Saturday, September 17, 2022

Decline in Student Entrollments in Academic Subjects

 This fabulous graph of enrollments in the most popular HSC subjects over time was published in the Sydney Morning Herald today:

 


In the newspaper article, concerns were raised about the declining number of physics students, and the fact that only 22% of these students were female.

What I see in this graph is a general downward trend in enrollments of most of these subjects. You'd be particularly concerned about your future employment prospects if you teach Ancient History, for example.

What I don't see in this graph are any dramatic increases in enrollments, so, where have all the students gone?

Are overall student numbers declining (and hence enrollments in individual subjects are declining)?

Or, are there other less popular subjects with massive increases in student enrollment?

If we are concerned about the lack of females in Physics (22% female) why are we not equally concerned about the lack of males in Biology (36% male)? Or the poor showing of males in English Extension 1 (33%) and 2 (29%). 

We are still seeing student numbers divided along gender lines. So here are some "not-at-all-surprising" stats ...

  • 5% of students in "Dance" are male
  • 5% of students in "Textiles and Design" are male
  • 8% of students in "Human Services" are male
  • 10% of students in "Community and Family Studies" are male
  • 5% of students in "Construction" are female
  • 5% of students in "Electrotechnology" are female
  • 6% of students in "Automotive" are female
  • 9% of students in "Engineering Studies" are female
  • 10% of students in "Software Design and Development" are female 

 And if I went back 30 or 40 years, I'm guessing the percentages would not be so very different.

What have we achieved in education in 4 decades?


Tuesday, June 28, 2022

Polymerize or Polymerise?

A polymer is produced when lots of monomers bond together. Monomer has Greek roots, mono meaning one and mer meaning parts. Polymer also has Greek roots, poly meaning many and mer meaning parts.

So  we can form a verb that means to produce a molecule of many parts. Because the words monomer and polymer have Greek roots, we should use the "ize" suffix, that is, polymerize. Yet, particularly in Australia,  the Latin "ise" suffix is used to produce the verb polymerise.

The word, polymerise, would have a Greek root (poly, many), a French root (mer, sea), and a latin suffix (ise). This would appear to suggest that to polymerise would be to make many seas. On the other hand, a monomer would be just one sea.

Merde!

Monday, June 27, 2022

Ionize or Ionise?

 In chemistry we have a verb to describe the process of producing ions, but how do you spell it?

Is it ionize? (rhymes with prize)

Or is it ionise? (rhymes with surprise)

The root of the word is Greek, so according to my school grammar teacher, the suffix should be "ize". The preferred IUPAC spelling appears to be ionize, and hence ionizing and ionization.

Similarly, we also have a verb to describe the process of producing atoms, also from a Greek root, so the preferred spelling should be atomize, not atomise. Hence we form the words atomizing and atomization.

I'm sure we'll continue to see the alternative spellings with an "s" rather than a "z" but they won't get you a Nobel Prise. Surprize!



Friday, June 17, 2022

Underwater Bubbles

 A backyard experiment you can do that will help you see Boyle's law in action.

https://www.youtube.com/watch?v=aHvGtWXTdso

 You will find more information in the feature article about SCUBA diving in the June 2022 issue of AUS-e-NEWS.

Saturday, June 4, 2022

Let's Go SCUBA Diving

In 2021, Mitchell Goodwin, an experienced SCUBA diver, was diving off the coast of Mandurah in Western Australia. According to the report in the "West Australian", he descended to a depth of 42 m and stayed at this depth for 27 minutes. On his ascent, he made one decompression stop. When he got back to the boat he felt nauseous, lost his hearing, his sight, and blacked out.
What had gone wrong?
Read more in the June 2022 edition of AUS-e-NEWS.
Subscribe to AUS-e-NEWS, AUS-e-TUTE's free quarterly newsletter for chemistry students and teachers, at https://www.ausetute.com.au/ausenews.html

Wednesday, May 11, 2022

Australian Curriculum and Year 9 "Science"

 Last year I was writing questions for an Australian Years 9-10 Science textbook when I first came across the "gamma decay" problem.

The textbook authors stated that there are 3 types  of radioactive decay: alpha, beta and gamma (which is kind of OK for Year 9 or 10 science). They wanted to provide an isolated example of each type, that is, an example of alpha decay, an example of beta decay, and an example of gamma decay. Which is where the problem lies. Giving an example of alpha or beta decay is easy, just ignore any other possible radiations when you do it, which is the "traditional" method for teaching nuclear decay to Years 9 or 10, or indeed Year 11 chemistry (and yes, physics teachers are probably horrified, and rightly so, IMHO). But, you can't do this for gamma decay unless you want to talk about "excited states".

Which brings us to version 9 of the Australian Curriculum for Year 9 Science which states,

"describing in simple terms how different unstable isotopes decay such as radon-222 releasing an alpha particle, iodine-131 releasing a beta particle and cobalt-60 releasing gamma radiation to form stable atoms"

Alpha decay of radon-222 and beta decay of iodine-131 ... OK, can do.

Gamma decay of cobalt-60 ? Problem! Cobalt-60 decays by emitting a beta particle to produce an excited state nickel-60 atom. Excited state nickel-60 loses energy by emitting high energy gamma ray and relaxing back to a ground-state nickel-60 atom. But, we can't use this as an explanation because the introduction to excited states won't occur 'til, possibly, year 10 (when they do flame tests).

Has the Australian Curriculum been proof-read?

I think not. Further evidence of the writer's (or writers') slipshod approach to "science" is evidenced in this "interesting" extract (also for Year 9)

"investigating how radiocarbon and other dating methods have been used to establish that First Peoples of Australia have been present on the Australian continent for more than 60,000 years"

Problem 1: radiocarbon dating is pretty useless for anything older than about 40,000 years old, so it would be worse than useless for artifacts said to be 60,000 years old. 

Problem 2: where is the SCIENTIFIC evidence that Australia has been inhabited by humans for "more than 60,000 years"? Surely if you are going to make a statement like this, and force SCIENCE teachers to teach it, you need to support the statement, just a link a two, some references, to some SCIENTIFIC studies would be useful. 

So, here's what I think I know ... Mungo man/mungo woman are thought to be about 40,000 years old (give or take a few thousand). Blackened rocks at Moyjil are thought to be about 125,000 years old, but not linked to human habitation (that I'm aware of). The Pilbara petroglyphs have a wide range of dates depending on who provides them, but they also seem to be scientifically dated between 40,000 and 50,000 years. 

My problem is that I'm not an anthropologist, I know a little bit about chemistry (Chemical Sciences), a bit less about geology (sorry, Earth Sciences), even less about physics (AKA physical sciences), and practically nothing about biology (sometimes called a science), and hence I am NOT in a position to either a) know how long Australia has been inhabited for, or

b) to teach anything about this 

... and I suspect most SCIENCE teachers in Australia would fall into the same category.

AC: Australian Curriculum or Australian C_ _ p?