Electric Charges & Current

Slides:



Advertisements
Similar presentations
Electricity Chapter 13.
Advertisements

What is an electric charge?
Chapter 6 Electricity.
Electricity. Let’s Review… Atoms have 3 subatomic particles Protons = positive Electrons = negative Neutrons = neutral Neutral Atom “Normal” state # Protons.
Electricity Physical Science.
Electricity. Charges Atoms contain particles called protons, neutrons, and electrons. Protons (+) Electrons (-) Neutrons (0)
Electricity. 2 Electric Charges: Proton = Positive charge Electron = Negative Charge The amount of positive charge on a proton equals the amount of negative.
Electricity and Magnetism. Flashlight Why do the batteries have to be facing the same way in order for the flashlight to work?
Electricity and Magnetism Chapter 7 Overview. Electricity Charge of proton Positive Charge of proton Positive Charge of electron Negative Charge of electron.
Electric Charges and Current. Types of Electric Charge Protons w/ ‘+’ charge “stuck” in the nucleus Electrons w/ ‘-’ charge freely moving around the nucleus.
__________.
7.
Electricity Chapter 20.
Electric Charge and Static Electricity
Electricity.
Electric Charge and Static Electricity
Matter is made up of small particles called atoms. Atoms are made up of smaller, sub-atomic particles called protons, neutrons, and electrons. Sub-atomic.
The world is filled with electrical charges:
Ch 20 Electricity.
Section 20.1 Electric Charge and Static Electricity p. 600
Electric Charges & Current Chapter 20. Types of electric charge Protons w/ ‘+’ charge “stuck” in the nucleus Protons w/ ‘+’ charge “stuck” in the nucleus.
Electric charge Electric charge is a property that allows a charged object to exert a force (electric force) on another charged object without touching.
Chapter 20 Electricity. Section 20-1 Electric Charge and Static Electricity: –An electric charge exerts a force through the electric field that surrounds.
Electric Charges & Current Chapter 7. Types of electric charge Protons w/ ‘+’ charge “stuck” in the nucleus Protons w/ ‘+’ charge “stuck” in the nucleus.
Chapter 16.  Smallest particles of matter are called atoms  Electrons  Protons  Neutrons.
Electricity.
GZ Science Resources NCEA Physics 1.1 Electricity Investigation.
Chapter 20: Electricity Jennie Borders.
Electric Charge Electric Charge & Current Current Electric Charge Current Chapter 20.
Electric Charges & Current. Types of electric charge _______________ w/ ‘+’ charge “stuck” in the nucleus _______________ w/ ‘+’ charge “stuck” in the.
Explain briefly where electricity comes from. S-66 Students will investigate the properties of electricity and magnetism?
Electric Charges and Currents. Atoms and Electricity All matter is made up of atoms All matter is made up of atoms Parts of the atom Parts of the atom.
Electricity on the Move. Current Electricity Unlike static electricity, which does not move except when discharged, current electricity is a continuous.
Electricity and Magnetism
Electricity and Magnetism Chapter 2: Electricity Section 1: Electric Charge and Static Electricity.
a path along which electrons flow must have no breaks in the path to work 2 types: –closed (no breaks) –open (break, causes the device to shut off - switch)
Negative charges in an atom are called ___________. electrons.
REVIEW ELECTRICITY AND MAGNETISM. REVIEW 1.Know what subatomic particles have charge.
Exam Review Electricity. Electric Charges An electric charge is a negative or a positive amount of electricity that builds up in an object. Electrons.
REVIEW of Static electricity Electricity A. Electric Charge 1. Static electricity is the accumulation of excess electric charges on an object. a. More.
Electricity and Magnetism. Atom Review Electrons have a negative charge (-) Protons have a positive charge (+)
DO NOW:  Using notepaper; write down the following: 1.The three parts to an atom? 2.The charge of each atomic part? 3.Where is each part located?
Electricity and Magnetism
REVIEW Which part of the atom stores negative charges? ELECTRONS.
1.4 The motor generator Sandia national lab - fusion device that makes electrons arc across the room.
Warm Up: What is this picture an example of? How does it work? What would happen if you placed a magnet inside the coils?
Static Charge and the Van de Graaf Generator. Static Charge Latin word “Stasis” which means “Stays” Latin word “Stasis” which means “Stays” Objects are.
Electric Charge and Static Electricity
Electricity and Magnetism
Electricity.
Physics Unit 5 - Electricity
Electricity Chapter 20.
Electricity.
Electric Charges & Current
Electricity Chapter 17.
ELECTRICITY AND MAGNETISM
Electric Charges & Current
Chapter 18 Electricity.
ELECTRICITY.
Understanding Electricity and Magnetism and their relationship
Electricity.
Chapter 18 Electricity.
6.1 Electric Charge and Static Electricity
Electric Charges & Current
Electric Charges & Current
Electricity.
Electric Charge Electric Charge Rules:
Electric Charges & Current
Electricity & Magnetism
Electricity.
Presentation transcript:

Electric Charges & Current Chapter 12

Types of electric charge Protons w/ ‘+’ charge “stuck” in the nucleus Electrons w/ ‘-’ charge freely moving around the nucleus in orbits

Conductors Allow the easy flow of electricity loosely bound electrons that are free to move from atom to atom metals like aluminum, gold, copper and silver

Insulators Insulators – resists the flow of electrons hold more tightly to their valence electrons: plastic, rubber, glass

Interactions between charges same as in magnetism Unlike magnetism were on a magnet there is always a + on one end and a – on the other end of the magnet electrical charges can exist alone Like charge repel Opposite charges attract

Electric Fields Exert a force through the force field in all directions from the charged particle When a charged particle enters the force field of another particle it is either attracted or repelled The diagram represents stronger force as the lines get closer & closer together

Static Charge Latin word “Stasis” which means “Stays” Objects are typically “Neutral” w/ the same # of protons and electrons They can become “charged” by gaining or losing electrons – NOT PROTONS! – They stay in the nucleus! The buildup of these charges is “Static Electricity” In Static Electricity the charges build up and STAY; they don’t flow as they do in electric currents

Transferring Static Charge Friction – transferred from rubbing i.e. get shocked after walking on the carpet Conduction – transferred by direct contact w/ another object – hair standing on end w/ Van de Graff machine Induction – the force field of a highly negatively charged object pushes the electrons away from nearby objects causing them to become + charged, they then are attracted to each other. i.e. statically charged balloon attracts small pieces of torn up paper

Static Discharge Objects don’t hold a static charge forever – objects tend toward equilibrium – they “want” to be neutral When electrons move toward this equilibrium – static discharge occurs Humidity – water (a polar molecule) vapor in the air pulls electrons off negatively charged objects, preventing static charges to build up Sparks & Lightning - objects reaching static equilibrium

Circuit Measurements Electric Current - Flow of electrons through a material Electrical Potential – Similar to potential energy (lifting something higher against the force of gravity gives it greater potential to do work, increasing its potential energy.) When given the opportunity, objects will move from higher potential energy to an area of lower potential energy Electrical potential is related to their electrical fields and not to height – as electrons build up on one side they “want” to flow to an area w/ less potential

Voltage Voltage – causes current to flow through an electrical circuit Volt – unit of measure to measure this potential A Voltage Source (battery or generator) is required to maintain the electrical potential in a circuit.

Electrical Current Water flowing thru a pipe depends on more than the angle of the pipe. It also depends on the length of the pipe, diameter of the pipe and if the pipe is clogged or open. Electrical Current is measured in Amperes Amount of Electrical Current ( amps) depends on more than just Voltage, it depends on the Resistance found in the circuit.

Electrical Resistance the opposition to the flow of electricity – measured in Ohms – symbol is the Greek letter Omega - Water flowing thru a pipe depends on more than the angle of the pipe. It also depends on the length of the pipe, diameter of the pipe and if the pipe is clogged or open. Electricity will take the path of least resistance The greater the resistance, the less current there is for a given voltage. a. Longer wires have greater resistance than short wires b. Thin wires have more resistance than thick wire c. High conductors have less resistance than insulators

Series Circuits Series Circuits – provides only one path for the electrons to follow 1. A break in the circuit stops the flow of electricity to all other parts of the circuit 2. With multiple light bulbs (more resistance) the current reduces & the dimmer the lights become 3. Ammeters should be wired in series

Parallel Circuits Parallel circuits – the different parts of the circuit are on separate branches A break (burn out light bulb) in the circuit doesn’t stop the flow to the remaining devices Multiple light bulbs will remain the same brightness since the resistance is not decreasing as it does in a series circuit. Each pathway can be separately switched off w/out affecting the others Household circuits – Wired in parallel, with a standard of 120 volts Voltmeters are wired in parallel

Parallel Circuits The more paths the LESS the resistance Water example again: added pipes coming from a large tank will allow more water to flow out that a single pipe. Therefore as resistance degreases, current increases; they are inversely proportional

Schematic Diagrams All circuits need at least the following Power supply, wire, resistors, other items include switches, connectors, meters, etc. There is a set of standard symbols used to represent these items in a diagram of the circuit

That’s all for Chapter 12