High School Physics: Orbital Motion Slide Deck - Grades 9-12, NGSS Aligned
Grade Levels: 9th - 12th
Subjects: Science, Physics
Standards: NGSS HS-PS2-4
Formats Included: Zip
Introduce your high school students to the principles of orbital mechanics with this NGSS-aligned Orbital Motion Slide Deck for Grades 9-12. This visually engaging and comprehensive presentation is designed to help students understand the concepts of centripetal force, orbital velocity, and the gravitational forces that govern planetary orbits.
Key Features:
- Comprehensive Content: Covers key concepts such as centripetal force, the relationship between gravitational force and centripetal force, and the calculation of orbital velocity.
- Engaging Examples: Includes practical examples and scenarios to illustrate the concepts of orbital motion and how they apply to real-world celestial mechanics.
- Visual Aids: Features diagrams and visual prompts to help students grasp complex concepts and solve problems effectively.
- Interactive Elements: Questions and discussion prompts are included to stimulate classroom interaction and reinforce learning.
- Real-World Applications: Discusses how gravitational force keeps objects in orbit and the factors that affect orbital velocity.
Topics Covered:
- Centripetal Force in Circular Motion
- Gravitational Force as Centripetal Force
- Calculating Orbital Velocity
- Real-World Applications of Orbital Mechanic
Additional Features:
- Editable PowerPoint Format: Easily customizable to fit your teaching style and classroom needs.
- Aligned with NGSS Standards: Ensures that the content meets Next Generation Science Standards for high school physics.
Use this slide deck to provide a thorough introduction to orbital mechanics, helping students build a solid foundation in understanding the forces and principles that govern the motion of celestial bodies. Perfect for classroom use, this resource is an invaluable addition to your high school physics curriculum.
Grade Levels: 9th - 12th
Subjects: Science, Physics
Standards: NGSS HS-PS2-4
Formats Included: Zip
Introduce your high school students to the principles of orbital mechanics with this NGSS-aligned Orbital Motion Slide Deck for Grades 9-12. This visually engaging and comprehensive presentation is designed to help students understand the concepts of centripetal force, orbital velocity, and the gravitational forces that govern planetary orbits.
Key Features:
- Comprehensive Content: Covers key concepts such as centripetal force, the relationship between gravitational force and centripetal force, and the calculation of orbital velocity.
- Engaging Examples: Includes practical examples and scenarios to illustrate the concepts of orbital motion and how they apply to real-world celestial mechanics.
- Visual Aids: Features diagrams and visual prompts to help students grasp complex concepts and solve problems effectively.
- Interactive Elements: Questions and discussion prompts are included to stimulate classroom interaction and reinforce learning.
- Real-World Applications: Discusses how gravitational force keeps objects in orbit and the factors that affect orbital velocity.
Topics Covered:
- Centripetal Force in Circular Motion
- Gravitational Force as Centripetal Force
- Calculating Orbital Velocity
- Real-World Applications of Orbital Mechanic
Additional Features:
- Editable PowerPoint Format: Easily customizable to fit your teaching style and classroom needs.
- Aligned with NGSS Standards: Ensures that the content meets Next Generation Science Standards for high school physics.
Use this slide deck to provide a thorough introduction to orbital mechanics, helping students build a solid foundation in understanding the forces and principles that govern the motion of celestial bodies. Perfect for classroom use, this resource is an invaluable addition to your high school physics curriculum.
NGSS HS-PS2-2
Use mathematical representations to support the claim that the total momentum of a system of objects is conserved when there is no net force on the system. Emphasis is on the quantitative conservation of momentum in interactions and the qualitative meaning of this principle. Assessment is limited to systems of two macroscopic bodies moving in one dimension.
NGSS HS-PS3-1
Create a computational model to calculate the change in the energy of one component in a system when the change in energy of the other component(s) and energy flows in and out of the system are known. Emphasis is on explaining the meaning of mathematical expressions used in the model. Assessment is limited to basic algebraic expressions or computations; to systems of two or three components; and to thermal energy, kinetic energy, and/or the energies in gravitational, magnetic, or electric fields.
NGSS HS-PS2-1
Analyze data to support the claim that Newton’s second law of motion describes the mathematical relationship among the net force on a macroscopic object, its mass, and its acceleration. Assessment is limited to one-dimensional motion and to macroscopic objects moving at non-relativistic speeds. Examples of data could include tables or graphs of position or velocity as a function of time for objects subject to a net unbalanced force, such as a falling object, an object sliding down a ramp, or a moving object being pulled by a constant force.
NGSS HS-PS4-1
Use mathematical representations to support a claim regarding relationships among the frequency, wavelength, and speed of waves traveling in various media. Examples of data could include electromagnetic radiation traveling in a vacuum and glass, sound waves traveling through air and water, and seismic waves traveling through the earth. Assessment is limited to algebraic relationships and describing those relationships qualitatively.
NGSS HS-PS2-3
Apply scientific and engineering ideas to design, evaluate, and refine a device that minimizes the force on a macroscopic object during a collision. Examples of evaluation and refinement could include determining the success of the device at protecting an object from damage and modifying the design to improve it. Examples of a device could include a football helmet or a parachute. Assessment is limited to qualitative evaluations and/or algebraic manipulations.
NGSS HS-PS2-2
Use mathematical representations to support the claim that the total momentum of a system of objects is conserved when there is no net force on the system. Emphasis is on the quantitative conservation of momentum in interactions and the qualitative meaning of this principle. Assessment is limited to systems of two macroscopic bodies moving in one dimension.
NGSS HS-PS3-1
Create a computational model to calculate the change in the energy of one component in a system when the change in energy of the other component(s) and energy flows in and out of the system are known. Emphasis is on explaining the meaning of mathematical expressions used in the model. Assessment is limited to basic algebraic expressions or computations; to systems of two or three components; and to thermal energy, kinetic energy, and/or the energies in gravitational, magnetic, or electric fields.
NGSS HS-PS2-1
Analyze data to support the claim that Newton’s second law of motion describes the mathematical relationship among the net force on a macroscopic object, its mass, and its acceleration. Assessment is limited to one-dimensional motion and to macroscopic objects moving at non-relativistic speeds. Examples of data could include tables or graphs of position or velocity as a function of time for objects subject to a net unbalanced force, such as a falling object, an object sliding down a ramp, or a moving object being pulled by a constant force.
NGSS HS-PS4-1
Use mathematical representations to support a claim regarding relationships among the frequency, wavelength, and speed of waves traveling in various media. Examples of data could include electromagnetic radiation traveling in a vacuum and glass, sound waves traveling through air and water, and seismic waves traveling through the earth. Assessment is limited to algebraic relationships and describing those relationships qualitatively.
NGSS HS-PS2-3
Apply scientific and engineering ideas to design, evaluate, and refine a device that minimizes the force on a macroscopic object during a collision. Examples of evaluation and refinement could include determining the success of the device at protecting an object from damage and modifying the design to improve it. Examples of a device could include a football helmet or a parachute. Assessment is limited to qualitative evaluations and/or algebraic manipulations.
High School Physics: Orbital Motion Slide Deck - Grades 9-12, NGSS Aligned
Grade Levels: 9th - 12th
Subjects: Science, Physics
Standards: NGSS HS-PS2-4
Formats Included: Zip
Introduce your high school students to the principles of orbital mechanics with this NGSS-aligned Orbital Motion Slide Deck for Grades 9-12. This visually engaging and comprehensive presentation is designed to help students understand the concepts of centripetal force, orbital velocity, and the gravitational forces that govern planetary orbits.
Key Features:
- Comprehensive Content: Covers key concepts such as centripetal force, the relationship between gravitational force and centripetal force, and the calculation of orbital velocity.
- Engaging Examples: Includes practical examples and scenarios to illustrate the concepts of orbital motion and how they apply to real-world celestial mechanics.
- Visual Aids: Features diagrams and visual prompts to help students grasp complex concepts and solve problems effectively.
- Interactive Elements: Questions and discussion prompts are included to stimulate classroom interaction and reinforce learning.
- Real-World Applications: Discusses how gravitational force keeps objects in orbit and the factors that affect orbital velocity.
Topics Covered:
- Centripetal Force in Circular Motion
- Gravitational Force as Centripetal Force
- Calculating Orbital Velocity
- Real-World Applications of Orbital Mechanic
Additional Features:
- Editable PowerPoint Format: Easily customizable to fit your teaching style and classroom needs.
- Aligned with NGSS Standards: Ensures that the content meets Next Generation Science Standards for high school physics.
Use this slide deck to provide a thorough introduction to orbital mechanics, helping students build a solid foundation in understanding the forces and principles that govern the motion of celestial bodies. Perfect for classroom use, this resource is an invaluable addition to your high school physics curriculum.
Grade Levels: 9th - 12th
Subjects: Science, Physics
Standards: NGSS HS-PS2-4
Formats Included: Zip
Introduce your high school students to the principles of orbital mechanics with this NGSS-aligned Orbital Motion Slide Deck for Grades 9-12. This visually engaging and comprehensive presentation is designed to help students understand the concepts of centripetal force, orbital velocity, and the gravitational forces that govern planetary orbits.
Key Features:
- Comprehensive Content: Covers key concepts such as centripetal force, the relationship between gravitational force and centripetal force, and the calculation of orbital velocity.
- Engaging Examples: Includes practical examples and scenarios to illustrate the concepts of orbital motion and how they apply to real-world celestial mechanics.
- Visual Aids: Features diagrams and visual prompts to help students grasp complex concepts and solve problems effectively.
- Interactive Elements: Questions and discussion prompts are included to stimulate classroom interaction and reinforce learning.
- Real-World Applications: Discusses how gravitational force keeps objects in orbit and the factors that affect orbital velocity.
Topics Covered:
- Centripetal Force in Circular Motion
- Gravitational Force as Centripetal Force
- Calculating Orbital Velocity
- Real-World Applications of Orbital Mechanic
Additional Features:
- Editable PowerPoint Format: Easily customizable to fit your teaching style and classroom needs.
- Aligned with NGSS Standards: Ensures that the content meets Next Generation Science Standards for high school physics.
Use this slide deck to provide a thorough introduction to orbital mechanics, helping students build a solid foundation in understanding the forces and principles that govern the motion of celestial bodies. Perfect for classroom use, this resource is an invaluable addition to your high school physics curriculum.
NGSS HS-PS2-2
Use mathematical representations to support the claim that the total momentum of a system of objects is conserved when there is no net force on the system. Emphasis is on the quantitative conservation of momentum in interactions and the qualitative meaning of this principle. Assessment is limited to systems of two macroscopic bodies moving in one dimension.
NGSS HS-PS3-1
Create a computational model to calculate the change in the energy of one component in a system when the change in energy of the other component(s) and energy flows in and out of the system are known. Emphasis is on explaining the meaning of mathematical expressions used in the model. Assessment is limited to basic algebraic expressions or computations; to systems of two or three components; and to thermal energy, kinetic energy, and/or the energies in gravitational, magnetic, or electric fields.
NGSS HS-PS2-1
Analyze data to support the claim that Newton’s second law of motion describes the mathematical relationship among the net force on a macroscopic object, its mass, and its acceleration. Assessment is limited to one-dimensional motion and to macroscopic objects moving at non-relativistic speeds. Examples of data could include tables or graphs of position or velocity as a function of time for objects subject to a net unbalanced force, such as a falling object, an object sliding down a ramp, or a moving object being pulled by a constant force.
NGSS HS-PS4-1
Use mathematical representations to support a claim regarding relationships among the frequency, wavelength, and speed of waves traveling in various media. Examples of data could include electromagnetic radiation traveling in a vacuum and glass, sound waves traveling through air and water, and seismic waves traveling through the earth. Assessment is limited to algebraic relationships and describing those relationships qualitatively.
NGSS HS-PS2-3
Apply scientific and engineering ideas to design, evaluate, and refine a device that minimizes the force on a macroscopic object during a collision. Examples of evaluation and refinement could include determining the success of the device at protecting an object from damage and modifying the design to improve it. Examples of a device could include a football helmet or a parachute. Assessment is limited to qualitative evaluations and/or algebraic manipulations.
NGSS HS-PS2-2
Use mathematical representations to support the claim that the total momentum of a system of objects is conserved when there is no net force on the system. Emphasis is on the quantitative conservation of momentum in interactions and the qualitative meaning of this principle. Assessment is limited to systems of two macroscopic bodies moving in one dimension.
NGSS HS-PS3-1
Create a computational model to calculate the change in the energy of one component in a system when the change in energy of the other component(s) and energy flows in and out of the system are known. Emphasis is on explaining the meaning of mathematical expressions used in the model. Assessment is limited to basic algebraic expressions or computations; to systems of two or three components; and to thermal energy, kinetic energy, and/or the energies in gravitational, magnetic, or electric fields.
NGSS HS-PS2-1
Analyze data to support the claim that Newton’s second law of motion describes the mathematical relationship among the net force on a macroscopic object, its mass, and its acceleration. Assessment is limited to one-dimensional motion and to macroscopic objects moving at non-relativistic speeds. Examples of data could include tables or graphs of position or velocity as a function of time for objects subject to a net unbalanced force, such as a falling object, an object sliding down a ramp, or a moving object being pulled by a constant force.
NGSS HS-PS4-1
Use mathematical representations to support a claim regarding relationships among the frequency, wavelength, and speed of waves traveling in various media. Examples of data could include electromagnetic radiation traveling in a vacuum and glass, sound waves traveling through air and water, and seismic waves traveling through the earth. Assessment is limited to algebraic relationships and describing those relationships qualitatively.
NGSS HS-PS2-3
Apply scientific and engineering ideas to design, evaluate, and refine a device that minimizes the force on a macroscopic object during a collision. Examples of evaluation and refinement could include determining the success of the device at protecting an object from damage and modifying the design to improve it. Examples of a device could include a football helmet or a parachute. Assessment is limited to qualitative evaluations and/or algebraic manipulations.