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<v Narrator> Including Universal Design in
the Engineering Curriculum

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<v Cynthia> By including
accessibility and universal design

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in engineering curriculum,

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you're making a statement to all
the students that you're teaching

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that the perspectives and the needs
of people with disabilities

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is something that they need
to think about,

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whether they're engineering specifically
for that group or for any other group.

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<v Sheryl> I think it's really
important that we train our new engineers

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to be versed in the area of
universal design and accessibility

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so that when they create products for
the companies that they will work for

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they'll be accessible and usable
by people with disabilities

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and individuals with all kinds
of different characteristics.

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<v Anat> As a creator
of a technology,

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you have the onus
and responsibility

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to address the needs
of a variety of end-users.

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<v Narrator> Universal design
and related frameworks

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such as inclusive design,
ability-based design,

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and human-centered design

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encourage engineers to be proactive in
considering the abilities of diverse users.

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Universal design is defined by the
Center for Universal Design

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at North Carolina State University as

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"the design of products and
environments to be usable by all

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people, to the greatest extent
possible, without the need for

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adaptation or specialized
design."

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Universal design
requires engineers to question

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any assumptions a design
makes about its users.

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Engineering students who
understand these concepts

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enter the workforce prepared to
design for a wide variety of users.

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<v Kat> So just as we teach safety

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and material properties and dynamics
within our engineering curriculum,

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incorporating universal design
can ensure that our future engineers

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consider those small design tweaks
and consider the breadth of the population

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in their design
and future innovation.

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<v Terrill> Asking “Is this accessible?”
or “What are the accessibility implications?”

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then that is a practice that can follow
them throughout their engineering career.

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<v Narrator> Engineer Billy Price
used his own life experience

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as a person with quadriplegia
to design a line of shoes.

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It's an example of universal design.

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<v Billy> I don't have the ability to tie
laces

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and I know when it comes to laces

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a common solution out there is to use Velcro,
but even if you overcome the laces,

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you still have the physical issue
of jamming your foot into the shoe,

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so staring at my feet for 18 years,
in other words half a lifetime,

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of not being able to put my shoes on,
I knew there had to be a better solution.

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The shoe that we've created,
yes it has adaptive characteristics.

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But we're not marketing it
as an adaptive shoe.

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It's a shoe that's trendy.

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It's a shoe that everyone's
going to want to wear.

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It's a shoe that will
be in all the stores,

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so anyone can buy it.

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<v Narrator> The shoes
have a unique zipper

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that runs along the
outside edge of the shoe.

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It opens like a clamshell.

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There are opportunities
for universal design

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in thousands of consumer products
and built environments

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that engineers help
to design and build.

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Addressing these needs
can improve the lives

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of individuals with disabilities
and the general population.

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Engineering educators can help
prepare their students

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to design for diverse abilities

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by introducing accessibility
or universal design topics

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in a variety of ways.

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<v Richard> You could do
maybe just part of a lecture,

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or you could just do
one lecture on it,

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or several lectures,
not a whole course,

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and the third option is to
just develop a whole course

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on accessibility and universal design.

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<v Brianna> In a classroom
when you're having a design challenge,

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if you think about how could somebody,

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could somebody who's older
and has arthritis

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use this thing you're designing?

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Could a pregnant woman use this
thing you've just created?

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Start asking those questions.

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Could somebody who's color-blind use this?

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You're actually thinking about
a more broad population.

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It's an easy way to sneak some ideas
about universal design,

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creating a product that's more widely
usable into what you're designing.

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<v Narrator> University of Washington's
Terrill Thompson

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created a web design curriculum
for high school students

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that integrates accessibility
into design considerations.

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<v Terrill> Kids are
learning to code web pages

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using all the languages that you
use to code webpages–

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HTML, CSS and JavaScript–

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and they learn very early on
some core design principles,

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one of which is the need
for accessible design.

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And so they learn how
people with disabilities

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access computers and access the Web

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and what some of the
challenges they face are,

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and then as they're learning new
techniques throughout the course

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they learn or they're taught to ask,

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how does this technique affect accessibility?

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<v Narrator> But there are other ways
that faculty can teach about disability,

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accessibility, and universal design
in their courses.

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<v Cynthia> I think that capstone courses,
the purpose of them is to allow students to

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apply the skills that they've
learned in a real world situation

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and so it can be a great
opportunity for students,

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to first of all understand that
accessibility and universal design

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can address real world problems.

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But also to allow the students to put some
of the skills they've learned into practice.

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<v Kat> I teach our
senior design course

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which is a common year-long
course for engineering students

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that they take in their final year
if they're an undergraduate.

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And that really is a natural place
for integrating topics of

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accessibility and universal design.

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We have students working on projects
from designing an electric skateboard

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to figuring out the next medical product
that can prevent collapsed lungs.

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And in all of these,
components of universal design

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can enter to help them do user testing
on a diverse set of users,

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consider how small changes
in their design

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can increase access, or
make a device easier to use.

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Often a design tweak that,
for example,

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makes it easier for an individual
with a visual impairment

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or who has limited dexterity

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will actually make the product
easier for everyone to use.

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So we inject universal design
into our curriculum

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to encourage them to explore
lots of different design spaces

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and hopefully, ultimately
have a better design.

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<v Nils> In my class,
I teach a biomechanics class

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and we talk about momentum
and linear and angular momentum

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and I demonstrate how I use momentum
to swing my arm to get my hand up

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onto the joystick
of my wheelchair.

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So it's kind of, try to incorporate
those type of examples in class.

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<v Cynthia> Giving students opportunities
to

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meet and interact with people with disabilities

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is a great way to include it
in the curriculum.

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<v Kat> We've found that
the students learned so much

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through just having a space to
sit down and talk frankly about

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issues surrounding accessibility, disability,
and some of the societal implications.

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<v Narrator> By teaching accessibility
and universal design in engineering courses,

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faculty are producing engineers who can
succeed in a competitive job market

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because they will be equipped to create
products that are widely accessible

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to users with diverse abilities.

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Instructors can get started by...

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including a panel of individuals
with diverse abilities,

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helping students to consider universal design

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and address disability-related issues
in design projects,

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requiring that students adhere
to accessibility guidelines

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when they create user interfaces
or websites.

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<v Terrill> If we want an accessible society
with innovation that includes accessibility,

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then students need to be taught
about universal design and accessibility.

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<v Narrator> To learn more about how you
can incorporate accessibility

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and universal design in
engineering courses, visit the

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AccessEngineering website hosted
by the University of Washington.

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uw.edu/doit/programs/accessengineering

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AccessEngineering is supported
by National Science Foundation

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Grant number EEC-144961. Any
opinions, findings, and

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conclusions or recommendations
expressed in this video are

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those of the authors and do not
necessarily reflect the views of

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the National Science Foundation.

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Copyright 2016.

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Permission is granted to copy
these materials for educational

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non-commercial purposes provided
the source is acknowledged.

