NOAA Teacher at Sea
Sabrina Whitaker
Aboard NOAA Ship Thomas Jefferson
August 18-31, 2026
Mission: Hydrographic Survey, Leg 3
Geographic Area of Cruise: Lake Ontario
Date: August 18, 2026
Weather Data from the Bridge
Latitude: 43°51.0527′ N
Longitude: 76°29.1419′ W
Winds: SW at 14 knots
Air Temperature: 74°F
Science and Technology Log
Today was jam-packed with preparation, community, and reflection. I was struck not only by how meticulously everyone prepares for emergencies, but also by the crew’s thoughtful debriefs. They continuously strive for operational perfection, yet never at the expense of appreciating a job well done.
We began the morning with shipboard safety briefings. At sea, addressing a fire quickly is paramount. Everyone has a designated duty and muster station. On land, the standard advice for a building fire is to evacuate immediately—even if it’s small. However, as the Executive Officer (XO) and crew emphasized, if you spot a small fire aboard ship, the best immediate action is to grab an extinguisher and put it out. The reason for this stark difference is simple: on open water, help is miles away. An uncontrolled fire endangers the entire vessel, forcing an abandon-ship scenario that carries far greater risk than tackling a localized flame right away.
There were two new members of the crew besides me. They were assigned to firefighter roles and we went through the process of getting them gear and setting it up so that they could just hop into it if they needed to use it.
Should the call to abandon ship ever be given, comprehensive protocols are already in place. Everyone gathers their immersion suits and proceeds to the lifeboats. Each lifeboat holds up to 20 people. With roughly 30 personnel currently aboard the Thomas Jefferson and several lifeboats available, there is more than enough capacity for everyone.
From safety drills, we transitioned to the Leg Operations Brief, led by Operations Officer Mark Meadows. This meeting serves a dual purpose: preparing for the upcoming leg while reflecting on the previous one. Because personnel rotate frequently—some staying for multiple legs, others returning home or arriving from across the country—a structured presentation ensures a seamless transition. The team openly analyzes both the strengths and challenges of the prior leg to set up the incoming crew for success.
Next was a technical discussion on Pulse Per Second (PPS), a concept directly applicable to the data-collection software used on board. Operations Officer Meadows provided a thorough explanation, highlighting why understanding the mechanics behind our equipment (and its software) is crucial for real-time operational adjustments.
The software generates a pulse display similar to the diagram below:

The time from the leading edge of one pulse to the leading edge of the next is exactly 1 second. Meanwhile, the duration between the leading edge and the trailing edge of a single pulse is approximately 1 millisecond (ms). This subtle nuance means it is remarkably easy for data collection to end up off by a millisecond. In many contexts, that tiny margin is negligible; in high-precision hydrography, it matters. Recognizing how the software handles these signals allows the team to correct data post-collection if needed. It reminded me of a favorite lesson from my own high school physics teacher: Always understand how your equipment works so you know how to troubleshoot it when it doesn’t.
After the briefings wrapped up, it was time to get underway! This was the moment my physics-teacher heart sang. It’s rare to see a fundamental physics concept demonstrated so dynamically in real life.
The deck crew expertly maneuvered the ship away from the dock, accounting for wind force, current, and the thrust vectors of the ship’s engines. It was a beautiful, real-world ballet of vector addition—one that my students would be relieved they didn’t have to calculate on paper! The crew handled the separation from the dock and navigation around the pier with effortless precision.
Once we reached open water, the crew gathered for what the XO fondly called “Story Time”—a post-maneuver debrief. Once again, they analyzed what went smoothly and what could be refined. They praised the steady speed and smooth handling, while constructively noting that higher communication volume over the radio would make it easier for everyone to follow along. Both praise and critique were taken to heart. Because the Thomas Jefferson will be navigating this same harbor all season, the pursuit of perfection is an ongoing goal—but everyone acknowledged that the crew’s skill today was exceptional.
Personal Log
Trying on the immersion suit was pretty hilarious. I unrolled it in my stateroom and then I had to read the directions. Are you supposed to keep your shoes on? Yes, and luckily, it says so on the instructions on the outside of the packaging. I was able to get into it ok, and then I kind of flopped upstairs so I could get help with getting a picture. I also realized that in a real emergency, I will need some help zipping it up because the zipper is very hard to slide. I’ll have to practice that some more. The worst part though, was taking it off and then rolling it up and putting it back into its bag. I’m not going to lie, that part was a little rough.
Did You Know?
The Great Lakes are technically considered non-tidal.
Ocean tides (true tides) are generated by the gravitational pull of the moon and sun. While the Great Lakes do experience a spring tide during a new or full moon, the water level changes by only about 2 inches (5 cm)—compared to 5 to 7.5 feet in places like the Long Island Sound. Because these lake tides are so minor, they are masked by greater local weather forces and categorized as non-tidal.
However, the Great Lakes experience short-term water level fluctuations that closely mimic ocean tides. These are called seiches (pronounced sayshes)—standing waves that oscillate back and forth within an enclosed or semi-enclosed body of water.
Unlike tides driven by gravity, seiches are driven by strong winds and rapid changes in atmospheric pressure that literally push water from one end of the lake to the other. Lake Erie is famous for dramatic seiches, but all the Great Lakes experience them. In fact, in 1954, the extreme winds of Hurricane Hazel piled up so much water near Toronto that it triggered a massive seiche on the opposite shore of Lake Ontario!








keep doing what you are doing you look like you are having fun and that suit looks good on you remember map folding one o one have fun kiddo uncle Munster