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   [[/Électrostatique|🌐 Version en français : Électrostatique]]
   [[/Électrostatique|🌐 Version en français : Électrostatique]]
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   <p style="margin:0; font-weight:bold;">📘 Electrostatics</p>
    [[Electricity_and_Magnetism|⬅ Back to Electricity & Magnetism]]
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= Reference Textbook =


== General Resources ==
<div style="border:1px solid #28a745; padding:0.8em; background-color:#f0fdf4; margin:1em 0;">
<div style="border: 1px solid #28a745; padding: 0.8em; background-color: #f0fdf4; margin: 1em 0;">
   <p style="margin:0.2em 0;"><strong>📖 Reference Textbook:</strong><br>
   <p><strong>📖 Reference Textbook:</strong><br>
   [https://openstax.org/books/university-physics-volume-2/pages/5-introduction University Physics Volume 2: Chapter 5]</p>
   [https://openstax.org/books/university-physics-volume-2/pages/5-introduction University Physics Volume 2: Chapter 5 – Electrostatics]</p>
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----
= Theory =
 
== Charge, Conductors, and Insulators: Introduction to Electrostatics ==


= Theory =
== ⚡ Charge, Conductors, and Insulators ==
=== Electric Charge (q) ===
=== Electric Charge (q) ===
* '''Basic property''': Objects can have a positive or negative charge.
 
* '''Types''': Positive (more protons than electrons), Negative (more electrons than protons).
* '''Fundamental property''': Objects can have a positive or negative electric charge.
* '''Conservation''': Charge is neither created nor destroyed, only transferred.
* '''Types''': An object generally becomes positively charged when it loses electrons and negatively charged when it gains electrons.
* '''Quantized''': <math> Q = n \cdot e </math>, with <math> e = 1.6 \times 10^{-19} \,\text{C} </math>.
* '''Conservation''': Electric charge is neither created nor destroyed; it is only transferred.
* '''Quantization''': <math>Q = n \cdot e</math>. Electric charge exists in multiples of the '''elementary charge''' <math>e = 1.6 \times 10^{-19} \, \text{C}</math>.


=== Conductors ===
=== Conductors ===
* Charges move freely.
 
* Examples: copper, silver, salt solutions.
* '''Definition''': Materials in which electric charges, such as electrons or ions, can move freely.
* '''Examples''': Metals such as copper and silver; salt solutions.


=== Insulators ===
=== Insulators ===
* Charges can’t move freely. 
* Examples: glass, rubber, plastic.


<youtube>-Oq16ndKja8</youtube>
* '''Definition''': Materials in which electric charges cannot move freely.
* '''Examples''': Glass, rubber, and plastic.
 
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
'''▶ Video: Charge, Conductors, and Insulators'''
 
[https://www.youtube.com/watch?v=-Oq16ndKja8 Watch the video on YouTube]
</div>
 
<br class="clear"/>
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----
== Coulomb's Law without Vectors ==


== ⚖️ Coulomb’s Law (Scalar Form) ==
The magnitude of the electrostatic force <math>F_\mathrm{ts}</math> between two point charges <math>q_\mathrm{s}</math> (source charge) and <math>q_\mathrm{t}</math> (test charge), separated by a distance <math>r</math>, is given by:
The magnitude of the electrostatic force <math> F_\mathrm{ts} </math> between two point charges <math> q_\mathrm{s} </math> (source charge) and <math> q_\mathrm{t} </math> (test charge), separated by a distance <math> r </math>, is:
<math> F_\mathrm{ts} = k \cdot \frac{|q_\mathrm{s}| \cdot |q_\mathrm{t}|}{r^2} </math>, 
with <math> k \approx 8.99 \times 10^9 \,\mathrm{N \cdot m^2 / C^2} </math>.


<youtube>8grMx_6xl18</youtube>
<math>F_\mathrm{ts} = k \cdot \frac{|q_\mathrm{s}| \cdot |q_\mathrm{t}|}{r^2}</math>


----
where <math>k \approx 8.99 \times 10^9~\mathrm{N \cdot m^2/C^2}</math> is Coulomb's constant.


== ➡️ Coulomb’s Law (Vector Form) ==
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
<math> \vec{F_{ts}} = k_e \frac{q_s q_t}{r^2} \hat{r} </math>
'''▶ Video: Coulomb's Law without Vectors'''


Where:
[https://www.youtube.com/watch?v=8grMx_6xl18 Watch the video on YouTube]
* <math> \vec{F_{ts}} </math> = force on test charge 
</div>
* <math> k_e \approx 8.99 \times 10^9 \, \mathrm{N\,m^2/C^2} </math> 
* <math> q_s, q_t </math> = charges 
* <math> r </math> = distance 
* <math> \hat{r} </math> = unit vector from source to test charge


<youtube>MwzwnhxoQh4</youtube>
<br class="clear"/>
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=== 📝 Example Calculations ===
== Coulomb's Law in Vector Form ==
<youtube>7oYnrb89gmk</youtube>
 
<youtube>VmPTG-jRaF0</youtube>
The electrostatic force vector <math>\vec{F}_\mathrm{ts}</math> between two point charges <math>q_\mathrm{s}</math> (source charge) and <math>q_\mathrm{t}</math> (test charge), separated by a distance <math>r</math>, is given by:
 
<math>\vec{F}_\mathrm{ts} = k \frac{q_\mathrm{s}q_\mathrm{t}}{r^2}\hat{r}</math>
 
where:
 
* <math>\vec{F}_\mathrm{ts}</math>: force exerted on the test charge by the source charge;
* <math>k</math>: Coulomb's constant, approximately <math>8.99 \times 10^9 \, \mathrm{N \cdot m^2/C^2}</math>;
* <math>q_\mathrm{s}</math>: source charge, which exerts the force;
* <math>q_\mathrm{t}</math>: test charge, on which the force is exerted;
* <math>r</math>: distance between the charges;
* <math>\hat{r}</math>: unit vector pointing from the source charge toward the test charge.
 
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
'''▶ Video: Coulomb's Law in Vector Form'''
 
[https://www.youtube.com/watch?v=MwzwnhxoQh4 Watch the video on YouTube]
</div>
 
<br class="clear"/>
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----
=== Calculation Examples: Coulomb's Law in Vector Form ===
 
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
'''▶ Calculation Example 1'''


== ✋ Triboelectric Effect ==
[https://www.youtube.com/watch?v=7oYnrb89gmk Watch the first example on YouTube]
When two materials rub and separate, electrons transfer → one becomes negative, the other positive. 
</div>


* Higher in series (glass, hair) → lose electrons → positive 
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
* Lower (rubber, Teflon) → gain electrons → negative 
'''▶ Calculation Example 2'''


Daily life examples: balloon on hair; static cling in clothes.
[https://www.youtube.com/watch?v=VmPTG-jRaF0 Watch the second example on YouTube]
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<youtube>Fph08eKTVZM</youtube>
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----
== Triboelectric Effect and Triboelectric Series ==
 
The '''triboelectric effect''' is a phenomenon in which certain materials become electrically charged after coming into contact and then being separated. Friction often enhances this effect by repeatedly bringing the materials into contact and separating them. Electrons are transferred from one material to the other. Consequently, one material gains electrons and becomes negatively charged, while the other loses electrons and becomes positively charged.
 
Different materials have different tendencies to gain or lose electrons. These tendencies are organized into the '''triboelectric series'''. Materials higher in the series, such as glass or hair, tend to lose electrons and become positively charged. Materials lower in the series, such as rubber or Teflon, tend to gain electrons and become negatively charged.
 
The triboelectric effect is commonly observed in everyday life, for example:
 
* when a balloon rubbed against hair makes the hair stand up;
* when synthetic clothing produces static cling.
 
<div style="border-left:5px solid #ef4444; padding:0.8em 1em; background-color:#fff7f7; margin:1em 0;">
'''▶ Video: The Triboelectric Effect'''
 
[https://www.youtube.com/watch?v=Fph08eKTVZM Watch the video on YouTube]
</div>
 
<br class="clear"/>


= Demonstrations =
= Demonstrations =
=== 💧 Bending Water ===
<youtube>u-SIJSSBsjo</youtube>


=== 🎈 Balloon on a Wall ===
== Bending a Stream of Water ==
<youtube>bjU-Ll6U1ig</youtube>
 
<div style="border-left:5px solid #f97316; padding:0.8em 1em; background-color:#fff7ed; margin:1em 0;">
'''▶ Demonstration: Bending a Stream of Water'''
 
[https://www.youtube.com/watch?v=u-SIJSSBsjo Watch the demonstration on YouTube]
</div>
 
<br class="clear"/>
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----
== Sticking a Balloon to a Wall ==


= ⚙️ Simulations =
<div style="border-left:5px solid #f97316; padding:0.8em 1em; background-color:#fff7ed; margin:1em 0;">
* [http://phet.colorado.edu/en/simulation/travoltage PhET: Be careful, John Travolta!] 
'''▶ Demonstration: Sticking a Balloon to a Wall'''
* [http://phet.colorado.edu/en/simulation/balloons PhET: Charge up a balloon] 
* [http://www.thephysicsteacher.ie/lcphysics19staticelectricity.html The Physics Teacher: Static Electricity resources] 
* [http://regentsprep.org/regents/physics/phys03/alightnin/ Lightning applet] 


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[https://www.youtube.com/watch?v=bjU-Ll6U1ig Watch the demonstration on YouTube]
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    [[The Electric Field|Next: The Electric Field ➡]]
= Electrostatics Simulations =
  </span>
 
Explore electric charges with these simulations:
 
* [https://phet.colorado.edu/en/simulations/john-travoltage Be careful, John Travolta!]
* [https://phet.colorado.edu/en/simulations/balloons-and-static-electricity Charge a balloon]
 
Additional resources:
 
* [http://www.thephysicsteacher.ie/lcphysics19staticelectricity.html Static electricity resources]
* [http://regentsprep.org/regents/physics/phys03/alightnin/ Lightning animation]
 
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Latest revision as of 10:46, 29 July 2026

 ⬅ Back to Electricity and Magnetism


 🌐 Version en français : Électrostatique

📘 Electrostatics

Reference Textbook

📖 Reference Textbook:
University Physics Volume 2: Chapter 5

Theory

Charge, Conductors, and Insulators: Introduction to Electrostatics

Electric Charge (q)

  • Fundamental property: Objects can have a positive or negative electric charge.
  • Types: An object generally becomes positively charged when it loses electrons and negatively charged when it gains electrons.
  • Conservation: Electric charge is neither created nor destroyed; it is only transferred.
  • Quantization: Q=ne. Electric charge exists in multiples of the elementary charge e=1.6×1019C.

Conductors

  • Definition: Materials in which electric charges, such as electrons or ions, can move freely.
  • Examples: Metals such as copper and silver; salt solutions.

Insulators

  • Definition: Materials in which electric charges cannot move freely.
  • Examples: Glass, rubber, and plastic.

▶ Video: Charge, Conductors, and Insulators

Watch the video on YouTube


Coulomb's Law without Vectors

The magnitude of the electrostatic force Fts between two point charges qs (source charge) and qt (test charge), separated by a distance r, is given by:

Fts=k|qs||qt|r2

where k8.99×109Nm2/C2 is Coulomb's constant.

▶ Video: Coulomb's Law without Vectors

Watch the video on YouTube


Coulomb's Law in Vector Form

The electrostatic force vector Fts between two point charges qs (source charge) and qt (test charge), separated by a distance r, is given by:

Fts=kqsqtr2r^

where:

  • Fts: force exerted on the test charge by the source charge;
  • k: Coulomb's constant, approximately 8.99×109Nm2/C2;
  • qs: source charge, which exerts the force;
  • qt: test charge, on which the force is exerted;
  • r: distance between the charges;
  • r^: unit vector pointing from the source charge toward the test charge.

▶ Video: Coulomb's Law in Vector Form

Watch the video on YouTube


Calculation Examples: Coulomb's Law in Vector Form

▶ Calculation Example 1

Watch the first example on YouTube

▶ Calculation Example 2

Watch the second example on YouTube


Triboelectric Effect and Triboelectric Series

The triboelectric effect is a phenomenon in which certain materials become electrically charged after coming into contact and then being separated. Friction often enhances this effect by repeatedly bringing the materials into contact and separating them. Electrons are transferred from one material to the other. Consequently, one material gains electrons and becomes negatively charged, while the other loses electrons and becomes positively charged.

Different materials have different tendencies to gain or lose electrons. These tendencies are organized into the triboelectric series. Materials higher in the series, such as glass or hair, tend to lose electrons and become positively charged. Materials lower in the series, such as rubber or Teflon, tend to gain electrons and become negatively charged.

The triboelectric effect is commonly observed in everyday life, for example:

  • when a balloon rubbed against hair makes the hair stand up;
  • when synthetic clothing produces static cling.

▶ Video: The Triboelectric Effect

Watch the video on YouTube


Demonstrations

Bending a Stream of Water

▶ Demonstration: Bending a Stream of Water

Watch the demonstration on YouTube


Sticking a Balloon to a Wall

▶ Demonstration: Sticking a Balloon to a Wall

Watch the demonstration on YouTube


Electrostatics Simulations

Explore electric charges with these simulations:

Additional resources:


 ⬅ Back to Electricity and Magnetism
 Next: The Electric Field ➡