185 results found for 'Motion'. Prev |1|2|3|4|5|6|7|8 | Next | View 100 per page
Low relevance matches: 33 other results may be of interest to you. Show low relevance matches
Forces and Moving - The way objects move depends on a variety of factors including their size and shape ACSSU117 Year 7 Physical Sciences
Forces and Machines - Change to an object’s motion is caused by unbalanced forces, including Earth’s gravitational attraction, acting on the object ACSSU151 Year 8 Chemical Sciences
Matter and Particles - The properties of the different states of matter can be explained in terms of the motion and arrangement of particles ACSSU229 Year 10 Physical Sciences
Forces and Motion - The motion of objects can be described and predicted using the laws of physics ACSPH060 Year 11 Linear Motion and Waves
Linear motion and force - Uniformly accelerated motion is described in terms of relationships between measurable scalar and vector quantities, including displacement, speed, velocity and acceleration ACSPH061 Year 11 Linear Motion and Waves
Linear motion and force - Representations, including graphs and vectors, and/or equations of motion, can be used qualitatively and quantitatively to describe and predict linear motion ACSPH062 Year 11 Linear Motion and Waves
Linear motion and force - Vertical motion is analysed by assuming the acceleration due to gravity is constant near Earth’s surface ACSPH063 Year 11 Linear Motion and Waves
Linear motion and force - Newton’s Three Laws of Motion describe the relationship between the force or forces acting on an object, modelled as a point mass, and the motion of the object due to the application of the force or forces ACSPH064 Year 11 Linear Motion and Waves
Linear motion and force - Momentum is a property of moving objects; it is conserved in a closed system and may be transferred from one object to another when a force acts over a time interval ACSPH065 Year 11 Linear Motion and Waves
Linear motion and force - Energy is conserved in isolated systems and is transferred from one object to another when a force is applied over a distance; this causes work to be done and changes to kinetic and/or potential energy of objects ACSPH066 Year 11 Linear Motion and Waves
Linear motion and force - Collisions may be elastic and inelastic; kinetic energy is conserved in elastic collisions ACSPH069 Year 11 Linear Motion and Waves
Waves - Waves may be represented by time and displacement wave diagrams and described in terms of relationships between measurable quantities, including period, amplitude, wavelength, frequency and velocity ACSPH072 Year 11 Linear Motion and Waves
Waves - The superposition of waves in a medium may lead to the formation of standing waves and interference phenomena, including standing waves in pipes and on stretched strings ACSPH073 Year 11 Linear Motion and Waves
Waves - A mechanical system resonates when it is driven at one of its natural frequencies of oscillation; energy is transferred efficiently into systems under these conditions ACSPH076 Year 11 Linear Motion and Waves
Waves - A wave model explains a wide range of lightrelated phenomena including reflection, refraction, total internal reflection, dispersion, diffraction and interference; a transverse wave model is required to explain polarisation ACSPH099 Year 12 Gravity and electromagnetism
Gravity and motion - Projectile motion can be analysed quantitatively by treating the horizontal and vertical components of the motion independently ACSPH100 Year 12 Gravity and electromagnetism
Gravity and motion - When an object experiences a net force of constant magnitude perpendicular to its velocity, it will undergo uniform circular motion, including circular motion on a horizontal plane and around a banked track ACSPH067 Year 11 Linear Motion and Waves
Waves - Waves are periodic oscillations that transfer energy from one point to another ACSPH068 Year 11 Linear Motion and Waves
Waves - Longitudinal and transverse waves are distinguished by the relationship between the direction of oscillation relative to the direction of the wave velocity ACSPH070 Year 11 Linear Motion and Waves
Waves - Mechanical waves transfer energy through a medium; mechanical waves may oscillate the medium or oscillate the pressure within the medium ACSPH071 Year 11 Linear Motion and Waves
Waves - The mechanical wave model can be used to explain phenomena related to reflection and refraction ACSPH074 Year 11 Linear Motion and Waves
Waves - Light exhibits many wave properties; however, it cannot be modelled as a mechanical wave because it can travel through a vacuum ACSPH075 Year 11 Linear Motion and Waves
Waves - A ray model of light may be used to describe reflection, refraction and image formation from lenses and mirrors ACSPH077 Year 11 Linear Motion and Waves
Waves - The speed of light is finite and many orders of magnitude greater than the speed of mechanical waves (for example, sound and water waves); its intensity decreases in an inverse square relationship with distance from a point source ACSPH098 Year 12 Gravity and electromagnetism
Gravity and motion - The vector nature of the gravitational force can be used to analyse motion on inclined planes by considering the components of the gravitational force (that is, weight) parallel and perpendicular to the plane
185 results found for 'Motion'. Prev |1|2|3|4|5|6|7|8 | Next | View 100 per page
Low relevance matches: 33 other results may be of interest to you. Show low relevance matches
Curriculum resources related to 'Motion'
ACSSU005 Foundation Physical SciencesForces and Moving - The way objects move depends on a variety of factors including their size and shape ACSSU117 Year 7 Physical Sciences
Forces and Machines - Change to an object’s motion is caused by unbalanced forces, including Earth’s gravitational attraction, acting on the object ACSSU151 Year 8 Chemical Sciences
Matter and Particles - The properties of the different states of matter can be explained in terms of the motion and arrangement of particles ACSSU229 Year 10 Physical Sciences
Forces and Motion - The motion of objects can be described and predicted using the laws of physics ACSPH060 Year 11 Linear Motion and Waves
Linear motion and force - Uniformly accelerated motion is described in terms of relationships between measurable scalar and vector quantities, including displacement, speed, velocity and acceleration ACSPH061 Year 11 Linear Motion and Waves
Linear motion and force - Representations, including graphs and vectors, and/or equations of motion, can be used qualitatively and quantitatively to describe and predict linear motion ACSPH062 Year 11 Linear Motion and Waves
Linear motion and force - Vertical motion is analysed by assuming the acceleration due to gravity is constant near Earth’s surface ACSPH063 Year 11 Linear Motion and Waves
Linear motion and force - Newton’s Three Laws of Motion describe the relationship between the force or forces acting on an object, modelled as a point mass, and the motion of the object due to the application of the force or forces ACSPH064 Year 11 Linear Motion and Waves
Linear motion and force - Momentum is a property of moving objects; it is conserved in a closed system and may be transferred from one object to another when a force acts over a time interval ACSPH065 Year 11 Linear Motion and Waves
Linear motion and force - Energy is conserved in isolated systems and is transferred from one object to another when a force is applied over a distance; this causes work to be done and changes to kinetic and/or potential energy of objects ACSPH066 Year 11 Linear Motion and Waves
Linear motion and force - Collisions may be elastic and inelastic; kinetic energy is conserved in elastic collisions ACSPH069 Year 11 Linear Motion and Waves
Waves - Waves may be represented by time and displacement wave diagrams and described in terms of relationships between measurable quantities, including period, amplitude, wavelength, frequency and velocity ACSPH072 Year 11 Linear Motion and Waves
Waves - The superposition of waves in a medium may lead to the formation of standing waves and interference phenomena, including standing waves in pipes and on stretched strings ACSPH073 Year 11 Linear Motion and Waves
Waves - A mechanical system resonates when it is driven at one of its natural frequencies of oscillation; energy is transferred efficiently into systems under these conditions ACSPH076 Year 11 Linear Motion and Waves
Waves - A wave model explains a wide range of lightrelated phenomena including reflection, refraction, total internal reflection, dispersion, diffraction and interference; a transverse wave model is required to explain polarisation ACSPH099 Year 12 Gravity and electromagnetism
Gravity and motion - Projectile motion can be analysed quantitatively by treating the horizontal and vertical components of the motion independently ACSPH100 Year 12 Gravity and electromagnetism
Gravity and motion - When an object experiences a net force of constant magnitude perpendicular to its velocity, it will undergo uniform circular motion, including circular motion on a horizontal plane and around a banked track ACSPH067 Year 11 Linear Motion and Waves
Waves - Waves are periodic oscillations that transfer energy from one point to another ACSPH068 Year 11 Linear Motion and Waves
Waves - Longitudinal and transverse waves are distinguished by the relationship between the direction of oscillation relative to the direction of the wave velocity ACSPH070 Year 11 Linear Motion and Waves
Waves - Mechanical waves transfer energy through a medium; mechanical waves may oscillate the medium or oscillate the pressure within the medium ACSPH071 Year 11 Linear Motion and Waves
Waves - The mechanical wave model can be used to explain phenomena related to reflection and refraction ACSPH074 Year 11 Linear Motion and Waves
Waves - Light exhibits many wave properties; however, it cannot be modelled as a mechanical wave because it can travel through a vacuum ACSPH075 Year 11 Linear Motion and Waves
Waves - A ray model of light may be used to describe reflection, refraction and image formation from lenses and mirrors ACSPH077 Year 11 Linear Motion and Waves
Waves - The speed of light is finite and many orders of magnitude greater than the speed of mechanical waves (for example, sound and water waves); its intensity decreases in an inverse square relationship with distance from a point source ACSPH098 Year 12 Gravity and electromagnetism
Gravity and motion - The vector nature of the gravitational force can be used to analyse motion on inclined planes by considering the components of the gravitational force (that is, weight) parallel and perpendicular to the plane
Products related to 'Motion'
Vernier Go!Motion Data Logger with Logger Lite software
VERNIER GO!MOTION
Go!Motion is Vernier's motion detector that connects directly to a computer or Chromebook USB port eliminating the need for an additional data-collection interface, making it fast and easy to set up experiments and start collecting a wide range of real-t...
Order code: GO-MOT
Vernier Go!Motion Data Logger Teacher Pack of 8
VERNIER GO!MOTION DATA LOGGER Teacher Pack of 8.
Save money when you purchase the Vernier Go!Motion Teacher Pack which includes eight Go!Motion USB motion detectors.
Go!Motion is Vernier's motion detector that connects directly to a computer or Chromebook USB port elim...
Order code: GO-MOT-TP
Vernier Adjustable Two Foot Leveller
VERNIER ADJUSTABLE TWO FOOT LEVELLER
A replacement leveller to adjust the height of the Vernier track/optics bench.
Two are required to support one track.
The adjustable levelling feet slide onto the end of the track with the nut in the centre slot of the track unders...
Order code: AL-VDS
Vernier Go Direct Centripetal Force Apparatus
VERNIER GO DIRECT CENTRIPETAL FORCE APPARATUS
The Vernier Go Direct Centripetal Force Apparatus and Vernier Go Direct Force and Acceleration Sensor (not included) make an ideal combination to explore rotational dynamics.
When students use the Vernier Go Direct Centripe...
Order code: GDX-CFA
Vernier DTS Kit Without Track
VERNIER DTS KIT WITHOUT TRACK
Compatible with existing Vernier Combination Track/Optics Benches, the Vernier DTS Kit features two low friction, plastic carts, an ultra pulley and all of the necessary attachment accessories.
Vernier Dynamics Cart and Track System produc...
Order code: DTS-KIT
Vernier Go Direct Photogate
VERNIER GO DIRECT PHOTOGATE
The Vernier Go Direct Photogate is a double-gate sensor that includes two photogates built into the sensor arms to accurately measure velocity and acceleration. It connects via Bluetooth® wireless technology or via USB to your device.
With V...
Order code: GDX-VPG
Vernier Cart Guide Pack 10
VERNIER CART GUIDE
The Vernier Cart Guide is a cost-effective, easy-to-store accessory that facilitates various explorations by keeping any Vernier dynamics cart moving along a straight-line path. The Vernier Cart Guide also helps make it easy to take your dynamics experi...
Order code: CGUIDE-10
Vernier Dynamics Cart and Track System
VERNIER DYNAMICS CART AND TRACK SYSTEM
The Dynamics Cart and Track System provides students with the tools they need to explore kinematics, dynamics, momentum and energy. This versatile system can also be easily adapted to study optics, colour and diffraction.
The Vern...
Order code: DTS
Vernier Dynamics Track System Long
VERNIER DYNAMICS TRACK SYSTEM LONG
The Dynamics Cart and Track System provides students with the tools they need to explore kinematics, dynamics, momentum and energy. This versatile system can also be easily adapted to study optics, colour and diffraction.
The Vernier ...
Order code: DTS-LONG
Vernier Go Direct Sensor Cart Green
VERNIER GO DIRECT SENSOR CART GREEN
The Vernier Go Direct Sensor Cart features built-in, wireless sensors for one-dimensional dynamics and kinematics experiments. It directly connects wirelessly via Bluetooth® wireless technology to your platform.
With Vernier's Go Dir...
Order code: GDX-CART-G
Vernier Go Direct Sensor Cart Yellow
VERNIER GO DIRECT SENSOR CART YELLOW
The Vernier Go Direct Sensor Cart features built-in, wireless sensors for one-dimensional dynamics and kinematics experiments. It directly connects wirelessly via Bluetooth® wireless technology to your platform.
With Vernier's Go Di...
Order code: GDX-CART-Y
Vernier Go Direct Centripetal Force System
VERNIER GO DIRECT CENTRIPETAL FORCE SYSTEM
Vernier's Go Direct Centripetal Force Apparatus and Go Direct Force and Acceleration Sensor make an ideal combination to explore rotational dynamics.
Students can conduct a variety of rotational dynamics investigations with a si...
Order code: GDX-CFAF
Vernier Go Direct Charging Station
VERNIER GO DIRECT CHARGING STATION
The Vernier Go Direct™ Charging Station is the perfect solution for charging your Go Direct Sensors. Each charging station has sixteen charging ports - eight USB and eight wand-style sensor ports. LED lights on the Go Direct sensors wil...
Order code: GDX-CRG
Vernier Projectile Time of Flight Pad
VERNIER TIME OF FLIGHT PAD
Vernier's Time of Flight Pad is used with the VPL Vernier Projectile Launcher or the GDX-PL Vernier Go Direct Projectile Launcher to determine the launch speed of a projectile along with the time the projectile is in flight.
Precisely measuri...
Order code: TOF-VPL
Vernier Go Direct Time of Flight Pad Cable
VERNIER GO DIRECT TIME OF FLIGHT PAD CABLE
Use this 4m cable to connect a Vernier Time of Flight Pad to a Vernier Go Direct® Photogate for use in projectile motion experiments. When the cable is connected, students can precisely measure how long a projectile is in motion....
Order code: TOF-CB-GDX
Vernier DTS Eddy Current Brake
VERNIER DTS EDDY CURRENT BRAKE
The Vernier Eddy Current Brake attaches to the end of your Go Direct Sensor Cart, Standard Cart, Plunger Cart or Motion Encoder Cart to create an electromagnetic drag.
Eddy current brakes are used as a braking system for high speed trains...
Order code: DTS-ECB
Vernier Dynamics Cart Replacement Tabs
VERNIER DYNAMICS CART REPLACEMENT TABS
These replacement tabs can be used with any of the plastic dynamics carts from Vernier. The tabs are marked with an N on one side, identifying the pole for those tabs that contain magnets. The other side is blank with a smooth circle...
Order code: DTS-TABS
Vernier Fan Cart
VERNIER FAN CART
This large fan mounted on a light-weight cart offers students the ability to perform kinematics and dynamics experiments with constant acceleration, variable mass, variable thrust and variable thrust angle.
The fan has three speeds for studying the eff...
Order code: CART-F
Vernier Go Direct 300mAH Replacement Battery
VERNIER GO DIRECT 300mAH REPLACEMENT BATTERY
The Vernier Go Direct 300 mAh replacement battery is Vernier's standard rechargeable, lithium-polymer unit
to fit most Vernier Go Direct sensors.
All Vernier batteries have a one year warranty but are expected to perform ...
Order code: GDX-BAT-300
Vernier Go Direct 650mAH Replacement Battery
VERNIER GO DIRECT 650mAH REPLACEMENT BATTERY
The Vernier Go Direct 650 mAh replacement battery is a rechargeable, lithium-polymer unit with a greater capacity
than Vernier's standard GDX-BAT-300 battery.
All Vernier batteries have a one year warranty but are expecte...
Order code: GDX-BAT-650
Vernier Goniometer
VERNIER GONIOMETER
The Vernier Goniometer measures the angle of a joint such as the knee or elbow and can be used to analyze the range of motion of a limb during different types of physical activity.
• A set of elastic straps are used to secure the sensor to the subjec...
Order code: GNM-BTA
Vernier Photogate
VERNIER PHOTOGATE
The Vernier photogate is used for speed and acceleration measurements of objects passing through the gate. The object blocks an infrared beam as it passes. Motion data can be determined in software from the timing of beam blocking.
This general-purpos...
Order code: VPG-BTD
Vernier 3-Axis Accelerometer
VERNIER 3-AXIS ACCELEROMETER
Vernier's 3-Axis Accelerometer consists of three –5 to +5 g accelerometers mounted in one small block. Using the appropriate data collection hardware and software, students can graph any of these components or calculate the magnitude of the ne...
Order code: 3D-BTA
Vernier Go Direct Elementary Standard Package
VERNIER GO DIRECT ELEMENTARY STANDARD PACKAGE
Designed for use by a group of 2-4 students, the Vernier Go Direct Elementary Standard Package includes:
• GDX-MD Vernier Go Direct Motion Detector
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Order code: GDP-EL-DX
Vernier Go Direct Middle School Science Package
VERNIER GO DIRECT MIDDLE SCHOOL SCIENCE PACKAGE
Designed for use by a group of 2-4 students, the Vernier Go Direct Middle School Deluxe Package includes:
• GDX-MD Vernier Go Direct Motion Detector
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Order code: GDP-MS-DX
185 results found for 'Motion'. Prev |1|2|3|4|5|6|7|8 | Next | View 100 per page