Showing posts with label STEAM. Show all posts
Showing posts with label STEAM. Show all posts

Wednesday, May 15, 2013

Michigan STEM Partnership HUB Meeting, LIVE today (Followed by STEM Showcase)


[St. Clair Hub] ST. Clair STEM Hub Meeting today at 9am
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Project:St. Clair Hub
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ST. Clair STEM Hub Meeting today at 9am

The ST. Clair STEM Hub Meeting is today at 9am.
If you are unable to attend, you can watch the meeting being live-streamed atwww.mistreamnet.com. You will be able to watch, but not participate, via the website http://www.mistreamnet.com/ ...just go to that URL and the event will be advertised.

The STEM Showcase will start at 1pm. Please check out the event webpage atwww.resa.net/stemshowcase.
After the event, the presentations will be archived on this website.

EXPLORE OPTIONS IN STEM EDUCATION

Join the St. Clair Hub of the Michigan STEM Partnership to answer these and other questions:

  • What does STEM look like in the classroom?

  • How can I provide more STEM opportunities for my students?

  • Where can I find solutions to enhance quality STEM in my district?

DATE:  May 15, 2013
TIME:   1:00 - 5:00 p.m.
LOCATION: Wayne RESA, 33500 Van Born Rd., Wayne, MI


Click HERE for the flyer


                                                                        AGENDA
TIMEARTHURS AUDITORIUMROOM 223
1:00 PMMI GEAR UP Worforce DevelopmentEngineering SMArT Detroit
1:30 PMUsing Mobile Devices to Support
Scientific Explanations
Developing Engineering Habits
of Mind in Science Students
2:00 PMPartnerships for Integrating STEM
into Classrooms
Robofest, Autonomous
Robotics Opportunities
2:30 PMLEGO EducationProject Lead The Way
3:00 PMBreak/Presenter's BoothsBreak/Presenter's Booths
3:30 PMSTEM for SustainabilityIntegrating Science and Engineering
in MS with Project-Based Learning
4:00 PMAmatrol's Portable STEM ToolkitLeveraging Existing Robotics Materials
4:30 PMIEEE Teacher In-Service Program (canceled)Innovative Vehicle Design
Engineering Programs for K-12 Education This link will open up a Microsoft Word document that describes STEM options focusing on engineering in K-12 classrooms.
The MI STEM Partnership is a statewide collaboration of committed leaders from PK-20 education, business & industry, philanthropy, economic development, government, military, etc. dedicated to elevating STEM literacy & proficiencies in a way that increases economic strength in MI by retaining & attracting desirable jobs.
For more information on the MI STEM Partnership, please contact: Barbara Bolin, Executive Director,
phone: 517.899.4233, email: bb@barbarabolin.com or visit the MI STEM Partnership website.
For more information on the St. Clair Hub, representing Southeast MI, please contact James Emmerling,jemmerling@geneseeisd.org or Michael Gallagher, mike.gallagher@oakland.k12.mi.us.org



http://www.mistreamnet.com/livestream.php?chan=mistem_pt1_051513&who=mistem_pt1_051513

Monday, April 22, 2013

STEM & the Outside World - Making the Environmental Connection (Happy Earth Day!)


Guest Blog: Connecting environmental education and STEM

What are the learning goals of environmental education? How are they best accomplished? How do they support the broader goals of improving students’ STEM skills?

Students have an innate curiosity – even wonder – about the natural world around them. Environmental education (EE) taps into their enthusiasm and provides them the knowledge and skills to solve 21st-century challenges. Early connection with the environment also equips students to make everyday decisions that improve the quality of their lives and the health of our planet.
The goals of EE can be accomplished well through project-based learning and hands-on exploration of the outdoors. Local, place-based environmental projects provide relevant learning experiences for students and an opportunity to make a meaningful difference in their communities.

Through EE, students learn not only STEM content, but also develop the critical thinking, problem-solving and decision-making skills that are critical for success in STEM careers where substantial growth is expected. Further, studies indicate that young people who experience the natural world and have more opportunities to play and learn within it are more likely to choose science or related fields as careers.

What are the opportunities and obstacles to introducing students to environmental education?

While field trips and opportunities to explore nature centers and other nonformal education settings are valuable to sparking interest and deeper knowledge about the environment, lack of time and resources can make it challenging for teachers to provide those opportunities. Increasingly, schools are investing in enriching the more accessible laboratories for learning that exist right outside the classroom door, in a nearby park, the schoolyard, school garden -- even the school building itself. Recognizing the national priority on successfully engaging more students in STEM, significantly more environmental science content is being integrated across multiple disciplines. There are expanded opportunities within the new Next Generation Science Standards to emphasize science learning through an environmental context, through content on human impacts on the natural world.

What do policymakers and decision makers need to know when thinking about STEM learning and environmental education?

Research and survey findings indicate young people have a strong interest in the environment. Total employment in STEM jobs is expected to increase by twice as much as all other jobs by 2018 and environmental science jobs are expected to grow by 25% by 2016 – the fastest among the sciences. Sources and additional statistics can be found in the new Tech & Our Planet infographic.
In 2011 the U.S. Department of Education developed the Green Ribbon Schools recognition award, which honors schools that are exemplary in reducing environmental impact and costs; improving the health and wellness of students and staff; and providing effective environmental and sustainability education, which incorporates STEM, civic skills and green career pathways. This year, as part ofNational Environmental Education Week, Secretary of Education Arne Duncan did a PSA that speaks to the important connection between EE and STEM.

Submitted by Jennifer Tabola, senior director of education, National Environmental Education Foundation

Thursday, April 4, 2013

GRANTS - Afterschool Alliance & Noyce Foundation (STEM Impact Partnerships)


Afterschool Alliance and Noyce Foundation launch $10K Afterschool STEM Impact Awards

The Afterschool Alliance and the Noyce Foundation are excited to announce the new Afterschool STEM Impact Awards!  Two $10,000 awards will be awarded to exemplary afterschool programs offering science, technology, engineering and math (STEM) to students in grades 4 through 8.  As afterschool STEM programming grows around the nation, we want to recognize programs that are clearly demonstrating their impact on participants.  Applications for this year are invited for two award categories—strong partnerships and strong computing and/or engineering programs.
 
Additional details are available on the award website, along with a link to the online application.Applications are due by May 15, 2013. http://www.afterschoolalliance.org/STEM-impactawards.cfm

Monday, April 1, 2013

Schools beginning to focus on K-12 Engineering Curriculum: More Out-of-School Possibilities to Connect!


FOCUS ON: ENGINEERING

Engineering Building a Foundation in K-12 Curricula


Sophomore Brett Dennehy, center, watches his creation as he and classmates prepare last week for a robot race in an introduction to engineering course at Stoughton High School in Stoughton, Mass.
—Charlie Mahoney/Prime for Education Week

When STEM education is discussed in the K-12 sphere, it often seems like shorthand for mathematics and science, with perhaps a nod to technology and even less, if any, real attention to engineering. But recent developments signal that the "e" in STEM may be gaining a firmer foothold at the precollegiate level.
For one, a new, national assessment in technology and engineering literacy will be administered to 8th graders next year by the makers of "the nation's report card" on education. Also, engineering design is threaded through a set of "next generation" science standards nearing completion by a coalition of experts and 26 states.
And the first-ever Advanced Placement program in engineering may be on the horizon, as efforts to create one appear to be building steam.
Those developments come on top of the many recent, and some long-standing, programs and projects that bring engineering into the classroom.
In Mobile, Ala., for instance, middle schools are using a recently crafted set of curricular units, each intended to be taught half in math class and half in science.
"The students, as they go from math to science, are trying to solve a design challenge," said Susan A. Pruet, the director of Engaging Youth Through Engineering at the Mobile Area Education Foundation, which devised the curricula with support from a $3.5 million National Science Foundation grant.
In one unit, students design a barrier system for a stream bed to reduce the sediment discharge rate. In another, they design a device to catch blood clots before they reach the lungs and ensure that blood still flows at a fast enough rate, she said.
Ms. Pruet argues that engineering really is at the heart of STEM.
"To me, STEM is integrated science, technology, and math through engineering. It is the glue."
Meanwhile, a yearlong course, Engineer Your World, developed by the University of Texas at Austin in collaboration with engineers from NASA, is being piloted this year at 23 high schools in eight states, with plans to reach 100 campuses next year.
Two of the best-known precollegiate engineering initiatives have seen exponential growth in recent years. Project Lead the Way's Pathway to Engineering curriculum, a sequence of engineering courses that aim to deliver a "hands-on, real-world" approach to solving problems, is being offered this academic year in some 2,760 U.S. high schools, 10 times the figure from a decade ago. More than 45,000 elementary teachers are using curricular units from Engineering Is Elementary, a program launched in 2004 by the Museum of Science in Boston.
"The kids keep asking: 'When are we going to be able to be engineers again?' " said Jennifer L. Haynes, a 2nd grade teacher at Woodland Elementary School in the Lakota district in southwest Ohio, which brought the program to its elementary schools this year.
Lots of out-of-school STEM initiatives with a strong engineering component have cropped up or substantially expanded over the past few years, from robotics competitions to after-school engineering clubs. The Change the Equation, a coalition of business leaders championing STEM education, said during a forum last month on engineering in schools. "Many of our students reach college without any real exposure to hands-on engineering, or in some cases understanding what engineers do."

Crowded Out?

Experts say it's difficult to know how widespread engineering education is today at the K-12 level.
Design to Learn
A variety of programs seek to expose young people to engineering, whether in the classroom or in out-of-school settings.
Engineering by Design: Provides K–12 engineering and technology curriculum developed by the International Technology and Engineering Educators Association. At grades K-5, it provides content to be integrated with other subjects. In the upper grades, it offers a set of courses with a focus on learning concepts and principles in an “authentic, problem-based environment.”
Future City: Provides project-based learning experiences in which students in grades 6-8 design cities of the future. Groups of students team up with an educator and engineer-mentor to plan cities using special software, research and write solutions to an engineering problem, build tabletop models, and present their ideas at competitions.
The Infinity Project: Offers engineering curricula for middle and high school students that help them see the value of math and science through their application in high-tech engineering. Based at Southern Methodist University.
Project Lead the Way: Offers the Pathway for Engineering program, a sequence of high school courses intended to have students learn and apply the engineering-design process, acquire strong teamwork and communications proficiency, and develop critical-thinking and problem-solving skills. It also offers a middle school program, Gateway to Technology, with a strong engineering focus.
SeaPerch: Equips teachers and students with resources to build an underwater Remotely Operated Vehicle in an in-school or out-of-school setting, following a curriculum that teaches engineering and science concepts. Sponsored by the Office of Naval Research. The third National SeaPerch Challenge competition is in May.
TechBridge: Seeks to inspire girls to discover a passion for technology, science, and engineering. Its offerings include hands-on after-school and summer activities for girls, teacher professional development, and resources to help connect stem professionals as role models with young people. Founded by Chabot Space & Science Center in 2000.
A 2009 report by the National Academy of Engineering and the National Research Council said it was "almost invisible" in schools and "few people even think of it as a K-12 subject."
More recently, a survey conducted last year on math and science education found that about one in four high schools offers an introductory engineering course, though some analysts say the phrasing of the survey question makes that figure likely overstated.
Plenty of barriers exist to giving engineering a stronger presence in the curriculum, including the pressure of high-stakes tests in reading and math; teacher-evaluation systems that may, as one analyst put it, make teachers more "risk averse"; little or no focus on engineering in many states' existing standards; and, a lack of teachers prepared to teach the subject.
The recent math and science survey, conducted by Horizon Research, found that just 7 percent of middle school science teachers, and 14 percent in high school, had taken one or more engineering courses in college. Only 7 percent of secondary science teachers consider themselves "very well prepared" to teach engineering.
When engineering courses are offered at the precollege level, they usually are electives.
Also, what takes place in the name of engineering education "does not always align with generally accepted ideas about the discipline and practice of engineering," said the report from the NRC and the National Academy of Engineering.
That document outlines three principles of K-12 engineering education. It should: stress engineering design; incorporate key and developmentally appropriate math, science, and technology skills; and promote engineering "habits of mind," such as systems thinking, creativity, and collaboration.
Several universities have recently set up programs to prepare engineering teachers at the high school level. The University of Texas at Austin launched a UTeach Engineering program a few years ago (akin to its program focusing on math and science teachers). The University of Tennessee at Chattanooga and the University of California, Berkeley, have followed suit with UTeach programs that also prepare engineering teachers, said Cheryl L. Farmer, the program manager at the University of Texas. Several other universities are working on plans to develop similar programs, she said. Tufts University in 2011 launched a master's program in engineering education.
In addition to preparing teachers, the UTeach Engineering program in Texas developed the new Engineer Your World high school course.
"It's an innovative course for students who want to learn more about engineering and its role in shaping our world," said Ms. Farmer.

An excited Michael Connelly sees his team's tower get crushed during an exercise testing the durability of tower design in an honors engineering class at Stoughton High School in Stoughton, Mass. Engineering is building momentum in K-12.
—Charlie Mahoney/Prime for Education Week
One pilot site using the course is the brand new Lake Washington STEM School in Redmond, Wash., where Principal Cynthia L. Duenas said she was surprised to discover that many STEM schools she has visited did not include engineering in a meaningful way.
"We discovered that the 'e' in STEM was almost an afterthought," she said. "That really stuck in my mental file, so my team and I decided that it had to be on equal footing with technology, science, and math."
In one project, engineering teacher Arny W. Leslie said, students faced a scenario in which they were to build wind turbines for Haiti to generate electricity for running water pumps.
"What I've been impressed by is the way the math and science concepts have never seemed like an add-on," Mr. Leslie said.
Meanwhile, the College Board is actively exploring the development of a new course framework and assessment in engineering design, but with a twist. The idea is to produce a portfolio assessment, as is now used for AP Studio Art.

Common Standards

The common standards for science, due out soon, may pave the way to give engineering more attention in schools, observers say.
Currently, no states have stand-alone engineering standards, and only about a dozen have included engineering "formally" in their science standards, according to Greg Pearson, a senior program officer at the National Academy of Engineering. Two states often highlighted as having a strong engineering dimension in their science standards are Massachusetts and Minnesota.
RELATED BLOG
The common standards identify as a key stated aim that students apply their learning through scientific inquiry and the engineering-design process to deepen understanding.
Some engineering experts criticized a recent public draft, issued in January, saying it gave the subject short shrift and was a step backward from an earlier draft.
But Cary I. Sneider, a member of the science-standards writing team, said the final version will reflect significant changes that help to address such concerns.
"The engineering concepts were fragmented" in the prior draft, said Mr. Sneider, an associate research professor at Portland State University in Oregon.
"Engineering design is woven deeply into the core of the standards," he said, "so it should become really a part of every science education program, from K-12."
Even as engineering courses are becoming more widely available in schools, some experts say the most practical way to expose students to engineering on a widespread basis is by integrating it with the math or science courses they already take.
That's the approach of two projects the Stevens Institute of Technology, in Hoboken, N.J., is working on in collaboration with other universities and backed by NSF grants. They infuse engineering concepts and design activities with high school science classes, including biology, chemistry, and physics.
"Kids are always saying, 'Why do I need to learn this, and what am I going to do with it?" said Arthur
Camins, who directs the Stevens Institute's Center for Innovation in Engineering and Science Education.
In one unit, students tackle reducing climate change through the design and construction of a small-scale algae farm to help cut CO2emissions.
In addition, Mr. Camins' center has devised and is scaling up an underwater robotics program delivered mainly at summer camps.
"Virtually everything around us has been engineered, Mr. Camins said at the recent forum on engineering education. "And so it's kind of insane not to engage kids in thinking about that ... and the decisionmaking process that goes into all that design."
Coverage of science, technology, engineering, and mathematics education is supported by a grant from the Noyce Foundation, at www.noycefdn.org.

Thursday, March 21, 2013

On Student-Centered/Created, Exploratory Learning Experiments (Submitted by Jim Ross)


Posted: 20 Mar 2013 03:21 PM PDT
sled3

My third graders have been studying the Iditarod race and tracking musher data online during the past few weeks.  Take a look at the data available on the mushers, like first place winner Mitch  Seavey.   Graphing, data analysis, addition, subtraction, addition, averages, and so much more become real as students follow the race online, tracking their own selected musher.  As a part of the study, we built our own sleds.  I cleaned out the art supplies and covered an entire table with random stuff. Popsicle sticks. Cardboard. Cotton. Yarn. Bubble Wrap. Recycled items.  The goal?  To build a sled that would carry a small bag of musher supplies (bingo chips) down the hill (a table leaned down on two legs) at the fastest speed possible.  The class dove into the supplies, building, researching sled designs, and recreating their own little sleds in small teams.

sled2

When we raced? The sleds with cotton on the bottom hesitated to start.  The sleds with wood bottoms? Zoomed to the bottom.  Friction. Force. Motion. Energy. Collaboration. Data. The reflections afterward? They not only understood friction, but they applied it to their own experiences.  All of this from a pile of craft supplies, a real-life race, and morning spent creating and exploring.   Even better? They applied what they learned to the real sleds on snow, ice, and rock mushing  through Alaska.

I could have given them a pattern to follow. I could have just asked them to just read a chapter about force and motion and write some defintions.  I could have even made a sled and demonstrated for them. Instead? I got out of their way.  A pile of materials engaged them, and our race at the end allowed them to make comparisons, draw conclusions, and keep it real.  They were solving problems, working as a team, and creating.  They were learning.

sled1

Saturday, March 9, 2013

Change the Equation - Growing Out-of-School STEM Chorus (Submitted by Jim Ross)


Change the Equation (Update STEM: February 2013 Newsletter)


{Change the Equation} Now Newsletter - February 2013



* * *
From the CEO
Those of us who are information junkies are mindful that a few data points do not a trend make. However, the chorus of voices coming together in unison around shared and specific goals, in pursuit of value-added efforts to improve STEM learning, indicates to me that something significant is afoot.
Consider what happened in February alone:
  • In a full-page letter published in the New York Times, 42 Change the Equation companies voiced unified support for the new, ambitious Common Core State Standards. The corporate community spoke loudly in providing very public backing for the work under way in states, districts and classrooms nationwide to improve college and career readiness for all students. Given the challenges ahead—such as the real potential for an initial decline in test scores and public backlash—this stake in the ground amounts to a courageous stand.
  • America’s largest youth development organizations announced that they are joining forces to define ways to strengthen their individual STEM programs and collective effectiveness. This message is music to our ears.

    Here’s the beef: The National 4-H Council and the Noyce Foundation this month convened CEOs, senior leaders and youth representatives from Boys & Girls Clubs of America, Big Brothers Big Sisters, Girls Inc., Girl Scouts and YMCA. This executive roundtable focused on out-of-school STEM learning. Corporate and research partners of these organizations were on hand to share information, learn from one another and explore ways to work together to develop impactful STEM learning.

    Bravo—and we can’t wait to see the impact of this strong new partnership. We’re betting that STEM philanthropists will be glad to see this remarkable coordination of effort as well.

    (On a related note, CTEq hosted a STEM Salon in January on out-of-school STEM learning. If you missed it, you can watch it here.)
  • Finally, CTEq is part of a conversation among groups that advocate for girls and women in STEM fields. These groups are coming together and seeking mutual sweet spots, as the out-of-school organizations are doing. This effort could create more and better STEM pathways for girls at critical junctures in their lives.
 My takeaway from this month’s encouraging news is that we’re seeing a more significant, deliberately coordinated movement to improve STEM learning in many forums. Like-minded individuals and organizations, in both the public and private sectors, are synchronizing their advocacy. They’re looking for complementary ways to work together toward a common purpose—and planning strategically to stretch their dollars and amplify the impact.

Are we seeing a trend? What do you think? We’d love to hear your thoughts.

Linda P. Rosen
CEO
Change the Equation
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 * * *
Point of View
Jim Marshall
CEO
Promethean
I’m fortunate to work with educators on a daily basis who remind me that STEM education is far more than the individual study of mathematics and science; it is the interdisciplinary study of science, technology, engineering and mathematics.

As we debate how to increase the number of students seeking careers in STEM related fields, perhaps we ought to consider how students get hooked on studying these subjects in the first place.  We must start early and support all students in acquiring the basic concepts that are the building blocks for success.

At its core, STEM education promotes integrated learning, investigation and questioning, with an emphasis on design and problem solving. STEM-literate students will be experienced in the integrated study of all four subject areas, rather than achieving literacy in any one individual strand. Furthermore, the benefits of this experiential learning style are applicable and can be applied across the curriculum so that any student who graduates from school is prepared to compete in a knowledge-based global economy and can demonstrate each of these attributes.

Our mission at Promethean is to unleash human potential by revolutionizing the way the world learns and collaborates making all of us more engaged, empowered and successful. Through our daily work and by joining organizations like Change the Equation, we work toward those goals by innovating the teaching and learning process so educators have the information, tools and resources necessary to deliver lessons that motivate, inspire and challenge students.

We strive to help teachers be more effective with their time and to give them tools to improve overall learning productivity – again, not just for STEM but for all courses. What is changing is the design of the learning day to involve real-world problem solving, critical thinking, collaboration and communications skills, as well as the curriculum used to help students build their skills and knowledge.

As we seek to understand our students’ progress, we must move to more dynamic and fully integrated tools to impact learning. We need to explore new ways to link learning, teaching, participation, diagnostics and assessment if we are committed to offering a personalized learning journey. And, by keeping a learner-centric approach to how teaching and learning is delivered, with support for all learners to acquire fundamental basic concepts, our students will be prepared for STEM careers and the workforce in general.

We recognize the need to focus on STEM and how necessary it is to update how we teach these more challenging curricula. One approach we believe is to ensure teachers have the access and the ability to use modern technology and digital resources to build dynamic and complete lessons that will keep students interested, engaged and excited.

We cannot fail in our mission to keep students motivated in their learning, when we know the outcome of student achievement directly influences the economic success of a country, and its ability to compete on a very competitive world stage.

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* * *
STEMtistic℠
Engineering Pays Off
The median annual earnings of an engineer with a bachelor’s degree are $75,000. Eight of the 10 majors associated with the highest median earnings are in engineering.
more
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 * * *
What’s Happening at CTEq
This month, we’re pleased to launch a comprehensive new tool that will help states strengthen their efforts to improve STEM learning. We’re also participating in the release of a groundbreaking NCES report on the state of math education nationwide, working to build on our STEMworks Database and hosted a STEM Salon on engineering in K–12 education. And we’re continuing to get great response to our iON Future. 

State Self-Assessment Tool Released! Is your state on track to deepen STEM learning for all students? This month, Change the Equation released an online tool, State Self-Assessment of Capacity for Advancing STEM Initiatives, which will help state leaders and STEM stakeholders work together to answer that question. The tool offers a comprehensive approach to taking stock of every aspect of STEM education, including:
  • Structural conditions for accelerating STEM talent development
  • Standards and expectations
  • STEM learning opportunities
  • Teacher preparation, supply, distribution and support
  • Postsecondary education and research issues
  • Resource allocation and alignment
The tool is designed to help jumpstart state efforts to develop and refine coherent plans that include carefully chosen strategies and tactics attuned to the needs of the state, its regions, school districts, institutions of higher education and employers—while engaging these partners in planning and implementation.

Groundbreaking Math Report Coming in March. CTEq CEO Linda Rosen will join a distinguished panel of experts for the release of a National Center for Education Statistics (NCES) report, Algebra I and Geometry Curricula: Results from the 2005 High School Transcript Mathematics Curriculum Study.

Conducted in conjunction with the National Assessment of Educational Progress (NAEP) High School Transcript Study, this new report explores the relationship between course taking and achievement by examining the content and challenge of algebra I and geometry courses taught in the nation’s public high schools. The report is particularly timely now as schools work to implement the Common Core math standards and prepare all students for college and careers.

The release is set for March 12 at 11 a.m. at the National Press Club in Washington, DC. You can register to attend the live event or attend virtually via webcast to hear the results and panelists’ reactions at http://nces.ed.gov/nationsreportcard/math_curr_registration.asp.

Are Teachers Ready for the Common Core? Check out the Change the Equation blog on the new MetLife Teacher Survey of the American Teacher, which suggests that there may be bumps ahead for teaching to the Common Core.

Building the STEMworks Database. To date, 36 exemplary programs have met the high bar for inclusion in our STEMworks Database. Now, we’re working with WestEd, an independent, nonprofit R&D and service organization, to identify a handful of the most scalable programs—those that are “shovel-ready” and have the capacity to maximize returns on investment. Stay tuned!

The Place of Engineering in K–12 STEM Learning. At this month’s STEM Salon, CTEq explored the challenges of engaging students in engineering—a fantastic career, but a subject that doesn’t yet fit easily in the curriculum or the school day. If you missed it, you can find out how our expert panel thinks this challenge should be addressed on our website.

iON Future Game Continues to Engage Students and Educators. Change the Equation’s suite of free online learning games for middle school to early high school students continues to be a hit. Launched in November, iON Future had attracted 13,260 visits, including 7,678 unique visitors, by mid-February—and the amount of time users spend on the site is well above the industry standard. In addition, of those who create profiles, 57 percent are female.

Visit the site to check out the introductory video, download a learning guide for teachers, facilitators, program directors and families—and get the kids in your life playing the winning STEM game!

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* * *
In the News
National Engineers Week falls in February, and these CTEq member companies are honoring engineers year-round by inspiring teaching and learning in this and other STEM disciplines:

Inspiring the Next Generation of STEM Talent. Bechtel continues its long tradition of sharing the wonders of engineering and supporting young people with several new contributions. The company donated $250,000 to fund the new Delta High School, a public school focused on STEM in the Tri-Cities area of Washington state. The gift was made to the Washington State STEM Education Foundation, which is leading the effort to build the new school through a public–private partnership.

In December, the company opened the Bechtel National Planetarium at Columbia Basin College in Pasco, WA. Equipped with the latest technology, the facility is designed to increase interest in math and science education through astronomy for children and adults of all ages, from around the region. The planetarium, funded in part by a $100,000 donation from Bechtel, illustrates the power of communities and businesses partnering to encourage the next generation of scientists.

Bechtel also celebrated Engineers Week and Introduce a Girl to Engineering Day with “Engineer for a Day” workshops, activities and “teach-ins” from professional engineers for Boy Scouts, Girl Scouts, Webelos and in K–12 schools around the country.

Supporting Strategic STEM Pipeline Programs. The North Carolina GlaxoSmithKline Foundationawarded a $1.76 million grant to improve STEM education in the state, according to the Triangle Business Journal. The grant will be used to create a STEM Center of Excellence for Active Learning at North Carolina A&T State University.

The grant will support two strategic pipeline programs for high school students and incoming college freshmen planning to major in STEM disciplines. A summer enrichment program will immerse high school juniors in critical applications of science, computational science and math, and prepare them for SATs and college. A bridge program for incoming freshmen will offer chemistry and calculus pre-courses and strengthen skills in oral and written communication, critical thinking, time management, leadership and business etiquette, and financial management.

Raytheon Engineers a Teacher Scholarship Program. More than 20 full scholarships will be awarded to elementary teachers (grades 1 through 5) to attend a two-day, hands-on workshop at the Museum of Science in Boston. Up to 20 scholarships of $3,000 will be awarded for teachers interested in learning how to implement Raytheon’s Engineering is Elementary® program in theclassroom.

Rejuvenating STEM Instruction. Engineering News-Record named Dean C. Allen, CEO of Seattle-based mechanical contractor McKinstry, one its top 25 newsmakers of 2012. Allen was instrumental in launching the advocacy group Washington STEM, which has pledged $100 million over the next decade to rejuvenate STEM instruction at all levels of education, in and out of the classroom. Allen serves as board chair of the group. Executives from CTEq companies Boeing, Intel and Microsoft also serve on the Washington STEM board.  
* * *
 Quote
 "We need to have more girls interested in math, science and engineering. We have half the population way underrepresented in those fields. That means we have all that talent downstream that is not being encouraged. We say math and science is part of your overall educational experience. We don’t want you intimidated by it. We want you to continue to pursue it so your options remain open as you get older."
— President Obama, Google+ "Fireside Hangout" chat