Saturday, November 12, 2011

Global Climate Change Article Analysis

Image credit: IAN Symbol Libraries
To finish our annual study of global climate change, I ask students to survey a variety of scientific literature outlining the impacts of climate change around the world and to interpret their findings. Students need the opportunity to engage with the scientific literature around global climate change in order to develop their own sense of climate science literacy. The US Global Change Research Program sums up the importance of climate literacy in the following guide, Climate Literacy—The Essential Principles of Climate Sciences:

"Climate Science Literacy is an understanding of your influence on climate and climate’s influence on you and society. A climate-literate person:
  • understands the essential principles of Earth’s climate system,
  • knows how to assess scientifically credible information about climate,
  • communicates about climate and climate change in a meaningful way, and
  • is able to make informed and responsible decisions with regard to actions that may affect climate."
I provide students with a wide sampling of scientific articles that document climate change and climate change impacts from around the world. Each student selects, reads, and summarizes the main scientific ideas from several of these articles, then chooses one article to interpret in more detail. In the final analysis, students create a labeled diagram that illustrates the main scientific ideas from their chosen article and explains the connection between the science and the climate change impacts.

For most students, this is the first time they have engaged in a formal literature review of scientific material, thus time and support is provided to help students dissect these articles efficiently. At our school we use a Mark-It-Up reading strategy, which helps students break down complex texts into the comprehensible essentials. Students write their "mark-it-up" notes on stickies and place these stickies around the room next to their article's placard. All students visit and review the stickies created by other students before drafting their final analysis.

For the articles themselves, I keep my eyes open for timely and relevant stories from reputable and fairly unbiased science sources such as BBC Science, National Geographic, NPR, NOAA, NASA, etc. The articles are usually no more than two pages in length, span a range of teenage reading levels, are scientifically-based with data and evidence, and encompass a wide range of climate impacts around the planet. A few of these articles are provided in the links at the end of this post.

As mentioned in my previous post, my greatest hope is that my students develop an appreciation for science so that they can make logical and informed decisions based on data and evidence, not hype and hot air.



A Sampling of Climate Change Articles:

Saturday, November 5, 2011

Global Climate Change 101

One of the most troubling aspects of the global climate change "debate" is how poorly those who deny climate change understand the basic physics and chemistry of Earth's atmosphere. As we study global climate and climate change in the classroom each year, I strive to help students understand the basic scientific principles of Earth's atmosphere first, then present students with the opportunity to work with some of the global climate data. My students are afforded the privilege to develop their own conclusions about global climate change based on the data and evidence that scientists have collected.
The Greenhouse Gases

Our study of climate change begins with a look at the greenhouse gases and the greenhouse effect. When first asked, students unsurprisingly respond that the greenhouse effect is a "bad thing," exhibiting their imperfectly developed understanding of this natural phenomenon. I must often confront this and other types of misconceptions in my science classroom, thanks mainly to the disinformation that students have been exposed to through television media.

The greenhouse effect refers to the ability of Earth's atmosphere to retain additional heat energy because of the presence of various greenhouse gases, such as water vapor and carbon dioxide. The greenhouse effect is a wholly natural phenomenon; without it, Earth's average temperature would be 33°C lower than it is now, and the planet would be completely frozen. No greenhouse effect means no liquid water, which means no plants, which means no life.

So, this natural greenhouse effect is truly a good thing for our planet. But what happens when the greenhouse effect is altered, by adding additional greenhouse gases to Earth's atmosphere? Any change in the composition of Earth's atmosphere will alter its chemistry and add imbalance to Earth's energy budget. (Earth's energy budget is a balance of energy: solar energy from the Sun flows into Earth's atmosphere, is converted to infrared heat energy by the atmosphere, clouds, and surface of the Earth, which eventually flows back into space.) The Earth system will respond to changes in atmospheric chemistry through a variety of feedback mechanisms, but ultimately the physics dictates that increased greenhouse gases create a warmer planet.

There are four major, naturally-occurring greenhouse gases in Earth's atmosphere: water vapor, carbon dioxide, methane, and nitrous oxide. As mentioned above, these gases help create a favorable temperature on our planet. However, since the beginning of the Industrial Revolution back in the 1700's, humans have been adding more of these gases plus a host of new, synthetic gases to the atmospheric mix. The concentrations of almost all of these gases have been rising steadily for the past 200+ years.

Why are these invisible, colorless, odorless gases called "greenhouse gases?" What do they actually do in the atmosphere? This is an abstract concept for students to grasp, but it is imperative that they understand how these greenhouse gases behave to appreciate their role in maintaining an atmospheric heat balance. One excellent tool is the Greenhouse Effect simulation, part of the PhET collection developed by the University of Colorado. In this interactive simulation, students can see what happens when both solar energy from the Sun and infrared heat energy from the Earth interact with various gaseous molecules present in Earth's atmosphere. Molecules such as nitrogen and oxygen—the two most abundant molecules in Earth's atmosphere—allow both solar and infrared energy to pass through the atmosphere uninterrupted. In contrast, greenhouse gas molecules such as carbon dioxide and methane allow the solar energy to pass into the Earth's atmosphere freely, but disrupt the return flow of infrared energy back into space. Because of the greenhouse gases, the heat energy leaving planet Earth takes longer to return to space, thus warming the planet.

What data do we have to support and validate the phenomenon of the greenhouse effect? For the past 50 years, NOAA scientists have been collecting air samples all around the globe and measuring the concentrations of different greenhouse gases in our atmosphere. The concentrations are steadily increasing as humans add more of these gases into the atmosphere through the burning of fossil fuels and the release of gases through various industrial and agricultural processes. NOAA developed a simplified measure of the combined effects of these gases, the Annual Greenhouse Gas Index (AGGI). The AGGI provides mathematical values for each of the greenhouse gases that indicate their individual contribution to the greenhouse effect and the warming of our planet. My students graph the AGGI data each year and draw conclusions about the patterns and trends in the data. SPOILER ALERT: The data support greenhouse theory.

The approach to which I introduce students to global climate change is entirely evidence based. For any scientist to make claims or propose hypotheses about the natural universe (including planet Earth) requires that she or he follow the evidence trail. An overwhelming body of evidence, including laboratory testing, supports scientists' explanations about the greenhouse effect, the changes to the greenhouse balance, and its impacts on global climate. To ignore both the evidence and the rigorous science behind it presents a moral and ethical dilemma that I believe is irresponsible to the inhabitants of this planet—our only home in the universe. My greatest hope is that my students develop an appreciation for science so that they can make logical and informed decisions based on data and evidence, not hype and hot air.



Classroom resources for global climate change studies:

Sunday, October 30, 2011

Colorado Weather Diagrams

Colorado Weather Diagram
This week, students created Colorado weather diagrams in order to think more deeply about significant weather events and what must be done to prepare for these events. The lesson also provided an opportunity to talk about using primary resources when conducting scientific research. Not surprisingly, with this week's early-season snowstorm, many students chose winter storms as their primary research focus—although tornadoes are always popular, too.

Here are the guidelines for the lesson:
Pick one Colorado weather event to research in more detail. Use the primary resources on our science website and the materials (primary resources, posters, textbooks, etc.) in the classroom for your research. Create a labeled and illustrated diagram about your event, and include the following information:
  • What are the necessary ingredients for this type of weather event?
  • How/why/when/where does this weather event occur?
  • What are the hazards and impacts of this event on humans? 
  • What are some good safety preparations and guidelines for this type of weather event?
  • Don’t forget descriptive title, caption, color, etc...
Use the space on the paper to organize your notes and create a rough draft. Your final draft goes on a separate sheet of paper.
There are several reasons that I like this lesson:
  • It reviews/reinforces the concept of using primary resources when conducting scientific research. We get a chance to discuss the appropriate use of resources such as Wikipedia and textbooks, and the benefits of getting as close to the primary source as possible when engaging in scientific research. In the case of severe weather, NOAA and the National Weather Service are definitely excellent primary resources. A list of the guides we used appears at the end of this post.
  • The research questions are multidimensional, covering both the mechanics of weather and its impacts on human beings. Students complain that sometimes their favorite TV shows are interrupted by severe weather warnings—this lesson helps them understand and appreciate the necessity of these interruptions and the potential life savings that occur because of them.
  • There is room for creative expression. The more I teach, the less I specify how a particular assignment should be presented by students. I speak in terms of generalities: a well-designed diagram with appropriate communication elements such as title, caption, labels, arrows, color, etc. Our classroom standard of excellence is that students may be as creative as they wish, but they cannot distort, exaggerate, or dilute the scientific data; and, their presentation must be such that an intelligent stranger would fully understand their work without being confused or needing to ask basic questions such as "What is this?" or "What does this mean?"
  • Students are expected to rough draft and peer edit their work, which emulates the peer review process in science.



Here are links to the primary resources used in this lesson:

NOAA Safety and Awareness Publications, Brochures, Booklets for Children and Adults

NOAA Preparedness Guides:

NOAA Owlie Skywarn Guides:

Saturday, October 22, 2011

In Defense of Hands-On Science

Investigating Rates of Heating and Cooling
"The debate over how best to teach science has amplified as school districts and states place more emphasis on standardized testing." —David Klahr, professor of psychology at Carnegie Mellon University in Pittsburgh

In a Palm Beach Post article, middle school science teachers in a Florida school have discarded hands-on science learning activities in favor of demonstrations, videos, PowerPoint lectures, and other direct instruction techniques. Their argument is that lengthy, hands-on science investigations do not translate into significantly positive gains on state standardized tests. As a scientist and educator, I am disturbed and unsettled by this decision to sacrifice a vital component of the process of science in the name of test scores.

Two years ago, our school district adopted a curriculum that promotes inquiry-based learning as an essential component of our students' science education. This inquiry focus is derived from the National Science Education Standards:
Scientific inquiry refers to the diverse ways in which scientists study the natural world and propose explanations based on the evidence derived from their work. Inquiry also refers to the activities of students in which they develop knowledge and understanding of scientific ideas, as well as an understanding of how scientists study the natural world. [National Research Council. 1996. National Science Education Standards. Washington, DC: National Academy Press.]
In addition to an inquiry focus, our curriculum strives to teach for enduring understanding, whereby students make mindful meaning of their learning as well as transfer their learning to new situations or problems; simple knowledge acquisition is insufficient. To achieve this worthy goal, which ultimately benefits students and society, requires a commitment to creating an environment where the process of science is paramount, where our students are engaged in authentic, hands-on learning.

In my opinion, taking away hands-on learning opportunities denies students access to a rich, quality scientific education experience. It prioritizes extrinsically-driven, short-term knowledge acquisition and test score gains over intrinsically-motivated, deep understanding and lifelong learning. I choose depth of understanding over breadth of knowledge—a depth developed through student engagement in well-designed, meaningful, time-worthy (not time-wasting), hands-on laboratory investigations.

The debate on how best to teach science will continue, but I hope that a rational commitment to authentic, inquiry-based science education—which includes hands-on investigations—survives the pressures of high stakes testing.

Saturday, October 15, 2011

Meteorology Questions

Image Credit: Pics4Learning
I frame our science learning in terms of questions—learning goals, laboratory research questions, daily warm-up questions, one-on-one student conversations, etc. Questions stimulate thinking and conversation; the more questions, the better. I am famously known for never giving students "the right answer," but always asking them that one additional question. Of course, my favorite question is, "Why?"  :)

Throughout the school year, I will share some of the questions we ponder as we engage in the process of science. Here is a sampling of some of the "big idea" questions that I pose during our study of meteorology:

Atmospheric Structure
  • What are the features and characteristics of Earth's atmosphere?
  • What is the composition of Earth's atmosphere?

Heat Transfer
  • How is heat transferred in Earths's atmosphere?
  • What are the three types of heat transfer in Earth's atmosphere, and how does each work?
  • What is Earth's energy budget?

Weather Maps
  • How do scientists measure, record, and analyze various types of weather data?
  • How do we measure air temperature?
  • How do we measure dewpoint and humidity?
  • How do we measure atmospheric pressure?
  • How do we measure wind direction and wind speed?
  • How do we draw isobars?
  • What are fronts and how do we locate them on a weather map?

Types of Weather
  • What causes weather?
  • How are clouds formed?
  • How do scientists forecast the weather?
  • How do different types of severe weather form?
  • How do scientists monitor severe weather? 
  • How do we prepare for and stay safe during severe weather?

Climate Change
  • How do scientists study global climate and climate change?
  • What are the factors affecting climate change over time?
  • What is the greenhouse effect and how does it work?
  • How do we measure "parts per million?"
  • How does carbon cycle through the Earth system over time?
  • What is our current understanding of climate change?



For more information about effective questioning:
Ivan Hannel, Insufficient Questioning, Phi Delta Kappan, Vol. 91, No. 3, November 2009, pp. 65-69. In this article, author Ivan Hannel discusses how highly effective questioning can keep students interested and improve their learning.

Saturday, October 8, 2011

Thanks for Being Insanely Great

Steve Jobs is one of my heroes.

Credit: Jonathan Mak
Steve's genius and vision has touched my life for more than a quarter century. He brought us the best damn pieces of technology on the planet, and disguised them as works of art. He breathed joy and wonder into otherwise dull, utilitarian objects. When I imagine a world without Steve Jobs, I see a world where technology lacks heart and soul — a DOS-colored landscape of intolerable digital devices moldering in the dusty recesses of our lives.

I cannot help but smile when I reflect on the influence of Steve Jobs and Apple in my classroom. The attention to detail and the audacity to "Think Different" have made huge, positive impacts on my students:

  • Grape iMac = coolest, most enticing computer ever
  • Stickies = most elegant, colorful, and simple text display utility
  • Keynote + beautiful fonts + stunning transitions and animations = rapt audience
  • iTunes + iPod = musical therapy
  • iPad + NASA = wow!

Thank you, Steve, for being insanely great…

Saturday, October 1, 2011

What Is Excellent?

While I recognize their utility and purpose, I've never been a big fan of rubrics. So time-consuming to create, and all those "less than proficient/unsatisfactory" categories that aren't even appropriate for students to consider. Back in 2009, I attended a presentation by Rick Wormeli—author of Fair Isn't Always Equal—in which he advocated the use of a much simplified, more holistic Standard of Excellence over the traditional, multi-column rubric. What a relief to discover a more flexible alternative to the perennially rigid rubric! In a Standard of Excellence guide, only the highest standards are defined and presented to students. Gone are all those mediocre and meaningless categories, such as "proficient," "adequate," "poor," etc. (To paraphrase Mr. Wormeli, "Do you really want your students to settle for being mediocre?")

Image credit: Discovery Clip Art Gallery
What does this look like in my science classroom? I have a collection of help guides that students use over and over throughout the year, and these guides define the standard of excellence: this is what an excellent graph looks like, this is what an excellent data table looks like, this is what an excellent masterpiece caption looks like. No confusion, no waffling. It's so much simpler to say to students, "Your work is not done until you have addressed every item in our Standard of Excellence." I find that students generally strive to achieve the defined level of excellence—they want to do well.

A key to successful application of this model is clearly defining what the standard of excellence looks like and regularly asking students if they have met that standard. I teach my students to self-assess their own learning against the standard before asking me to check their work. I can modify the standard for students with different needs by having them focus on particular items within the standard, rather than just watering down the whole standard.

While good rubrics have their rightful place in education, they are no panacea. We must be careful when applying rubrics to our students—no single rubric can quantify the learning styles of the children we teach. Over-reliance on rubrics can stifle the intrinsic creativity and thirst for discovery our students possess.



Excellent Sample Guides

Additional Reading