Middle School, Physics Lesson Plans (33 results)
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Lesson Plan
Grade: 6th-12th
1 review
"Vacuum sealed" © 2010 Windell Oskay
In this activity, students are asked to create a change in air pressure using a garbage bag and vacuum cleaner, then create an illustration, model or concept map that explains what is happening.
This activity is part of the KQED Engineering Is: Bringing Fish Up from the Deep e-book. The e-book explores the science and engineering principles behind the California Academy of Sciences' portable…
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Lesson Plan
Grade: 6th-8th
Students use ultrasonic sensors and LEGO© MINDSTORMS© EV3 robots to emulate how bats use echolocation to detect obstacles. They measure the robot's reaction times as it senses objects at two distances and with different sensor threshold values, and again after making adjustments to optimize its effectiveness. Like engineers, they gather and graph data to analyze a given design (from the tutorial) and make modifications to the sensor placement and/or threshold…
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Lesson Plan
Grade: 6th-8th
2 reviews
How does light interact with matter? In this fun hands-on lesson, your students explore how different materials transmit, absorb and/or reflect light. They create their own experiments to demonstrate these phenomena and use a phones' built-in light sensor and a sensor app to add quantitative data to their arguments.
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Lesson Plan
Grade: 5th-8th
2 reviews
"Diver and Lemon shark" © 2004 Hpm~commonswiki
What helps SCUBA divers, sharks, fish, and other marine organisms stay in the water column? In this hands-on investigation, students will explore the concepts of buoyancy and mass to create a device to help an action figure stay neutrally buoyant, just like a scuba diver.
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Lesson Plan
Grade: 4th-8th
Students design a device that can track a specific amount of time and indicate when that time has passed with a sound or visual signal. They iterate their designs and prototypes to improve repeatability.
Learning Objectives
Students will:
Design and build a device that indicates when a specific amount of time has passed.
Use simple machines in their device.
Identify the ways in which energy is stored and transferred in their device.
Iterate and improve their designs based…
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Lesson Plan
Grade: 6th-8th
1 review
(Image credit: by ackab1, via Flickr. Creative Commons).
Students will discover the science behind how a drone works, explore how drones are used in agriculture, and program and operate a drone for the purpose of monitoring grazing sheep.
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Lesson Plan
Grade: 6th-8th
1 review
How was magnetism responsible for the destruction of dozens of ships during World War II? In this lesson, your students will
explore the concepts of magnetic fields and forces using the example of World War II magnetic mines. With the help of a magnetometer, a smartphone, and a sensor
app, students will investigate what factors affect the strength of a magnetic field. Then they will use
their knowledge to try to discover the location of hidden "mines" and investigate how they can cloak a…
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Lesson Plan
Grade: 4th-7th
Learners explore the properties of materials by designing a barrier that will protect a satellite from colliding objects. They test out multiple combinations of materials and collect data on the results to determine which materials are the most effective at shielding the satellites from the hazards of space debris.
Learning Objectives
Students will:
Design a barrier that can protect the satellite from high-velocity impacts with space debris.
Explore design considerations based on…
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Lesson Plan
Grade: 6th-8th
Working as if they were engineers, students design and construct model solar sails made of aluminum foil to move cardboard tube satellites through "space" on a string. Working in teams, they follow the engineering design thinking steps—ask, research, imagine, plan, create, test, improve—to design and test small-scale solar sails for satellites and space probes. During the process, learn about Newton's laws of motion and the transfer of energy from wave energy to…
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Lesson Plan
Grade: 6th-8th
2 reviews
This activity demonstrates how potential energy (PE) can be converted to kinetic energy (KE) and back again. Given a pendulum height, students calculate and predict how fast the pendulum will swing by understanding conservation of energy and using the equations for PE and KE. The equations are justified as students experimentally measure the speed of the pendulum and compare theory with reality.Engineering Connection
Mechanical engineers design a wide range of consumer and…
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