• Latest
  • Trending
  • All
  • Capacitors
  • Resistors
  • Inductors
  • Filters
  • Fuses
  • Non-linear Passives
  • Applications
  • Integrated Passives
  • Oscillators
  • Passive Sensors
  • New Technologies
  • Aerospace & Defence
  • Automotive
  • Industrial
  • Market & Supply Chain
  • Medical
  • RF & Microwave
  • Telecommunication

Capacitance and its Calculation, Dielectric, Dipoles and Dielectric Absorption

17.1.2023

Practical LLC Transformer Design Methodology

31.3.2023

Practical Measurement of Crystal Circuits

31.3.2023

March 2023 ECIA NA Electronic Components Sales Misses Expectations

31.3.2023

4th PCNS Call for Abstracts Extended !

30.3.2023

Würth Elektronik Presents New Series of DC-Link Film Capacitors

30.3.2023

Vishay Increases Anti-Surge Thick Film 0805 Power Resistor Performance with 0.5 W Power Rating

29.3.2023
  • Home
  • Privacy Policy
  • EPCI Membership & Advertisement
  • About
No Result
View All Result
NEWSLETTER
Passive Components Blog
  • Home
  • NewsFilter
    • All
    • Aerospace & Defence
    • Antenna
    • Applications
    • Automotive
    • Capacitors
    • Circuit Protection Devices
    • Filters
    • Fuses
    • Inductors
    • Industrial
    • Integrated Passives
    • Market & Supply Chain
    • Medical
    • New Materials & Supply
    • New Technologies
    • Non-linear Passives
    • Oscillators
    • Passive Sensors
    • Resistors
    • RF & Microwave
    • Telecommunication

    Practical LLC Transformer Design Methodology

    Practical Measurement of Crystal Circuits

    March 2023 ECIA NA Electronic Components Sales Misses Expectations

    4th PCNS Call for Abstracts Extended !

    Würth Elektronik Presents New Series of DC-Link Film Capacitors

    Vishay Increases Anti-Surge Thick Film 0805 Power Resistor Performance with 0.5 W Power Rating

    Q&A Update on Aluminum Capacitor Technology with Industry Highest Energy Density >5J/cc Available for Acquisition

    Designing with High Voltage Resistors: 10 Top Tips for Success

    API Delevan Introduces 0402 and 0603 Small High Reliability Space SMD Inductors

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
    • Feedthrough
    • Derating
    • Dielectric Constant
    • New Products
    • Market Reports
  • VideoFilter
    • All
    • Antenna videos
    • Capacitor videos
    • Filter videos
    • Fuse videos
    • Inductor videos
    • Non-linear passives videos
    • Oscillator videos
    • Passive sensors videos
    • Resistor videos
    • Sensors

    Practical LLC Transformer Design Methodology

    Practical Measurement of Crystal Circuits

    Investigating Modeling Techniques of Class II Ceramic Capacitors Losses for High Voltage and Current Applications

    Understanding Basics of Current Sense Resistors

    What Decoupling Capacitor Value To Use And Where To Place Them

    How to Measure Rated Current on Power Inductors

    LTspice Simulation of a Spark-Gap Circuit Protection Surge Arrester

    Approximate Inductor Design Using Two Alternative Cores

    1kW Phase Shift Full Bridge Converter Design and Simulation

    Trending Tags

    • Capacitors explained
    • Inductors explained
    • Resistors explained
    • Filters explained
    • Application Video Guidelines
    • EMC
    • New Products
    • Ripple Current
    • Simulation
    • Tantalum vs Ceramic
  • Knowledge Blog
  • Suppliers
    • Preferred Suppliers
    • Who is Who
  • Events
  • Home
  • NewsFilter
    • All
    • Aerospace & Defence
    • Antenna
    • Applications
    • Automotive
    • Capacitors
    • Circuit Protection Devices
    • Filters
    • Fuses
    • Inductors
    • Industrial
    • Integrated Passives
    • Market & Supply Chain
    • Medical
    • New Materials & Supply
    • New Technologies
    • Non-linear Passives
    • Oscillators
    • Passive Sensors
    • Resistors
    • RF & Microwave
    • Telecommunication

    Practical LLC Transformer Design Methodology

    Practical Measurement of Crystal Circuits

    March 2023 ECIA NA Electronic Components Sales Misses Expectations

    4th PCNS Call for Abstracts Extended !

    Würth Elektronik Presents New Series of DC-Link Film Capacitors

    Vishay Increases Anti-Surge Thick Film 0805 Power Resistor Performance with 0.5 W Power Rating

    Q&A Update on Aluminum Capacitor Technology with Industry Highest Energy Density >5J/cc Available for Acquisition

    Designing with High Voltage Resistors: 10 Top Tips for Success

    API Delevan Introduces 0402 and 0603 Small High Reliability Space SMD Inductors

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
    • Feedthrough
    • Derating
    • Dielectric Constant
    • New Products
    • Market Reports
  • VideoFilter
    • All
    • Antenna videos
    • Capacitor videos
    • Filter videos
    • Fuse videos
    • Inductor videos
    • Non-linear passives videos
    • Oscillator videos
    • Passive sensors videos
    • Resistor videos
    • Sensors

    Practical LLC Transformer Design Methodology

    Practical Measurement of Crystal Circuits

    Investigating Modeling Techniques of Class II Ceramic Capacitors Losses for High Voltage and Current Applications

    Understanding Basics of Current Sense Resistors

    What Decoupling Capacitor Value To Use And Where To Place Them

    How to Measure Rated Current on Power Inductors

    LTspice Simulation of a Spark-Gap Circuit Protection Surge Arrester

    Approximate Inductor Design Using Two Alternative Cores

    1kW Phase Shift Full Bridge Converter Design and Simulation

    Trending Tags

    • Capacitors explained
    • Inductors explained
    • Resistors explained
    • Filters explained
    • Application Video Guidelines
    • EMC
    • New Products
    • Ripple Current
    • Simulation
    • Tantalum vs Ceramic
  • Knowledge Blog
  • Suppliers
    • Preferred Suppliers
    • Who is Who
  • Events
No Result
View All Result
Passive Components Blog
No Result
View All Result

Capacitance and its Calculation, Dielectric, Dipoles and Dielectric Absorption

17.1.2023
Reading Time: 15 mins read
0 0
0
SHARES
6k
VIEWS

This article explains the basic key parameter of capacitors – capacitance – and its relations: dielectric material constant / permittivity, capacitance calculations, series and parallel connection, E tolerance fields and how it is formed by dipoles / dielectric absorption.

Capacitance & Dielectrics

The Capacitance is determined by, among other things, the characteristics of the dielectric material. International standards speak of the Dielectric Constant or permittivity, designated by the symbol ε.

RelatedPosts

Failure Analysis of Capacitors and Inductors

Variable Capacitors and Trimmers

Supercapacitors

Description

A capacitor serves as a reservoir for electric charges. The size of the ”reservoir” is called capacitance and is expressed in the quantity F(arad) or As/V. The principle Figure 1. shows how the capacitance is directly proportional to the active area A and to the dielectric constant and inversely proportional to the distance between the electrodes. The formula in the figure is applicable to vacuum and air.

C3-1
Figure 1. The principle of capacitance, C.

A = area (m2),

d = distance between electrodes (m),

ε0 = dielectric constant for vacuum (≈air) = 1×10-9/36π.

 If the electric charge quantity of the capacitor is designated with Q (As), then the general formula 1 is valid.

……………………………… [1]

C3-2
Figure 2. Dielectric with its constant

If we now insert an insulator material between the electrodes as shown in Figure 2., the formula in the figures 1. and 2. get the following general expression:

………………………………. [2]

εr is a relative number – the relative dielectric constant – which tells us how many times the capacitance is magnified when we exchange the air gap between the electrodes with different dielectric materials. That’s the relative dielectric constant εr which is given in technical tables and catalogues.

Table below shows dielectric constant of the most common materials.

Table 1. Dielectric constants of most common insulating materials

Some more organic dielectric material constants can be found in article here.

Capacitive Reactance

If we change polarity in Figure 2. by applying an AC voltage over the capacitor, it will cause a certain resistance in the circuit, a so called capacitive reactance, XC, expressed in ohms.

The reactance is inversely proportional to frequency according to the formula

C3-3eq

…………………….. [3]

  • ω = 2 x π x f,
  • f = frequency in Hz,
  • C = capacitance in F.

Measure of miniaturization

The desired miniaturization of different capacitor types can be expressed in different ways. The smallest rated voltage for electrostatic capacitors often is more than enough for the application. Hence we usually disregard the voltage and compare the various types by means of their maximum possible C/V rate which means capacitance C per unit volume V (d * A in the Figure 1). According to the Formula [2] we get C/V = ε0 * εr * A/(d * A * d) = ε0 * εr /d2. The rate C/V will be at maximum for dmin, i.e., for VRmin.

In electrolytic capacitors the rated voltage plays a greater role because it can be adopted also to very low working voltages. Here the capacitors are grouped according to their charge quantity, that is to CR*VR. We refer to the CV product.

Capacitance Calculation and Connections

If we connect capacitors in parallel as shown in Figure 3. the active area (and hence the capacitance) increases with all additional capacitor elements.

C3-3
Figure 3. Principle figure of the total capacitance when the elements are connected in parallel.

Formula for the total capacitance of connections in parallel:

……………. [4]

Figure 4. shows in principle how connection in series increases the dielectric thickness without changing the charge quantity. The capacitance decreases proportionally to the increase of dielectric thickness.

C3-4
Figure 4. The principle of series connection

The figure shows a simplified picture of series connection with two equally large part capacitors. If we instead choose capacitor elements of unequal size the charge quantities on the different electrodes still will be equally large, i.e. Q = CV = C1V1 = C2V2 = C3V3; Q/C = V; Q/C1 = V1; Q/C2 = V2; Q/C3 = V3…But V1 + V2 + V3 +….= V. This gives us in general the total capacitance for Series connection:

………….[5]

Mixed dielectrics

So called mixed dielectrics have become more and more common. They consist of different film materials in the same capacitor. For example by winding a capacitor with both a paper and a polyester film dielectric we combine the excellent self healing properties of paper and the relatively high insulation resistance of polyester. In principle it’s still a question of two capacitor elements in series connection, with the same area and the dielectric thickness d1 + d2. Then the relation we depicted above is valid: Q = VC = V1C1 = V2C2; V1 x ε1 x A/d1 = V2 x ε2 x A/d2; if we denounce the electric field intensity E we then obtain ε1 x E1 = ε2 x E2, or in general

ε1 x E1 = ε2 x E2 = ε3 x E3 =

……………………… [6]

Other non-plate and various geometry capacitance calculations

The capacitance calculation by equation [2] and illustrated in figure 2. are based on plane capacitor type. However, there are many other capacitor construction types and geometries on the market. See the theoretical capacitance value calculation for some of other geometries as well as mixed dielectric situations below:

Figure 5. Capacitance calculation of various geometries and structures

Capacitance standardized values and tolerance

Following international standards EIA/IEC 62, capacitance values and tolerances are standardized as follows:

Figure 6. E24 and E48 capacitance standard range example

E range

Capacitance is following standardized “E ranges” defined per logarithmic-steps such as E3, E6 … E24, E48 steps.

Naturally, the selected E-range is also linked to the tolerance field – not to overlap between the next capacitance tolerance range – see bellow.

This image has an empty alt attribute; its file name is image-9.png
Figure 7. E6 capacitance tolerance field example
Table 2. EIA/IEC 62 tolerance field code

Specific capacitor technologies’ E range is driven by its capability to produce reproducible and tight tolerance capacitance value in mass production. You can find the relevant capacitance values and tolerance ranges defined in manufacturers’ catalogues.


Dipoles

The section about dipoles and of dielectric absorption is of vital importance for the understanding of the practical capacitor. All materials contain some kind of dipoles, i.e. electrically polar elements. When they are subjected to an electric field it creates a torsional moment which, depending on the field strength, will tend to align them in this field. These torsional moments can be divided into four groups. Those which are caused by

  • electron movements in atoms and molecules,
  • atom movements in symmetrical molecules,
  • atom movements in unsymmetrical molecules and
  • charge accumulations on interfaces between different materials in the dielectric.

As long as the capacitor is not biased, the dipoles have a random orientation, without any resulting pole. It may in principle looks like the Figure 8.

C3-5
Figure 8. Dipole orientation in an unbiased dielectric.

If they should be subjected to an electric field strength as in Figure 6. they will after a specific time tend to be aligned in dipole chains. The dielectric material has been polarized.

C3-6
Figure 9. Perfectly-aligned dipole chains.

The electric field strength (the number of imaginary field lines which would have formed in vacuum) has been reduced with the number of established dipole chains. Every dipole chain binds in the interface towards for example the positive electrode a + charge and the number of free charge carriers in the electrode has been reduced to a corresponding degree. Thus, after the alignment time of the dipoles, the electrode is able to receive as many new free charge carriers as those the dipole chains have bound without creating an increase of the electric field strength (or the voltage) above that of the starting point. This means a corresponding increase in capacitance. If we call this pola­riza­bi­lity , the number of bound charges q and the number of charges at the starting point Q, it can be shown that

This image has an empty alt attribute; its file name is C3-7eq.png

……………………. [7]

The function of a versus frequency is shown in Figure 11. below.

Because εr depending on dielectric material varies approximately between two and many thousands we realize what an enormous significance the material dipoles and the polarizability plays.

Frequency dependence of capacitance

The velocity with which a dipole react for an applied electric field is called its relaxation time. These relaxation times range from 10-17 s for the electron dependent dipoles to several hours for the large molecular complexes. That means that the fastest dipoles keep up with all practical frequencies while the slower to a varying degree need time to contribute with capacitance-increasing dipole chains. The phenomenon can be described as a basic capacitor combined with a number of additional capacitor elements hidden in resistive circuits with shorter or longer time constants (Figure 10.).

C3-7
Figure 10. Dipole categories in a capacitor.

An example of the frequency range that different types of dipoles contribute to is shown in Figure 11.

C3-8
  • αe =        dipole effect from electron movements;
    • αa =        dipole effect from atom movements in symmetrical dipoles;
  • αd =       dipole effect from atom movements in unsymmetrical molecules;
  • αi =       interface dependent dipoles.

Figure 11. Typical example of schematic variance of polarizability in a solid material with frequency.

Thus, the capacitance decreases with increasing frequency. In components with large dielectric losses and a considerable percentage of inert dipoles we will learn how the impedance curve starts deviating from the nominal capacitive reactance curve when we approach the resonance frequency.


Dielectric absorption

If the dipoles have been ”activated” to form a dipole chain it will take a corresponding time to “deacti­vate” them at the same temperature. In Figure 12. it is presupposed that the capacitor first has been charged, then momentarily short circuited and finally left open. Those dipole chains which were too inert to react during the short circuiting moment kept their charges captured in the electrode. After a while in the absence of an electric field they begin to assume random, unaligned positions, releasing the captured charges in the electrodes (Figure 12.). The released charges are manifested as a residual voltage in the capacitor and is measured in V. This residual voltage is a measure on the dielectric absorption ”DA” of the capacitor and is expressed in percent of the initial voltage applied.

C3-9

Figure 12. Effect of dielectric absorption.

DA is generally an unwanted property which burdens certain dielectric materials severely, others little or quite negligibly. It may sometimes cause problems we will discuss later.

The determination of DA is made by biasing the capacitor with a DC voltage for a certain period of time, then short circuiting the part over a resistor for a specified number of seconds and finally leaving it open for a number of minutes before the residual voltage is read. It is expressed in percent of the charging voltage. Voltages, times and resistances are specified in different standards which sometimes differ. Examples of how the times influence the results are shown in Table 3 where the records are done at 25 °C. DA increases strongly with rising temperature.

This image has an empty alt attribute; its file name is image-5.png
Table 3. Examples of DA @ 25°C

Knowledge of the dielectric absorption of capacitors is often vital for optimum circuit design. Thus we will provide DA values in the part summaries following every material group. Primarily, the values are obtained based on procedures the same as or equal to either of the methods in Table 3. above.

Table 4. below shows a typical most common capacitor technologies’ dielectric absorption values:

This image has an empty alt attribute; its file name is image-6-1024x351.png
Table 4. dielectric absorption of most common dielectrics

Related Posts

Inductors

Practical LLC Transformer Design Methodology

31.3.2023
1
Oscillators

Practical Measurement of Crystal Circuits

31.3.2023
3
Market & Supply Chain

March 2023 ECIA NA Electronic Components Sales Misses Expectations

31.3.2023
2

Upcoming Events

Apr 3
April 3 @ 12:00 - April 4 @ 14:00 CEST

Microelectronic Packaging Failure Modes and Analysis

Apr 5
11:00 - 12:00 CEST

Plugging – Filling – Tenting; WE PCB Webinar

Apr 6
April 6 @ 12:00 - April 7 @ 14:00 EDT

Space and Military Standards for Hybrids and RF Microwave Modules

View Calendar

Popular Posts

  • What is a Dielectric Constant of Plastic Materials ?

    4 shares
    Share 4 Tweet 0
  • Ripple Current and its Effects on the Performance of Capacitors

    3 shares
    Share 3 Tweet 0
  • Capacitor Selection for Coupling and Decoupling Applications

    28 shares
    Share 28 Tweet 0
  • Why Low ESR Matters in Capacitor Design

    0 shares
    Share 0 Tweet 0
  • Leakage Current Characteristics of Capacitors

    0 shares
    Share 0 Tweet 0
  • Capacitor Losses (ESR, IMP, DF, Q), Series or Parallel Eq. Circuit ?

    0 shares
    Share 0 Tweet 0
  • How to Choose the Right Inductor for DC-DC Buck Applications

    0 shares
    Share 0 Tweet 0
  • Understanding High-Precision Resistor Temperature Coefficient of Resistance

    0 shares
    Share 0 Tweet 0

Newsletter Subscription

 

PCNS Call for Papers !

Archive

2022
2021
2020
2019
2018
2017

Symposium

Passive Components Networking Symposium

Passives e-Learning

Knowledge Blog

  • Home
  • Privacy Policy
  • EPCI Membership & Advertisement
  • About

© EPCI - Premium Passive Components Educational and Information Site

No Result
View All Result
  • Home
  • News
  • Video
  • Knowledge Blog
  • Preferred Suppliers
  • Events

© EPCI - Premium Passive Components Educational and Information Site

Welcome Back!

Login to your account below

Forgotten Password?

Retrieve your password

Please enter your username or email address to reset your password.

Log In
This website uses cookies. By continuing to use this website you are giving consent to cookies being used. Visit our Privacy and Cookie Policy.