime to relax before the next catch is brought in.
Bringing up the trawl — this was a big catch!Working in the dry lab
Over in the back of the ship, also known as the stern, the trawl picks up all sorts of critters from the ocean bottom. When we’re ready, the deck crew helps us bring up the trawl and dump our catch into large buckets on deck. We had so much on the first catch that they dumped it out on the floor and we shoveled it into buckets like we were shoveling snow. We then weighed our catch before bringing it in and sorting it. Our first few catches were quite large — we had 6 or 7 baskets full of critters! Each basket can hold roughly 25kg. So, mathematicians, about how many kilograms were our first couple of catches? The nighttime brings on some interesting animals, and there is a certain excitement to staring out at the pitch black ocean.
Our troughs full of the catch, waiting to be sorted
With these large catches, jumping in head first was exactly what I had to do. I got a quick crash course in how to identify and sort the fish. I had no idea there would be so many different types! From the entire catch, we were to pull out red snapper, shrimp (pink, white and brown only), blue crabs, and anything unusual. We did this by dumping all the fish in a large trough, which we would then dig through to find our samples and place them in separate baskets.
We are pulling out samples primarily of shrimp because that is one of the main focuses of our survey this summer. The estimated abundance of shrimp, calculated from the trawl catches, is used to set limits for the commercial fishermen.
In addition to sorting out these important critters, we would also take what we call a subsample, the size of which is determined by the size of our total catch. Of this subsample, we sorted out everything in this section of the catch. We often had over 20 different types fish or crustaceans! Once the subsample was sorted, Alonzo would then weigh the total weight of a certain species and enter the data into our computer system. From here the fun part really began.
Lindsey is measuring, weighing and sexing the catch while I enter the data into the computer.Weighing the lizardfish
We would measure the length of each critter on our measuring board, which uses a magnetic wand to capture the data and send it directly to the computer database. For most of the species, we would also take the weight of the first fish and every fifth fish thereafter, and, if possible, also determine its sex and stage of maturity. All this information was entered in the database. We typically worked in teams of 2 with one person measuring and weighing the fish and the other entering information into the computer. We were a bit slow to start, but after the first catch we had a system down. Once we had all of our data, we bagged up some of the fish that people have requested for samples while the rest headed back to the ocean. Fish from our survey will go to scientists in lab across the country to study further.
Because all the stations were about 2-5 miles apart on our first watch, we were working nonstop from midnight until about 11am. We pulled up about 7 catches, and almost always had a catch waiting to be sorted on deck.
Hard at work measuring my lizardfish
Got Questions?
Don’t forget, you can leave your questions in the “Comments” section below, and I’ll do my best to answer them!
Critter Query:
Students: Don’t forget to put your name in your response. Remember, the first one to respond correctly will receive a prize in the fall!
Critter Query #1: What’s the biggest commercial shrimp found in the Gulf of Mexico and what is its scientific name?
Critter Query #2: Name 3 types of shark found in the Gulf of Mexico. (more than one correct response — all correct responses will receive a prize providing there are no repeats)
NOAA Teacher at Sea Alexandra Keenan Onboard NOAA Ship Henry B. Bigelow June 18 – June 29, 2012
Mission: Cetacean Biology Geographical area of the cruise: Gulf of Maine
Date: June 23, 2012
Weather Data from the Bridge: Air temperature: 14.4° C
Sea temperature: 13.3° C
Wind speed: 10.5 knots
Wind direction: from the SW
Science and Technology Log:
Whales are social creatures with a remarkable ability to communicate with one another over long distances using sounds. Male humpback whales, for example, can sing for days on end over mating grounds to attract the ladies, or over feeding grounds such as the ones on Georges Bank (where we are!) The acoustic behavior of sperm whales may even provide for distinct cultures within the species.
Given these vocalizations, it is possible to monitor the distribution and behavior of acoustically active marine animals using special recording units called “marine autonomous recording units” (MARUs). For the past few days, we have been zig-zagging and loopty-looping around Georges Bank to retrieve several of these MARUs (track our ship’s course here).
MARUs are little buoys designed to sit on the ocean floor and record all sounds within a certain range of frequencies. The MARUs we retrieved during this cruise have been on Georges Bank since the March cruise on the Delaware II (see Chief Scientist Allison Henry’s blog post).
To retrieve a buoy:
1. An acoustic signal (a sound) is sent out from a speaker lowered into the water that basically says to the buoy, “Hello! Are you there?” Listen: Signal used to contact buoy
Bioacoustician Denise Risch sends a signal to the MARU.
2. The buoy can then respond with another acoustic signal, “Yup!”
Research analyst Genevieve Davis and intern Julia Luthringer listen for a response from the MARU.
3. Upon hearing confirmation that the buoy is indeed in the area, the bioacoustician can send another signal to the buoy telling it to burn the wire anchoring it to the sandbags on the ocean floor.
4. The buoy is free! It floats to the sea surface and is retrieved from the side of the ship.
Denise Risch, Genevieve Davis, and Julia Luthringer wait for the ship to approach the MARU (small yellow dot in ocean).
5. Data is retrieved from flash memory on the buoy for further analysis.
MARU ready for data retrieval.
What will these MARUs be able to tell bioacousticians (scientists that study sounds produced by living organisms)?
Lots! Using passive acoustic monitoring (recording the sounds that marine mammals make), scientists can study the distribution of acoustically active mammals and can couple distribution data with environmental measurements of the area to identify relationships between conditions on the ocean and acoustic activity. Scientists can also distinguish whale species based on their sounds, so certain species of whale can be monitored.
Physics break: Why do you think whales have evolved to use sound rather than sight or smell to communicate underwater?
Personal Log:
I have been amazed by the amount of maintenance being done while we are underway. Even with a relatively new ship like the Bigelow, there is always something to be done, whether it be grinding away at the deck for subsequent repainting or fixing a malfunctioning pump.
Deck crew member Tony repaints the deck after grinding off the old paint while we are underway.
We spend most of our days out on the fly bridge watching for whales, and mostly we see whales.
Equipment used for watching for whales from the flybridge.
However, once in a while a shark, turtle, or mola mola floats by. I really get a kick out of the mola molas. They look like they could be the subject of a Pokemon trading card– a big flat fish head with fins sticking out. They eat jelly fish and have few natural predators. Adults weigh an average of 2200 lbs!
The other-worldly mola mola.
A short video of one in action below:
Finally, I wanted to introduce everyone on the science team for this cruise:
From left to right: Me, Scientist Pete Duley, Bioacoustician Denise Risch, Chief Scientist Allison Henry, Scientist Jen Gatzke, Research Analyst Genevieve Davis, and Intern Julia Luthringer (photo courtesy CO Zegowitz)
Mission: SEAMAP Summer Groundfish Survey Geographical Area of Cruise: Gulf of Mexico Current Location: Waterloo, Iowa Date: June 22, 2012
Introduction
Welcome everyone to my first Teacher at Sea blog post! I am very honored to have been given this wonderful opportunity and am looking forward to this fast approaching experience!
As many of you may already know I am a K-5 gifted and talented teacher for the Expanded Learning Program (ELP) in Waterloo, Iowa and will be going into my third year of teaching this fall. I actually teach at two separate schools in my district, Lowell Elementary and Kingsley Elementary. It is awesome to work with such wonderful staffs and students at both buildings and be a part of both communities!
A picture one of my students took of me.
I love my job and the daily excitement it brings! I love presenting my students with challenges that require them to think in ways they may not have been asked to think before. My favorite part of teaching is watching my students learn and grow each day, and I am always in awe of who they’ve become by the end of the school year. I have always had a passion for supporting the needs of gifted and talented students and am thrilled to be in a position where I am able to do that every day.
Just as it is important for students to learn and grow each day, it is also important that teachers do the same. I am currently working on my Master’s degree at the University of Northern Iowa and will complete my course work next May. I have started preliminary work on my thesis and plan on receiving my degree, Education of the Gifted, in the fall of 2013. It is exciting, challenging work and has reinforced the importance of time management and working toward one’s goals. I always encourage my students to follow their passions and I hope I have set a good example. Overall, it has been a very rewarding experience.
My Passions
Here is a picture of me at age 4 fishing on the Kenai River in Alaska.
Besides gifted and talented education, I have many other passions. Growing up in a military family I was able to see and do things that many have yet to experience. Before I lived in Iowa, I lived in Colorado, Mississippi, and Alaska. (In Mississippi I lived in Biloxi which is VERY close to where I will be starting my Teacher at Sea adventure!) I spent a lot of time outdoors. Hiking, mountain climbing, camping, fishing, and whitewater rafting were many of the things I enjoyed while living in Colorado and Alaska.
View from the top of Eagle Peak in the Sangre de Cristo Mountains of Colorado
I knew from a young age that I was passionate about science. I loved exploring, experimenting, and questioning the “hows” and “whys” of everything around me. My excitement for science continued into college where most of my elective classes were science related. Biology, chemistry, and geology were my favorites. When I took my first geology class I was enthralled by our world’s natural history and how we can “dig up the past”.
After taking a course specific to Iowa geology, I have now learned that geology is exciting everywhere, not just in Colorado. My students can attest to my passion in geology as my room is littered with all of my quarry findings!
Geology ROCKS! – At a local Iowa quarry.
Within the realm of geology is the important connection to our world’s oceans. Many people may think that geology is what we can see on the surface: rocks, mountains, valleys. However, it is important to remember that even at the depths of our oceans, geological activity takes place.
SCUBA diving in Alexander Springs, Florida.
My passion for our world’s oceans began shortly after my first experience snorkeling off the coast of Key West, Florida. After viewing the ocean through a pair of goggles, I was transported into a new and exciting world. Swimming alongside angelfish, parrotfish, barracuda, and sharks was beyond my imagination.
It wasn’t long after my snorkeling adventure on Dry Rocks Reef that I started the certification process to become an Open Water SCUBA diver. While I won’t be able to SCUBA dive during my Teacher at Sea adventure, I will still be able to explore life from the depths of the Gulf of Mexico aboard the Oregon II which will be just as exciting!
My Teacher at Sea Adventure
The mission I will be supporting this summer is the SEAMAP Summer Groundfish Survey. SEAMAP stands for Southeast Area Monitoring and Assessment Program. The SEAMAP-Gulf of Mexico survey has been conducted since 1981.
The NOAA Ship Oregon II conducts a groundfish survey twice each year, once in the summer and again in the fall. Samples are gathered at randomly chosen stations and brought back up to the ship for examination to determine the abundance, distribution, and health of the fisheries in the Gulf of Mexico. The NOAA Ship Oregon II is stationed out of Pascagoula, Mississippi which is where I will begin my journey.
Once my adventure begins, stop back frequently and check for new blog postings! Make sure you leave comments and questions at the bottom of my blogs, especially if it is something I can explore while still aboard the Oregon II! I will make sure to answer you back as soon as I can and maybe even include your answers in my later blogs!
NOAA Teacher at Sea Lesley Urasky Aboard the NOAA ship Pisces June 16 – June 29, 2012
Mission: SEAMAP Caribbean Reef Fish Survey Geographical area of cruise: St. Croix, U.S. Virgin Islands Date: June 20, 2012
Location: Latitude: 18.1937
Longitude: -64.7737
Weather Data from the Bridge:
Air Temperature: 28°C (83°F)
Wind Speed: 19 knots (22 mph), Beaufort scale: 5
Wind Direction: from N
Relative Humidity: 80%
Barometric Pressure: 1,014.90 mb
Surface Water Temperature: 28°C (83°F)
Science and Technology Log
The cameras are a very important aspect of the abundance survey the cruise is conducting. Since catching fish is an iffy prospect (you may catch some, you may not) the cameras are extremely important in determining the abundance and variety of reef fish. At every site sampled during daylight hours, we deploy the camera array. The cameras can only be utilized during the daytime because there are no lights – video relies on the ambient light filtering down from the surface.
Camera array – the lens of one of the cameras is facing forward.
Deployment of the array at a site begins once the Bridge verifies we are over the sampling site. The camera array is turned on and is raised over the rail of the ship and lowered to the water’s surface on a line from a winch that has a ‘quick release’ attached to the array. Once over the surface, a deck hand pulls on the line to the quick release allowing the array to free fall to the bottom of the ocean. Attached to the array is enough line with buoys attached. The buoys mark the array at the surface and give the deck hands something to aim for with the grappling hook when it is time for the array to be retrieved. Once the buoys are on deck, a hydraulic pot hauler is used to raise the array from the sea floor to the side of the ship. From there, another winch is used to bring the array on board.
Vic, Jordan, Joey, and Joe deploying the camera array.
When the array is deployed, a scientist starts a computer program that collects the time, position and depth the array was dropped at. The array is allowed to “soak” on the bottom for about 38 minutes. The initial 3-5 minutes are for the cameras to power up and allow any sediment or debris on the bottom to settle after the array displaces it. The cameras are only actually recording for 25 of those minutes. The final 3-5 minutes are when the computers are powering down. At one point in time, the cameras on the array were actual video cameras sealed in waterproof, seawater-rated cases. With this system, after each deployment, every individual case had to be physically removed from the array, opened up, and the DV tape switched out. With the new system, there are a series of four digital cameras that communicate wirelessly with the computers inside the dry lab.
We did have a short-lived problem with one of the digital cameras — it quit working and the electronics technician that takes care of the cameras, Kenny Wilkinson, took a couple of nights to trouble shoot and repair it. During this time period, we reverted back to the original standard video camera. Throughout the cruise, Kenny uploads the videos taken during the day and repairs the cameras at night so they will be ready for the next day’s deployments.
Squid (before being cut into pieces) used for bait on the camera array
Besides the structure of the camera array which is designed to attract reef fish, the array is baited with squid. A bag of frozen, cut squid hangs down near the middle. The squid is replaced at every site.
Adding bait to the camera array.
In addition to the bait bag, a Temperature Depth Recorder (TDR) is attached near the center, hanging downward near the bottom third of the array. The purpose of the TDR is to measure the temperature of the water at various depths. It is also used to verify that the depth where the camera comes to rest on the ocean bottom and is roughly equivalent to what the acoustic sounding reports at the site. This is important because the camera generally doesn’t settle directly beneath the ship. Its location is ultimately determined by the drift as it falls through the water column and current. The actual TDR instrument is very small and is attached to the array near the bait bag. After retrieving the array at each site, the TDR is removed from the array and brought inside to download the information. To download, there is a small magnet that is used to tap the instrument (once) and then a stylus attached to the computer is used to read a flash of light emitted by an LED. The magnet is then tapped four times on the instrument to clear the previous run’s data. The data actually records the pressure exerted by the overlying water column in pounds per square inch (psi) which is then converted to a depth.
TDR instrumentComputer screen showing the data downloaded from the TDR.
The video from each day is uploaded to the computer system during the night shift. The following day, Kevin Rademacher (chief scientist), views the videos and quickly annotates the “highlights”. The following things are noted: visual clarity (turbidity [cloudiness due to suspended materials], what the lighting is like [backlit], and possible focusing issues), substrate (what the bottom is made of), commercially viable fish, fish with specific management plans, presence of lionfish (an invasive species), and fish behavior. Of the four cameras, the one with the best available image is noted for later viewing.
Computer data entry form for camera array image logs
Once back at the lab, the videos are more completely analyzed. A typical 20-minute video will take anywhere from 30 minutes to three days to complete. This is highly dependent upon density and diversity of fish species seen; the greater the density and diversity, the longer or more viewing events it will take. The experience of the reader is also an important factor. Depending upon the level of expertise, a review system is in place to “back read” or verify species identification. The resulting data is entered into a database which is then used to assign yearly data points for trend analysis. The final database is submitted to the various management councils. From there, management or fisheries rebuilding plans are developed and hopefully, implemented.
Spotted moray eel viewed from the camera array. He’s well camouflaged; can you find him?Coney with a parasitic isopod attached below its eye.Two Lionfish – an invasive species
Personal Log
Today, we are off the coast of St. Thomas and St. John in the U.S. Virgin Islands. We traveled from the southern coast of St. Croix, went around the western tip of the island and across the straight. When I woke up I could see not only St. Thomas and St. John, but a host of smaller islands located off their coastline.
Map of the Virgin Islands. St. Croix and St. Thomas are separated by 35 miles of ocean. It took us about 3 hours to cross to our next set of sampling sites.
Around dinner time last night we had an interesting event happen on board. They announced over the radio system that there was a leak in the water line and asked us not to use the heads (toilets). A while later, they announced no unnecessary use of water (showers, etc.); following that they shut off all water. It didn’t take long for the repairs to occur, and soon the water was returned. However, when I went to dinner, I discovered that the stateroom I’m sharing with Kelly Schill, the Ops Officer, had flooded. Fortunately, the effects of the flooding were not nearly as bad as I had feared. Only a small portion of the room had been affected. The crew did a great job of rapidly assessing the problem and fixing it in a timely manner. After this, I have absolutely no fear about any problems on board because I know the crew will react swiftly, maintain safety, and be professional all the while.
Last night was the first sunset I’ve seen since I’ve been on board. Up until this point, it has been too hazy and cloudy. The current haze is caused by dust/sand storms in the Sahara Desert blowing minute particles across the Atlantic Ocean.
St. Thomas sunset
Today has been a slow day with almost nary a fish caught. We did catch one fish, but by default. It was near the surface and hooked onto our bait. We immediately reeled in the line and extracted it. It was necessary to remove it because it would have skewed our data since it was caught at the surface and not near the reef. This fish was a really exciting one for me to see, because it was a Shark Sucker (Echeneis naucrates). These are the fish you may have seen that hang on to sharks waiting for tasty tidbits to float by. They are always on the lookout for a free meal.
Shark sucker on measuring board
One of the most interesting aspects of the shark sucker is that they have a suction device called laminae on top of their heads that looks a little like a grooved Venetian blind system. In order to attach to the shark (or other organism), they “open the blinds” and then close them creating a suction-like connection.
The “sucker” structure on the Shark Sucker. Don’t they look like Venetian blinds?
I got to not only see and feel this structure on the fish, but also let it attach itself to my arm! It was the neatest feeling ever! The laminae are actually a modified dorsal spines; these spines are needed because of the roughness of shark’s skin. When the shark sucker detached itself from me, it left a red, slightly irritated mark on my arm that disappeared after a couple of hours.
Look, Ma, No Hands! Shark sucker attached to my arm.
Tomorrow we’ll be helping place a buoy in between St. Croix and St. Thomas. It will be interesting to see the process and how the anchor is attached.
With all the weird and wonderful animals we’re retrieving, I can’t wait to see what another day of fishing brings.