Debra Brice, November 22, 2003

NOAA Teacher at Sea
Debra Brice
Onboard R/V Roger Revelle
November 11-25, 2003

Mission: Ocean Observation
Geographical Area: Chilean Coast
Date: November 22, 2003

Data from the Bridge
1.  221600Z Nov 03
2.  Position: LAT: 20-00.0’S, LONG: 083-44.8’W
3.  Course: 090-T
4.  Speed: 12.6 Kts
5.  Distance: 102.7 NM
6.  Steaming Time:  8H 06M
7.  Station Time:  15H 54M
8.  Fuel: 2583 GAL
9.  Sky: OvrCst
10. Wind: 140-T, 14 Kts
11. Sea: 140-T, 2-3 Ft
12. Swell: 130-T, 3-4 Ft
13. Barometer: 1015.9 mb
14. Temperature: Air: 20.0 C, Sea 19.4 C
15. Equipment Status: NORMAL
16. Comments: Deployment of surface drifter array #4 in progress.

Science and Technology Log

NOAA Climate Studies of Stratocumulus Clouds and the Air-Sea Interaction in Subtropical Cloud Belts. Today we are still underway and I am going to talk about another science group that is onboard and how their research is related to the Stratus Project. We are presently located along the coast of Northern Chile and I just finished interviewing scientist Chris Fairall with NOAA’s Environmental Technology Laboratory in Boulder, Colorado.  A group of 4 ETL scientists are participating in a study of oceanography and meteorology in a region of the ocean that is known for its persistent stratus clouds.

The Woods Hole Oceanographic Institution (WHOI) has maintained a climate monitoring buoy at this location for the last 3 years.  Each year they come out to take out the old buoy and replace it with a brand new one with fresh batteries and new sensors.  A year in the marine environment takes a toll on the toughest instruments.  This is a special buoy which is festooned with atmospheric sensors to measure air-sea fluxes and with a long chain of subsurface instruments to measure ocean currents, temperature and salinity.  If you go to the WHOI website ( http://uop.whoi.edu/stratus) you can read about this project and see the data from the buoy.  The data are transmitted via satellite everyday.  WHOI removed the old buoy on Nov 17 and put in a new one on Nov 19.

Why are these clouds so important?  Because the earth’s climate is driven by energy from the sun and clouds dominate how much solar energy reaches the surface.  On average, almost 40% of the sun’s energy is reflected back into space and half of that is reflected by clouds.  In the cloudy regions more than 60% of the sun’s energy can be reflected by clouds.  The surface temperature of the ocean is a result in a near balance between solar heating and cooling by evaporation and cooling by infrared (IR) radiation from the water surface into the sky.  The global circulation of the atmosphere and ocean are driven by region differences in this net heat input, so clouds have a direct effect on the winds and currents. Cloud effects on the ocean surface energy balance are very tricky because clouds affect both the solar flux (i.e., by reflecting energy back into space) and the IR flux.  It might surprise you, but the sky is ‘warmer’ when there are low clouds present than when the sky is clear.  Think about those cold clear nights in the winter and note the ‘cold’ often appears with ‘clear’. More specifically, the IR radiation coming down from the sky is higher when clouds are present than when skies are clear.  In the tropics and sub-tropics, the solar reflection cooling effect of the clouds is much stronger than their compensating IR warming effect.  Thus, these stratus clouds play an important role in keeping the subtropical oceans cool.

The region we are studying is one of 5 stratus regions around the globe (west coast of U.S.. west coast of S. America, west coast of S. Africa, west coast of N. Africa/Europe, and the west coast of Australia) that occupy vast expanses of ocean.  Both of the pictures I attached to this log show the stratocumulus clouds in this region.  Each of these cloud types has about the same area-average liquid water content but, because of the horizontal distribution, vastly different radiative properties.  The physical processes that lead to these different forms are one of the objective of the ETL studies.

Clouds are formed through various related mechanisms; most involve cooling air to below its dew point temperature so droplets condense ( i.e., clouds are suspensions of liquid water drops with typical sizes of about 10 micrometers radius).  Convective clouds are associated with cooling in strong updrafts; fog and many mid-atmospheric clouds form when an atmospheric layer cools by IR radiation.  The stratus clouds we are studying are quite different.  The key elements are a strong atmospheric cap that traps ocean moisture in a fairly thin ( about 1 km high) boundary layer over the surface.  The stratus clouds occupy the top of the trapped layer from just below the cap to down the altitude ( cloud base height) where temperature and dew point just meet.  Below that, the relative humidity is less than 100%.  The ‘cap’ on the atmosphere boundary layer is warm/dry air descending in subtropical regions, particularly on the western boundaries of continents.  This descending air is actually driven by deep convection in the tropics.  To meteo- nerds this is an amusing paradox – cool stratus clouds off Chile and California are essentially caused by thunderstorms near the Equator.

Clouds are a pain to study because they are so inaccessible.  To get into clouds with sensors you need a really tall tower, a tall building or an aircraft.  Most of these are hard to come by 500 miles from land. Thus, most climate studies of clouds rely on remote sensing methods using satellites and surface based sensors.

ETL has deployed a suite of remote sensors on the R/V Revelle to study clouds from the bottom. The showcase sensors are a special high frequency cloud radar and a 2-frequency microwave radiometer system (this system is the attached picture of the large, white van).  This is the 6th time such sensors have ever been deployed from ships and only the second time to a stratocumulus region.  The first time was to this same spot in 2001; see the web site: http://www.etl.noaa.gov/programs/2001/epic for information on that cruise.

The radar has a wavelength of 8mm, which is so small that it is sensitive enough to receive  detectable signals from scattering cloud droplets.  With this device the ETL group can determine profiles of cloud properties ( such as size of the droplets) through the entire cloud.  The microwave radiometer uses the emissions from the atmosphere at 2 frequencies ( 21 and 31 GHz, or wavelengths of 14 and 9mm) to determine cloud base height and, most importantly, we also measure IR and solar radiative energy reaching the surface.  Instead of just looking at the cloud, they collect megabytes of data every minute.  The beauty of this set up is that they can simultaneously measure the effect the clouds have on the surface energy budget of the ocean and the cloud properties ( liquid water content, thickness, soiled versus broken, number of cloud droplets per unit volume) that go with the radiative effects.  The ETL group are only out here a few weeks each year, but their detailed measurements provide vital information to interpret long-term continuous time series measured by the buoy or inferred from satellite overpasses.

Personal Log

We are surveying for a location for the PMEL Tsunami buoy and the weather is beautiful.  Due to our heading we have lost internet connections periodically.  The food on the REVELLE  is really amazing; last night we had steak and King crab for dinner and a group of the crew and science party met in the lounge to watch a movie.  Card games and cribbage are popular in the dining room and some of us just sit outside and enjoy the sunsets.  I’m going to sleep early as I have the late watch.

Cheers

Debra Brice, November 18, 2003

NOAA Teacher at Sea
Debra Brice
Onboard R/V Roger Revelle
November 11-25, 2003

Mission: Ocean Observation
Geographical Area: Chilean Coast
Date: November 18, 2003

Data from the Bridge
1.  181700Z Nov 03
2.  Position: LAT: 19-43.5’S, LONG: 085-15.0’W
3.  Course: 000-T
4.  Speed: 12.5 Kts
5.  Distance: 38.8 NM
6.  Steaming Time:  3H 06M
7.  Station Time:  20H 54M
8.  Fuel: 1565 GAL
9.  Sky: Ptly Cldy
10. Wind: 130-T, 11 Kts
11. Sea: 130-T, 2-3 Ft
12. Swell: 150-T, 3-5 Ft
13. Barometer: 1018.5 mb
14. Temperature: Air: 21.3 C, Sea 19.2 C
15. Equipment Status: NORMAL
16. Comments: Survey in progress.

Science and Technology Log

Today the REVELLE spent the day surveying an area for deployment of the STRATUS 4 buoy.  We traveled 50 miles from the STRATUS 3 site with the hopes of getting out of the GPS mapped area of the fishing boats to prevent the fouling of the instruments with fishing line.  Fishing boats target buoys as they become areas of fish aggregation in the open ocean.  The ship took a zigzag pattern most of the day surveying the bottom topography ( see photo of survey and course). Dr Weller explained that he needed to find a relatively long, flat area on the bottom as we will be underway during the deployment of the instrumentation and we need to travel is a straight line to lay out the instruments.  Due to the wind direction we will not be exactly following the straight line of the flat bottom area, but coming in at a slight angle. Jeff Lord and Jason Smith of Woods Hole Oceanographic Institution, Upper Ocean Processes group spent the day preparing the cables, laying out the instrumentation  and spraying various parts with de-fouling paint.  It was a very detailed all day procedure.  Moving the buoy and other heavy instrumentation requires good skills in rigging and crane operations.  The Upper Ocean Processes Group of which Dr. Weller is the head, are highly trained and make this complicated and potentially dangerous work look so easy.  This is part of the job as an oceanographer that you don’t learn in the classroom, but are taught by watching and doing with another professional. The STRATUS 4 buoy will have a slightly different instrumentation than the STRATUS 3.  The Seacat current meters with the rotating fan blades that were fouled with the fishing line will be moved deeper on the mooring and acoustical current meters will be moved to a more shallow spot.  Unfortunately the Seacats are more accurate than the acoustical current meters, but they can’t collect data if they are fouled.  The acoustical meters have no moving parts to foul.  Dr. Weller will also be comparing and calibrating some of the radiation sensors with Dr. Chris Fairall of the ELT group using they cloud radar data.  Deployment will begin after breakfast (approx. 7:45 am) tomorrow morning.

Personal Log

I didn’t help very much with the science activities today other than to stand watch and take hourly temperature readings.  Dr. Kermond and I spent the day filming several interviews.  We toured the extremely impressive engine room on the R/V REVELLE with the Chief Engineer Paul Mauricio.  Please check out our tour on the web.  We also resumed our “Fantail Interviews”  with Jason Tomlinson, Meteorologist from Texas A&M who is doing aerosol research out here with us.  I will spend an entire log in the next couple of days on Jason’s aerosol research.  Tonight on the Fantail we will be interviewing Dr. Chris Fairall of NOAA Environmental Technology Laboratories and NOAA/PMEL Tsunami buoy deployment group, Mike Strick and Scott Stalin.  be sure to tune in:)I need to work on my survey of good sunscreens and/or stronger aloe vera lotions!  The boobies from the STRATUS 3 buoy are following us wanting to know when their new “cafeteria” will be installed.  Much to do tomorrow, it will be another long day doing the deployment and I am very interested as to how they are going to get that 9000 lb anchor in the water!

hasta la vista

Debra Brice, November 17, 2003

NOAA Teacher at Sea
Debra Brice
Onboard R/V Roger Revelle
November 11-25, 2003

Mission: Ocean Observation
Geographical Area: Chilean Coast
Date: November 17, 2003

Data from the Bridge

1.  171700Z Nov 03
2.  Position: LAT: 20-10.8’S, LONG: 085-05.1’W
3.  Course: Hove to
4.  Speed: 0 Kts
5.  Distance: 0 NM
6.  Steaming Time:  0H 00M
7.  Station Time:  24H 00M
8.  Fuel: 1845 GAL
9.  Sky: Cldy
10. Wind: 110-T, 18 Kts
11. Sea: 110-T, 2-3 Ft
12. Swell: 140-T, 3-5 Ft
13. Barometer: 1020.0 mb
14. Temperature: Air: 21.5 C, Sea 18.0 C
15. Equipment Status: NORMAL
16. Comments: WHOI buoy recovery in progress.

 

Science and Technology Log

The R/V REVELLE was positioned roughly 100 meters upwind from the anchor position.  The acoustic release was fired and it took approximately 40 minutes for the glass balls to come to the surface.  Once the glass balls were sighted the small a line was attached and they were pulled to the stern of the ship.  The line was threaded through the A frame, the winch hauled the glass balls over the stern of the boat.  Once all the glassfuls were onboard the process of uncoupling them to the mooring began, they were then loaded in groups of 4 into the shipping container to be sent back to WHOI.

Once the fantail was cleared, hauling began.  The polypropylene line was then spooled off using a winding cart and 7 empty wooden spools. (see photos) The line on the winch was off loaded into a wired basket which was then wound onto the wooden spools and then stored.  This process was repeated for several hours until all of the 2800 meters of line was recovered and the first instrument was brought aboard about 2pm.  Then we began to bring each instrument aboard and label it by depth and place it on the deck in the order it was recovered for labeling and photographing.  It is very important to document the exact condition of the instruments as they are recovered as it will help in the data analysis later.  For example if there are some strange readings in the data or the data suddenly stopped at some point during the year looking at the photograph could tell you that this instrument was covered in barnacles or tangled with fishing line that clogged or blocked the sensors. (see photos)

With 38 different sensors on the mooring it was a very long day just recovering all of them.  Once most of the sensors were all onboard and labeled they began the recovery of the buoy and the last 12 sensors.  The small boat was deployed and a line attached to the buoy. The ship’s knuckle crane was used in this part of the operation and the buoy was lifted and secured onto the port side of the ship (see photos).  Once the buoy was secured the retrieval of the last instruments began.  Again, labeling and photographically documenting the condition of the instruments was essential.  In the photos you can see the increase in bio-fouling as the instruments get closer to the surface.  The current meters nearest the surface were heavily clogged with fishing lines and although their temperature sensors were still functioning, the portion that measures the current direction and speed was completely jammed with the fishing line.

Although acoustic current meters are also used on the mooring, there has been some issues with the quality of their data and the mechanical current meters are still the most accurate, but they have the problems of being more susceptible to bio-fouling and  interference with fishing gear.  This emphasizes the need for redundant instruments for data collection and comparison.  Each year the sensors are evaluated and some changes in instrumentation and slight changes in buoy location might be made.  For example this year the buoy will be moved a little farther away from last years mooring to hopefully decrease the likelihood of being tangled by fishing lines. After all of the instruments were secured onboard and labeled and photographed, the cleaning began (see photographs).  Everyone participated in this phase with scrapers and , finally the power washer.  All of the instruments needed to be cleaned and many stored in the main lab for data analysis tomorrow.  All day tomorrow Nan, Lara, Jeff, Jason and Dr. Weller will be downloading and loading at the data from the sensors as well as preparing the new equipment for deployment on Wednesday.

Personal Log

An incredibly long day which began with my watch at 4am and ended sometime after 9pm.  It was great and I was fascinated by the differences in the instruments as they were recovered from different depths.  It was brought home to me yet again the importance of keeping meticulous and very detailed records of each stage of a operation and the condition of the environment and effect on the equipment.  Any of these variables have to be considered when analyzing the data and can only be collected immediately upon retrieval or deployment.  It is also essential to have a very detailed plan of operation and to work together well as a team.  I think we were also out there testing several brands of sunscreen….mine failed and and I have the racoon-eyes to prove it…ahh well, it was a wonderful day and loved it.  Tomorrow and preparing for the deployment will be equally interesting. Oh, and one of the benefits of bringing in the buoy was that all the fish who were living under the buoy were now around the ship and the crew and some of the science staff caught some very nice tuna…hmmm dinner is looking promising tomorrow too:)

Cheers

Debra Brice, November 16, 2003

NOAA Teacher at Sea
Debra Brice
Onboard R/V Roger Revelle
November 11-25, 2003

Mission: Ocean Observation
Geographical Area: Chilean Coast
Date: November 16, 2003

Data from the Bridge
1.  161700Z Nov 03
2.  Position: LAT: 20-10.6’S, LONG: 085-08.0’W
3.  Course: Hove to
4.  Speed: 0 Kts
5.  Distance: 20.8 NM
6.  Steaming Time:  1H 48M
7.  Station Time:  22H 12M
8.  Fuel: 2215 GAL
9.  Sky: Ptly Cldy
10. Wind: 120-T, 14 Kts
11. Sea: 120-T, 2-3 Ft
12. Swell: 150-T, 3-5 Ft
13. Barometer: 1019.7 mb
14. Temperature: Air: 20.3 C, Sea 19.5 C
15. Equipment Status: NORMAL
16. Comments: On station in vicinity of WHOI buoy.

Science and Technology Log

We are at the STRATUS buoy from last year and are preparing to trigger the acoustical releases so that the glass ball floats will bring up the instruments, almost 50 of them!  it will take about 40 minutes from triggering the release until they surface and they the retrieval will begin in earnest.  We will spend the day bring them all aboard, recording the depth, serial number and condition of each of them before Dr. Weller’s group will begin downloading the data.  Then we will clean them and begin to pack them for the return to WHOI. A little background on the project first:  The purpose of the cruise was to recover and then deploy a well-instrumented surface mooring under the stratocumulus clouds found off Chile and Peru in the vicinity of 20’S and 85’W.  The mooring has been deployed for  for 3 years as a component  of the Enhanced Monitoring element of the Eastern Pacific Investigation of Climate ( EPIC) programs.  Cruises for recovery and redeployment have occurred each October or November.  The science objectives of the Stratus Project are to observe the surface meteorology and air-sea exchanges of heat, freshwater, and momentum, to observe the temporal evolution of the vertical structure of the upper 500m of the ocean.  This year the Stratus project was joined by the ETL/NOAA group out of Boulder, Colorado.  The Environmental Technology Laboratory people are meteorologists who are looking at the formation of the stratocumulus clouds that are formed off the coast of Chile and Peru.  They brought and are using cloud radar and radiosondes to look at these phenomena. The Stratus moorings carry two redundant sets of meteorological sensors and the mooring line also carries a set of oceanographic instruments.  Although Acoustic rain gauges were deployed on the last 3 moorings, this year there will not be one on the buoy and there will be several more current meters and temperature gauges.  The Chlorophyll sensors will not be on the new one either.

Types of measurements taken by Stratus moorings:

  • Surface measurements
  • Subsurface measurements
  • Wind speed
  • Water temperature
  • Wind direction
  • Conductivity
  • Air temperature
  • Current speed
  • Sea Surface temp
  • Salinitybarometric pressure
  • Current direction
  • Relative humidity
  • Incoming short-wave radiation
  • Incoming long wave radiation
  • Precipitation

Most of the equipment , including the new buoy, was loaded on the R/V REVELLE in San Diego with some of the equipment being shipped to Guayaqil, Ecuador and loaded onboard in Manta, Ecuador.  The science party flew into Manta to meet the ship and we will fly out of Arica to return to the U.S. On November 15, we stopped to lower and test the acoustic releases to be used in the mooring.  They were lowered to  500,  and 1500m depths.  Jason Smith (WHOI) communicated with the releases at each depth.  After the release test two CTD casts were made to 4000m.  When we arrived at the buoy mooring ship and buoy data comparisons began.  This is a check to see whether the sensors on the mooring are still calibrated. At 7:20 the release of the glass balls was triggered and they should surface about 45 minutes later.  The small boat will go out to put a line on the mooring and bring it back to the ship.  The line will be secured on deck the the recovery will begin.  As the instruments are brought onboard they will be laid out in the order they are hung on the mooring up the starboard side of the ship and photographed and labeled by depth and type of instrument.  This is to document the condition of each instrument before cleaning begins.  Most of the instruments are covered by barnacles and a host of other organisms, this is termed Bio-fouling.  The bio-fouling is dominated by goose-neck barnacles.  These are quite thick on the buoy hull and down to 30m; some goosenecks were even found down to 135m last year.  These can be quite a problem for the data collection, for example: last year the floating SST on the buoy hull was stuck in the down position by the barnacles.  This is why it is important to document the condition of the instruments with photographs so that when you are looking at your data and it suddenly changes or stops you might get some clue as to why the flow on the current meters changes significantly in one of the sensors ( bio-fouling for example).  We will finish recovery of the instruments today and tomorrow will recover the buoy late today.

Personal Log

Went out on the zodiac in the morning to look over the buoy.  Sunny, beautiful, water was 20’C and 30 to 35′ visibility.  There were 3′ swells and it was a wonderful view of the REVELLE, see the attached photos.  Many fish around the buoy and there will be many around the back of the boat today when we bring up the mooring.  We are 800 miles off the coast of Chile and the ship is in water  of about 4400m depth.  Nothing but blue ocean all around and it is breathtaking, reminds you why oceanographers go to sea.  You are surrounded by a mysterious blue liquid and it becomes a lifelong fascination to learn what lies beneath.  We began our “Fantail Interviews” last night with the chief engineer, Paul Mauricio, Nan Galbraith, WHOI Information systems associate and Paquita Zuidema a scientist with NOAA Environmental Technology Laboratory.  We talked about their research, jobs and experiences working at sea.  Our first videos should be online today.  We will be touring the ship and video taping interviews with other science party and crew members all week as well as filming the work onboard. There is something special about being part of science as the observations are made.  Jason was checking his aerosol readings last night and sharing his graphs.  He was seeing some things he expected and some he didn’t.  Many things he was seeing had as much to do with visual observations of the changing cloud shapes and precipitation as the sensor readings.  This kind of on-site observation is irreplaceable in science and definitely what makes science exciting.  Chris Fairwell of ETL was talking about the stratocumulus formations and how the behavior of the clouds was not necessarily what was expected, but then observations in this area had never really been done before and this was really exciting.  For me as a teacher it is interesting because these are things that my students can share by logging onto the internet and seeing on various NOAA , WHOI and SIO web sites as well as many other good science web sites and no text book can hope to compare with this.  We can also e-mail these scientists to ask questions about what they are seeing and a possible explanation.  Well they just call the acoustical release and may watch is almost over which just means the real work begins:)

Cheers


Debra Brice, November 12, 2003

NOAA Teacher at Sea
Debra Brice
Onboard R/V Roger Revelle
November 11-25, 2003

Mission: Ocean Observation
Geographical Area: Chilean Coast
Date: November 12, 2003

Data from the Bridge
1. 111700Z Nov 03
2. Position: LAT: 01-55.6S, LONG: 083-46.1W
3. Course: 251-T
4. Speed: 13.9 Kts
5. Distance: 193.6 NM
6. Steaming Time: 13H 54M
7. Station Time: 00H 00M
8. Fuel: 2951 GAL
9. Sky: OvrCst
10. Wind: 200-T, 11 Kts
11. Sea: 200-T, 2-3 Ft
12. Swell: 200-T, 3-5 Ft
13. Barometer: 1011.2 mb
14. Temperature: Air: 24.2 C, Sea 23.3 C
15. Equipment Status: NORMAL
16. Comments: Enroute to Stratus buoy site.

Science and Technology Log

Today is a travel day and we are on route to the site of the Stratus Buoy maintained by Woods Hole Oceanographic Institution. The Chief Scientist for this cruise is Dr. Robert Weller, a Physical Oceanographer from Woods Hole and this is the 4th year of the Stratus Project. The science objectives of the Stratus Project are to observe the surface meteorology and air-sea exchanges of heat, fresh water, and momentum ( friction between the air and sea surface: currents), to observe the temporal evolution of the vertical structure of the upper 500 meters of the ocean, and to document and quantify the local coupling of the atmosphere in this region. Air-sea coupling under the stratus clouds is not well understood and numerical models show broad scale sensitivity over the Pacific to how the clouds and the air-sea interaction in this region are parameterized. The first three deployments of the Stratus moorings are part of EPIC.

EPIC is the Climate Variability study (CLIVAR) with the goal of investigating links between sea surface variability in the eastern tropical Pacific and the climate over the American continents. Important to that goal is an understanding of the role of clouds in the eastern Pacific in modulating the atmosphere-ocean coupling. Previous to this study we really didn’t understand how the stratus clouds were formed off this coast and off the coast of California which has a similar climate and currents. The effect of the ocean temperature and suspended particles (aerosols) on the climate are very important and in these regions are not well understood. Prior to this numerical computer models were used to predict climate changes in these regions but no real studies or observations had been made. These studies will help in the predicition of long term effects of global warming. The Stratus moorings carry two redundant sets of meteorological sensors and the mooring also carries a set of oceanographic instruments. Including Acoustic rain gauges. Acoustic rain gauges are located 50 meters below the buoy on the mooring line. The accoustical rain gauge uses the frequency of the sound of the rain drops hitting the sea surface , the sound varies with amount of rainfall rate. This is more accurate than traditional rain gauges as it averages rainfall over a given area and is not effected by wind. The WHOI Stratus buoys are the most highly instrumented bouys in use today with 31 instruments. Today we deployed two ARGO floats, for more information on ARGO floats please go to the website at: www.argo.ucsd.edu. ARGO floats are a global array of three thousand free drifting profiling floats measuring temp and salinity of the upper 2000m of the ocean. Our watch went well and we deployed our float without breaking it and falling overboard (always a plus:)

Personal Log

Went to sleep last night after my watch at 4am and awoke at 10am. Met with Dr. Kermond and Viviana, the chilean teacher, to go over the science activities for the day. We took some still pictures and worked on the computers. Tomorrow we will begin some interviews with the scientists and crew. Weather was warm and humid, calm sea, some clouds and overall very pleasant. The REVELLE is a beautiful ship that has a very smooth ride, very little rolling motion. It was built in 1996 by the Navy for Scripps Institution of Oceanography. It was named after the former director of Scripps, Dr. Roger Randall Revelle. Revelle believed that the only way to truly study oceanography was to go to sea and he made it a goal while director to increase the number of ships owned by Scripps as well as make sure most if not all oceanographers at Scripps went to sea for some of their research. The REVELLE is 273′ long and 52′ 5″ wide at it’s widest point. Cruising speed of 12 knots, range is 13,000 nautical miles at 10 knots, crew of 22, with a scientific party of 37. It operates approximately 340 days a year worldwide, but mainly in the Pacific. For more information look at the Scripps home page at: www.scripps.ucsd.edu Being on the ship is like being a part of oceanographic history.

Hasta Luego