Showing posts sorted by relevance for query shark. Sort by date Show all posts
Showing posts sorted by relevance for query shark. Sort by date Show all posts

Tuesday, June 30, 2015

Answer: A couple of fishy questions...

This was fun,
but then again, 

sharks are always interesting... 

Here's that picture again... 



The Challenges are: 

1.  What kind of shark is right in front of me?  Am I crazy?  Should I be worried about this apex predator?  By the way, please don't tell my mother about this... 


As a few of you pointed out, there's no EXIF data here.  Not terribly surprising, it's underwater (GPS signals don't work underwater).  But there are a couple of clues. 

If you look at the lettering on my wetsuit, you can just barely make out "Stuart's Cove," which is the name of the place that rented me the wetsuit... AND organized the dive. 

The simplest solution here is to do a search for: 

     [ Stuart's Cove shark dive ] 


which leads pretty quickly to their "Shark Adventure" page, which tells us that this is probably a Caribbean Reef Shark  (Carcharhinus perezii).  

But it's possible that another shark might have wandered into the adventure, so I thought I should double check by looking for: 

     [ Caribbean reef shark identification ] 

Which gives us this set of results: 



The second image in this set leads to the ReefQuest Centre for Shark Research page on identifying sharks in the Caribbean (Stuart's Cove is in the Bahamas), and on that page they have this lovely diagram with features describing the reef shark (snout short and blunt; pectoral fins moderately long and narrow; caudal fin margins dusky, etc.).  If you check out that page, the features exactly match up. 


Their ID page goes on to say that "Large, robust individuals are often misidentified as Bull Sharks (Carcharhinus leucas)..."  but that the Bull shark has a shorter snout and a broader first dorsal fin.  (Look at images of the Bull shark for comparison.)  

The Caribbean Reef Shark is most likely to be confused with the Dusky shark (Carcharhinus obscurus) and Galapagos shark (Carcharhinus galapagensis), but divers are unlikely to encounter either of those within the Bahamas.  

How dangerous is a Caribbean Reef shark?  The ReefQuest Centre says that they're only two stars (out of 5)  "According to the International Shark Attack File, 22 attacks are attributed to this species, of which 11 were provoked and none were fatal." And none of the attacks were on scuba divers.  

That mention of the "International Shark Attack File" was just perfect click bait for me (sorry about the pun).  So I did the obvious search and found that the Attack File is kept by Ichthyology Department at the Florida Natural History Museum.  That file is a compendium of all shark attacks worldwide.  Interestingly, 2014 was a slow year for shark-human interactions, only 3 deaths worldwide were reported, with no attacks in the Caribbean whatsoever.  (On the other hand, there are already 7 attacks in the Carolinas so far in 2015, none fatal. They seem to be from Bull sharks attracted by bait fish in the shallow water.) 

And although the sharks in the Bahamas were pretty big, one of my dive buddies picked up a small tooth that was knocked loose from the passing sharks (they lose teeth all the time; luckily, they have a robust tooth replacement mechanism).  As you can see, it's not especially fearsome. 


Caribbean Reef shark tooth.  The pointy end sticks up, while the broad base is anchored in their gums.  

Bottom line:  You can tell my Mom; these sharks are pretty safe to be around, especially as a scuba diver.  (A pretty good video can be see below...  And no, I'm not getting paid by these folks.)






2.  Speaking of kinds of sharks, one of the strangest sharks in the ocean today seems to be a holdover from the Cretaceous period.  What kind of shark is that?  Just from that description, can you figure out the genus and species? 

For this Challenge, I first looked up when the Cretaceous period was--that part is easy:  

    the Jurassic was 201 - 145 million years BCE
    the Cretaceous was 145 - 65 million years BCE 

So I did my first query:   

     [ shark Cretaceous living fossil ] 

And I found a couple of possible candidates.  Several articles in the first list of 10 hits all refer to Cow sharks, Goblin sharks, and Frilled sharks all as "living fossils."  

So I checked into each of these.  

Cow Sharks, (in the Hexanchiformes order) are considered the most primitive of all the sharks, as their skeletons resemble those of ancient extinct forms, with few modern adaptations. Cow sharks are represented in the fossil record by their characteristic cockscomb-shaped lower teeth, dating as far back as the early Jurassic Period, about 190 million-years ago. Articulated cow shark remains are known from the late Jurassic, about 150 million years ago (which means they didn't really arise during the Cretaceous, they were already around during the Cretaceous). 

On the other hand, the eel-like Frilled Shark (Chlamydoselachus anguineus) is probably about as old as the Cow sharks, but its unusual three-pronged, trident-shaped teeth are known only as far back as the late Cretaceous, about 95 million years ago.  Still, there is some controversy about this, with some arguing that this shark  is a relatively recent species, with the earliest known fossil teeth belonging to this species dating to the early Pleistocene epoch (only 2.5 million to 11K years ago).  

Goblin sharks, on the other hand dates back to the Aptian age of the Cretaceous period, and are strange, strange beasts.  This is video of a Goblin shark swimming around in its normal swim posture. 



And a short video of a Goblin shark actually feeding: 




In any case, the Goblin shark, with it's very Alien-like, strange, extendable jaws, is clearly a Cretaceous fish.  



3.  While we're on the subject of large marine predators, I remember reading that there was an order of now-extinct marine reptiles that dominated the seas during  late Triassic and the Jurassic periods.  These giant predators were warm-blooded, and sometimes suffered from the problems of coming up too fast from the briny deep.  What kind of animals were these?  And how do we know they suffered from too rapid ascents?  

This is one of those cases when you might need to know a technical term in order to get a good search to work.  To start, I did a search for such a term: 

     [ coming up too fast from ocean ] 

that quickly told me that I needed to search for "the bends" or "DCS"  (decompression sickness).  Then, a search like: 

     [ "the bends" marine reptile Triassic OR Jurassic ] 

There are lots of hits there, but I wanted to find something fairly authoritative.  That's when I spotted (at position 7 in the results list) the paper "Adaptations for marine habitat and the effect of Triassic and Jurassic predator pressure on development of decompression syndrome in ichthyosaurs."  It caught my eye because it was from the journal Naturwissenschaften (2012 Jun; 99(6):443-8. doi: 10.1007/s00114-012-0918-0).  This is very respected journal, and so I thought a paper published there would be fairly interesting.  

Indeed. The abstract says it all: 


Decompression syndrome (caisson disease or the "the bends") resulting in avascular necrosis has been documented in mosasaurs, sauropterygians, ichthyosaurs, and turtles from the Middle Jurassic to Late Cretaceous, but it was unclear that this disease occurred as far back as the Triassic. We have examined a large Triassic sample of ichthyosaurs and compared it with an equally large post-Triassic sample. Avascular necrosis was observed in over 15% of Late Middle Jurassic to Cretaceous ichthyosaurs with the highest occurrence (18%) in the Early Cretaceous, but was rare or absent in geologically older specimens. Triassic reptiles that dive were either physiologically protected, or rapid changes of their position in the water column rare and insignificant enough to prevent being recorded in the skeleton. Emergency surfacing due to a threat from an underwater predator may be the most important cause of avascular necrosis for air-breathing divers, with relative frequency of such events documented in the skeleton. Diving in the Triassic appears to have been a "leisurely" behavior until the evolution of large predators in the Late Jurassic that forced sudden depth alterations contributed to a higher occurrence of bends.

In other words, marine dinosaurs (the mosasaurs and friends) got the bends back in the mid-Jurassic until the late Cretaceous.  Oddly, similar diving animals in Triassic (which was earlier, before the Jurassic and Cretaceous) didn't have this.  The authors think this is because that's when bigger and badder predators evolved, forcing these later marine animals into "emergency surfacing" (that is, coming up too fast and developing the bends).  

Now, I hear you asking, "I don't know what this Naturwissenschaften thing is... Why should I believe you when you say it's authoritative?"  

One easy way to check for the acceptance of a journal like Naturwissenschaften is to do an advanced search with Scholar.  You can quickly scan the articles and check things like "how long have they been publishing?" and "do other authors cite work published in Naturwissenschaften?"  

I went to Scholar.Google.com and did a search for [ mosasaur ] just to get started.  THEN, I clicked on the down arrow (upper right) 



That then opens up menu to select Advanced Search... 



Choose Advanced Search, and then put Naturwissenschaften into the "Return articles published in.."  field below:  



That then returns articles published ONLY in the journal Naturwissenschaften.  (To get a complete list of all the articles that Scholar has, remove the mosasaur from top search query field.) 



And the results. Note that there are around 97,000 papers published, and the top several papers have MANY MANY citations.  These are the hallmarks of well-respected journals--longevity, citations by others, authors from established institutions, and so on.   



If you check the Wikipedia article about Naturwissenschaften, you'll find that they've been publishing since 1913.  The original subtitle was Wochenschrift für die Fortschritte der Naturwissenschaften, der Medizin und der Technik (Weekly Publication of the Advances in the Natural Sciences, Medicine and Technology), and is now published completely in English, having changed over from German in the 1990s.  

As some Regular Readers noted, there is some controversy about this finding.  But that's what makes it interesting science.  The observation that there's a big change over time leads one to suspect an underlying cause.  Pity we didn't have a camera there to document the chase!  



4.  If you're really into the topic, for extra credit, in the picture above why does this shark's eye seem to have a white crescent moon in it?  (No, it's not a cataract, nor is he bug-eyed.)  It's a normal sharky thing.  But what's that white thing called?  



I did a straight-forward search: 

    [ shark eyelid ] 

and found a fascinating article on their Nictitating membrane.  This is a transparent (often just translucent) membrane that covers the eye of fish, amphibians, reptiles, birds and mammals.  This membrane protects the eye when the eye is potentially exposed to a hostile environment--in the shark's case often when they're about to strike a prey (which might flop around in protest, potentially striking their eye).    

From the description, this is pretty clearly the Caribbean Reef shark's nictitating membrane.  

In reading about this membrane, I was surprised to learn that people have a vestigial nictitating membrane called the plica semilunaris.  (Image from the Wikipedia article, originally from Grey's Anatomy. No, he's not trying to poke this guy's eye out--he just wants to show you the inner eyelid structures.)   




What do you know--I do have something vestigially in common with the sharks!  


Search Lessons

Let's start from the top: 

1.  Use whatever text you've got!  As in many of the Challenges, starting with the text  you can see will often get you a long way.  In this case, we found the dive operator, and then a place, and  a strong suggestion about what kind of sharks these are.  

2. Verify what you've read.  We know it's tough to positively identify animals, but in this case we had a strong lead ("Caribbean Reef shark"), and then turned to identification guides to get to a positive ID.  I checked a couple of different identification sources AND looked at the images of possible confusingly similar sharks until I knew I could spot the differences.  

3. Check the dates.  The Cow, Frilled, and Goblin sharks are all "living fossils," in one form or another, but they didn't all come into being in the Cretaceous AND stay more-or-less the same until now.  Details matter in these Challenges! 

4. Sometimes you need to find the right technical term to get started.  In this case, we had to search for a specific term (or phrase) for "coming up too fast from bottom of the ocean..." and we learned about "the bends" and "DCS."  Once you've got those terms, the rest of the search is easy.  

5. Check authoritativeness.  In this example I showed you how to use Scholar to identify the credibility of a publication that you might not know.  Obviously, there's more to authoritativeness than just this, but this is a method you might not have thought about. 


Great comments for this week's Challenge.  Well done, troops! 

Search on! 





Thursday, April 26, 2012

Answer: World's biggest fish tale?


This wasn’t THAT hard of a problem, but I try to mix up the level of difficulty to both give you an idea of additional search skills and to make these challenges accessible to beginning searchers as well. 

For this fish tale, the easiest way to start would be to use Google Suggest to give you a few hints about where to look. 

So to begin, I just started my search for [ largest fish ] and then paused for a moment.  Google “Search as you Type”  kicks in and shows me a list of suggestions and a set of results for that query.  Note that all I did was pause, and the suggestions show up automatically. 



If you look at the 3rd result, you’ll see something about a “whale shark.”  Curious, I click on that and quickly find the Wikipedia page which tells me that whale sharks DO grow to the claimed length.  12 meters?  Easy.  Girth of 7 meters?  Also easy.  

Here’s a photo taken of the coast of Peru that gives you the scale of the fish.  Since we know that whale sharks also frequent the coast of Belize, the size measurements seem VERY plausible.  (Here, the yellow dotted line is one scuba-diver length--say 7 feet or so). 


But we wanted to find some authoritative information.  A quick search in Google Scholar with the scientific name [Rhincodon typus] leads us to a ton of informative articles on the whale shark, their reproductive habits, and a description of the methods used to tell them apart.  (The easiest way turns out to be to take a picture of the spots on their backs.  Each shark has a distinctive pattern, like a fingerprint. See the paper below entitled: "An astronomical pattern-matching algorithm for computer-aided identification of whale sharks, Rhincodon typus.) 




And for finding a map?  The simplest way is to do the obvious search in Google Images for [whale shark map] which will give you a wide selection of maps to choose from. 



Obviously, you want to click through a few to find a map from a credible source.  (Which in this case is mostly just avoiding travel web sites, which tend to play up the whale shark presence in their neighborhood for eco-tourism reasons.) 

This map from the WhaleSharkProject is fairly typical, but it's so low-res that it basically suggests they live in the tropics.  While true, that’s not especially specific.  What if we wanted more precise data--actual sightings, for instance?  


Unfortunately, getting exact locations is a tougher job.  Distribution maps tend to be large scale. So to create a highly accurate sightings map, you’d have to aggregate multiple maps together.  And that's a job that’s a bit beyond the scope of this post on my Belize vacation!  If you create one, let me know and I’ll post it as an update! 

Search on! 

Monday, April 17, 2017

Answer: Is that true?

True, or False?  



Answering these three questions was pretty straightforward. But as I discovered in the comments, our Regular Readers went farther into these topics than I ever imagined.  Bravo, Readers!  Bravo!  

Let's see what we can discover to answer these Challenges.   

1.  Is it true that some kinds of female sharks use only one ovary to produce eggs?  (That is, only one ovary actually produces eggs, the other is just kind of there?)  
I started with a simple search that focuses on the question: 

     [ sharks only one ovary ] 

I assume that if this was true, then anyone writing about it would probably write about "only one ovary."  I didn't search for a quoted phrase ("only one ovary") so as to not over-limit the results.  Google prefers words that are in the order presented in the query.  So the phrase only one ovary would be prefered over those same words scattered all over the page.  

In any case, this search led me to the paper Morphological analysis and description of the ovaries of female silky sharks, Carcharhinus falciformis in the journal Neotropical Ichthyology, 11(4):815-819, 2013.  In this paper the authors write that: 
In several elasmobranch species, only one ovary is functional. Such is the case of the species within the genus Carcharhinus, Mustelus and Sphyrna. Oviparous species have both ovaries developed and functional, such as of the species Pristis cuspidatus and Squalus brevirostris.
Interesting.  Some sharks have only one working ovary while some have two.  

This is definitely something to second source.  I recognize the name Carcharhinus as the genus name for Requiem sharks (a kind of shark that includes Tiger sharks, Silky sharks, Blacktip sharks, etc.).  

I thought I'd try to confirm this uni-ovary characteristic in Requiem sharks by searching for: 

     [ Carcharhinus ovary ] 

which led me to the Wikipedia entry on Blacktip sharks (a kind of Requiem shark).  In there we not only confirm that Blacktip sharks have only one functional ovary, but also that... 

Females have one functional ovary and two functional uteri; each uterus is separated into compartments with a single embryo inside each. The embryos are initially sustained by a yolk sac; in the 10th or 11th week of gestation, when the embryo measures 18–19 cm long (7.1–7.5 in), the supply of yolk is exhausted and the yolk sac develops into a placental connection that sustains the embryo until birth.

More interesting!  Two working uteri, AND the shark starts off life with a yolk sac (as part of an egg) and then changes that yolk sac into a working placenta!  Sharks are amazing creatures, in many ways. Including, apparently, working other kinds of natal miracles.  
In 2007, a 9-year-old female blacktip shark at the Virginia Aquarium and Marine Science Center was found to be pregnant with a single near-term female pup, despite having never mated with a male.  
As evidence, see: Chapman, D.D.; Firchau, B. & Shivji, M.S. (2008). "Parthenogenesis in a large-bodied requiem shark, the blacktip Carcharhinus limbatus". Journal of Fish Biology. 73 (6): 1473–1477.  The second sentence of that article is a doozy. "The parthenogenetic embryo exhibited elevated homozygosity relative to its mother, indicating that automictic parthenogenesis is the most likely mechanism."  That is, the baby is more-or-less identical to its mother, which tells us that no boy sharks were involved in the making of this pup.  

AlmadenMike points out that this fact has been known for quite a while. For example, on page 1461 of this book published in 1842 (Elements of Physiology, Part 2, Volume 2 by John Müller) we find that biologists have known about single-sided working ovaries in both some sharks and some birds.

But Remmij found a fantastic video of a dogfish dissection showing the location of the ovaries (remember dogfish from our earlier SearchResearch Challenge?).  Unlike mammals, female sharks have their ovaries in the same body location as male sharks have their testes.  (Don't watch this if you're squeamish; but if you don't mind watching a fish being scissored open, it's really quite interesting.)  


2.  Is it true that tinnunculite is a real mineral?  If so, what does it have to do with kestrels (the raptor)?  (I ask because I recognize the name tinnunculus as the species name of the European kestrel.  If it's real, what's the connection?)
This was an interesting search!  Just doing the obvious search: 

     [ tinnunculite ] 

gives us a spelling correction and lots of information about kestrels.  


That's fine, but I want to learn about the mineral (if it exists).  I had to quote it: 

     [ "tinnunculite" ] 

to get a good result. When I do this search, I find that Wikipedia tells us that  it is a "naturally-occurring mineral that forms when droppings from a European kestrel react with the burning dumps of coal mines and quarries." It's formula is C5H4N4O3 · 2H2O

What?  Really? 

The article then tells us that "The mineral is a dihydrate of uricite to which it is visually very similar. Tinnunculite is chemically similar to other organic minerals: guanine, uricite; also acetamide, kladnoite. A mineral of the same name but different formula (C10H12N8O8) was rejected by the IMA/CNMNC."  

Hmm.  This sounds suspicious.  But following up on other results quickly leads us to the Mineralogical Society's page on the substance, which tells us that it is now approved (as a formal mineral name) pending publication.  (For full details about the controversy, read AlmadenMike's masterful summary of the debate in the comments of the Challenge.)  

In the end, this is actually a mineral of anthropogenic origin (that is, caused by human activity, even though it's really kestrel poop interacting with burning coal--since people caused the coal to catch fire, its considered human-caused, even though as we found in an earlier Challenge, not all long-lasting coal fires are started by humans).  

Tinnunculite - P/C Mindat.org 


3.  Is it true that the journals Science and Nature are going to team up and form a new journal together? (They have long competed to be the world's preeminent scientific journal, so this was a surprise to read.)  

I did a search for: 

     [Science Nature "new journal"] 

and found an article on the Science journal site discussing the potential new journal.  



But notice a couple of things about this article.  First, it's written by a well-knwon science writer John Travis. That checks out.  But the tone is off and the premise is pretty surprising. Both journals will cease publication?  And they haven't decided the name of the new journal, but are letting text-messaging votes determine the name?  

That's when I noticed it was published on April 1, 2010.  Got it.  This is an April Fool's joke.  

Then the rest starts to make a jokey kind of sense:  "... the first 100 new subscribers will get free genome scans" and the article quotes a magazine consultant named Rick Rolling (and offers a link to the Wikipedia page for that Internet meme).

It's handy to know that "Science" has a long tradition of April Fool's Day articles that pull your leg. This is one of those. 

So no, the journals are not planning on merging.  


Search Lessons 


1. Not everything you read on the internet is true.  Yeah, I know... WE know that, but it's useful to remember that not everyone is quite as discerning.  In this case, we found that ever articles from respected journals sometimes need a bit of careful reading.  (Especially in April!)  

2. Double quoting a single word turns off spell-correction.  That's how we had to get to the Tinnunculite results.  

3. A strategy for checking on a complex idea is to check a specific case.  That's why I checked for the "one ovary" just within the Requiem (Carcharhinusshark species.  If it was true of the entire genus then someone, somewhere must have written an article about that large and distinguished genus of sharks.  


Search on! 

Wednesday, June 24, 2015

Search Challenge (6/24/15): A couple of fishy questions...


Once in a while I go diving... 

... being a curious sort of fellow, I sometimes find fairly remarkable things.  

And being a SearchResearcher, I wonder about these things I find.  

Not long ago a friend of mine took this photo of me on a dive, hanging onto the rail of a wreck at 50 feet. 


As you can see by my terrified expression, I'm not especially worried about this guy (even though it's somewhat larger than I am). 

I did a bit of research about these sharks (before I got into the water, I should add) so I knew what to expect.  

Along the way, I learned a few additional things about other kinds of fish that I want to pose as Search Challenges.  

So today's Challenges are: 

1.  What kind of shark is right in front of me?  Am I crazy?  Should I be worried about this apex predator?  (If you don't have enough information from this photo, here's another.   Do you have enough information now to figure it out?)  By the way, please don't tell my mother about this... 



2.  Speaking of kinds of sharks, one of the strangest sharks in the ocean today seems to be a holdover from the Cretaceous period.  What kind of shark is that?  Just from that description, can you figure out the genus and species? 

3.  While we're on the subject of large marine predators, I remember reading that there was an order of now-extinct marine reptiles that dominated the seas during  late Triassic and the Jurassic periods.  These giant predators were warm-blooded, and sometimes suffered from the problems of coming up too fast from the briny deep.  What kind of animals were these?  And how do we know they suffered from too rapid ascents?  

4.  If you're really into the topic, for extra credit, in the picture above why does this shark's eye seem to have a white crescent moon in it?  (No, it's not a cataract, nor is he bug-eyed.)  It's a normal sharky thing.  But what's that white thing called?  



As always, be sure to tell us HOW you found out the answer to the Challenge.  We all want to learn from your brilliant search behavior!  

Search on... with sharks!  


Monday, July 11, 2016

Answer: Where's the ship in the pic?


A photo can have lots of information in (and around) it, if only you seek beyond the surface... 

In last week's Challenge I asked "where's the ship in this pic?" and for some information about it.  

A mystery at a beach in an undisclosed location.  If you want the original photo, here's a link to it.

In particular the questions were: 
1. In the above photo, where's the ship?  More specifically, what's the name of the ship? 
2. Were other ships made of concrete by the same outfit that made this ship?  If so, what are their names and where are they now? 
3.  I DO know that this area is popular with sharks.  What kind of sharks would be here?  Any recent sightings?  (I ask because I was thinking about going for a quick dive here.  Should I?)  
4.  (Extra credit)  Not only are sharks somewhere nearby now, but apparently they've been in this area for a loong time.  What evidence can you find that sharks have been near here for a long time? 

To start with, I did the obvious thing and clicked on the original photo link, then zoomed in a bit just to do a bit of visual hunting in the image.  That quickly showed me where the ship is in the above image:  


It's not just any ship, it's a shipwreck.  (A bit like an earlier SRS Challenge to identify a wreck in the Carquinez Straits.)  
It's not hard to pull out the EXIF metadata and figure out that this shipwreck is at (36.969169, -121.905956).  A quick peek in Google Maps shows us this: 

   
The red map pin is the location where I stood to take the photo.  If you go to StreetView at this place, and then rotate until you've closely aligned the image, you see: 

Note that the compass needle is pointing directly to the right.  That means north is to the right, and that this photo is looking due west. 
If you refer back to the map image above, you can see that the SS Palo Alto seems to be moored at the end of that long pier, directly west of where the photo was taken. 
If you now click on the blue link "S.S. Palo Alto" you'll get more information about that ship: 

Including a link on the bottom of the panel to "95 Photos."  Clicking on that gives you a wealth of information, including the observation that this is clearly (another) ship wreck.  
Closeup of the SS Palo Alto.  Note the photo credit to Joe G in the upper left corner, in the attribution panel.  
As we've learned before, other resources can be useful in these searches, including the ever-popular Wikimapia.  When you enter the lat/long to Wikimapia, this is what you see: 


Well.. THIS is fascinating.  But how reliable is the information given in the left panel?  

It's odd because the reference for this information is given as the Wikipedia article about the SS Palo Alto, but most of this information doesn't appear in the Wiki article.  The Wikipedia entry is nice, but it's not nearly as detailed as that info given here. What's going on? 

Since the Wiki article wasn't giving me this information, where did it come from? 

To find out, I selected a phrase from the Wikimapia text that I thought would be pretty rare (also called "low frequency").  I chose the phrase "The S.S. Palo Alto's concrete recipe" and did a search like this: 

     [ "The S.S. Palo Alto's concrete recipe" ] 

and found that it comes from Sandy Lyman's "Central Coast Secrets" web site.  Okay, so who is Sandy Lyman?  

if you read to the bottom of that web page, you'll learn that the information on this page comes from the book Forever Facing South: The Story of the S.S. Palo Alto, (published in 1991 by David W. Heron).  That sounds like a great resource... and then I noticed that the forward to that book was written by Sandy Lyman!  (Searching for Sandy's bio page tells me that he's been a news weatherman, a high school teacher, and on the faculty at Cabrillo College, not far from the S.S. Palo Alto. He's a local historian of the Central Coast of California.)  

Unfortunately, I can't find an online version of this book.  (It's not in Google Books, and it's not searchable in Amazon or Hathi Trust.)  

On the other hand, by searching for the book title, I DID find an article in a local newspaper that drew upon this book as a resource.  

"The ship was towed to Seacliff State Beach in 1930, 11 years after it was built. And for two short glorious years, it was a party boat, complete with swimming pool, dance floor and café. In 1932, in the teeth of the Great Depression, winter storms did their damage to the ship, rupturing the hull, and the company operating it went belly up.
Eventually, the front half of the ship was again made accessible, after the state of California purchased it for $1, according to David W. Heron's book on the Cement Ship, "Forever Facing South." But conditions deteriorated enough to close the ship entirely to the public in the late 1950s.
In the 1980s, said John Hibble, the director of the Aptos History Museum, a local effort spearheaded by local resident Rose Costa resulted in a refurbishing on the ship, with asphalt structural reinforcement and hand rails, allowing people to again venture out onto the front half of the boat. Several years later, after more damage, the ship was closed for good." 

In the process of reading the background on the S.S. Palo Alto, I learned that the ship was made by the San Francisco Shipbuilding Company in Alameda, CA (part of the larger Oakland port area).  In looking for information about this company, I found that there were several ships made of concrete by this company--including the S.S. Peralta, also made by the SF Shipbuilding Company. 

My query was: 

     [ San Francisco Shipbuilding Company concrete ship ] 

which led me to ConcreteShips.org, which has a great compilation of the concrete ships built.  Twelve were built for WW1, and another 24 for WW2.  Most surprising, concrete ships were made all around the world--it wasn't just a Californian thing.  


S. S. Palo Alto shortly after it arrived at the dock where it now resides.


What about the sharks? 

This isn't hard.  The query:  

     [ sharks near S.S. Palo Alto ] 

told me that a better search would be to include the local place name, Aptos, or the name of the beach, Seacliff.  A search like this: 

     [ sharks Seacliff ] 

-- with a time restriction to "Past year" -- returns all kinds of news stories about sharks near the concrete ship.  Group of great white sharks spotted at Seacliff Beach (May 17, 2016... with a photo of the concrete ship in the article.)  Or Great white sharks return to Aptos cement ship (May 16, 2016).  And so on... including Dozens of great white sharks spotted at Seacliff beach  (July 3, 2016, just a couple of days before I wrote the Challenge, again with pictures of the concrete ship in the background).  

Okay... I won't go diving there this weekend! 


And to figure out the history of sharks in the area, I did a search for: 

     [ shark history Seacliff ]  and I did another one with the other local city name... 
     [ shark history Aptos ] 

only to discover that both of them tell me that there were shark teeth fossils embedded in the cliffs along the shore

Okay, I modified my query to be: 

     [ shark fossil teeth Aptos ] 

and discovered that there are many fossil teeth in the area, including ones found in the nearby cliffs, just around the corner from the concrete ship.  





Search Lessons

As I said at the start, a photo often has lots more information in it than you'd expect, especially if you did a bit.  What did we do to answer this Challege? 

1.  Zoom in on photos.  When I took the picture, I really didn't see the concrete ship in the distance.  Only by zooming in could I actually notice that there was something odd in the image.  

2.  Look at Google Maps and Wikimapia.  Both have lots of geo-located information, and seems to work especially well for wrecks!  

3.  Check on information that seems misattributed. Sometimes you'll find mistakes, but in this case, we found the information is correct... but from another source.  THAT source turned out to be incredibly useful, once we'd run down the proper reference (and in this case, found the book).  

4.  Keep growing the information sources you seek.  In our case, we're looking for multiple sources of information that mutually confirm what the other has said... and NOT by re-using the same old sources over again.  

Hope you found this interesting.  Look for a new Challenge this coming Wednesday! 

Search on!