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PocketLab Voyager: A Study of Coupled Pendulums

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Submitted by Rich on Tue, 08/22/2017 - 20:26

This lesson deals with what are commonly referred to as coupled pendulums, in which energy is transferred back-and-forth between the pendulums via the coupling.  Pendulums coupled by springs are commonly studied in college physics classes during studies of simple harmonic motion.  However, our lesson makes use of string-coupled pendulums, as they are easier and less expensive to construct.

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PocketLab Voyager: Beat Phenomena with LED's and #50 Lamps

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Submitted by Rich on Fri, 08/18/2017 - 20:29

It is quite well known that when two frequencies of sound are close together, beats are produced and heard.  Demonstrations of this phenomenon are common in acoustical studies in physics classes.  In this lesson we investigate three laboratory techniques for seeing beats instead of hearing them.  These visual beats can be recorded and studied by the use of the PocketLab app and Voyager’s light sensor.  The first technique uses two #50 lamps that are driven at slightly different AC sine wave frequenc

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PocketLab Voyager: Light Intensity of a #50 Lamp vs. a Slow Sine Wave Current

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Submitted by Rich on Mon, 08/14/2017 - 18:32

In this investigation we study a slowly varying sine wave signal produced by a function generator and amplified by a power amplifier to light a small #50 lamp.  We are specifically interested in seeing the relationship between the light intensity of the lamp and the current it is carrying at any given instant of time.  PocketLab Voyager is a perfect laboratory for performing this investigation even though Voyager does not have a current sensor.

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PocketLab Voyager: Moment of Inertia and Conservation of Angular Momentum

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Submitted by Rich on Fri, 08/11/2017 - 21:32

As shown in the image accompanying this lesson, conservation of angular momentum can be investigated using a Lazy Susan (LS), PocketLab, and a compact weight.   Voyager is mounted to the LS.  The LS is given a spin and gradually slows down from friction.   The compact weight is dropped just above the edge of the LS.  The resultant sudden decrease in angular velocity is recorded by Voyager.  The accompanying video shows all of this action.  Taking into account the moment of inertia of the LS, and

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Voyager & Ozobot: Teaming Up to Study Kepler’s Law of Equal Areas

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Submitted by Rich on Tue, 08/08/2017 - 19:45

Although there are a number of Web-based screen animations illustrating Kepler’s Law of Equal Areas, there are virtually no widespread physical demonstrations using actual hardware—at least not until Ozobot made the scene!  Now with Voyager and Ozobot working together as a team, the motion can be visualized and studied quantitatively

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Voyager & Ozobot: NGSS Science and Engineering Practices Challenge

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Submitted by Rich on Fri, 08/04/2017 - 21:02

This lesson provides a challenge that incorporates all eight of the Next Generation Science Standards (NGSS) science and engineering practices.  Although this lesson makes use of both Ozobot and Voyager, neither of these is required, as all data have been collected and are supplied.  Students match several geometric shapes with their corresponding angular velocity vs. time data obtained as Voyager/Ozobot travel around the shapes.  Students are also provided with angular momentum data from an unknown geometric shape and asked to sketch the shape from their analysis. 

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PocketLab Voyager: A Study of Color Reflectivity

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Submitted by Rich on Mon, 07/31/2017 - 20:31

A common experiment for studying the reflectivity of different colored surfaces makes use of colored construction paper, aluminum foil, a light source, and a light sensor.  Voyager’s light sensor and the little flashlight included with the Explorer Kit are perfect tools for performing this experiment.  Empty graphs and data tables suitable for copying for student use are included with this lesson.
 

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Voyager & Ozobot: A STEM Team to Study Linear Motion

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Submitted by Rich on Sun, 07/30/2017 - 16:45

Ozobot “Evo” (ozobot.com) is a tiny one-inch diameter robot that can be quickly programmed using a Google Blockly dialect known as OzoBlockly (ozoblockly.com).  This lesson combines the ability to program Ozobot to move freely in a straight line with Voyager’s ability to sense the resulting motion through its range finder.  Students compute the slope of the resulting position versus time graph to determine Ozobot’s velocity.

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PocketLab Voyager: Double Slit Diffraction Interference & The Wavelength of Light

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Submitted by Rich on Fri, 07/28/2017 - 02:52

A classic way to demonstrate the wave nature of light is to pass a coherent beam of light from a laser through a double slit.  In this lesson, students study the intensity of light in the resultant interference pattern using the light intensity sensor of PocketLab Voyager.  Students also compare intensity to theoretical predictions.  In addition, the wavelength of the light can be calculated from knowledge of slit separation, distances between bright fringes in the interference pattern, and distance from the double slit to the pattern. 

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