Difference between revisions of "General Rules for Dimensioning of Contacts"

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(6.4.6 General Rules for Dimensioning of Contacts)
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===<!--6.4.6-->General Rules for Dimensioning of Contacts===
+
===6.4.6 General Rules for Dimensioning of Contacts===
  
'''Recommended Minimum Contact Forces at Slightly Sliding Contact Make:'''
+
*'''Recommended Minimum Contact Forces at Slightly Sliding
 +
Contact Make:'''
  
<table class="twocolortable" style="text-align: left; font-size: 12px;width:40%">
+
Gold 0.03 N
<tr>
+
Silver 0.1 N
<td>Gold</td>     
+
Tungsten 0.5 N
<td>0.03 N </td>
 
</tr><tr>
 
<td>Silver </td>
 
<td>0.1 N</td>
 
</tr><tr>
 
<td>Tungsten </td>
 
<td>0.5 N</td>
 
</tr>
 
</table>
 
  
'''Contact Force Recommendations:'''
+
*'''Contact Force Recommendations:'''
  
{| class="twocolortable" style="text-align: left; font-size: 12px;width:40%"
+
Signal relays >3 cN
|-
+
AC power relays > 20 cN
|Signal relays    
+
Automotive relays > 20 cN
|&ge; 3 cN
+
Motor switches (Contactors) 0.05 - 0.08 N/A
|-
+
(Silver – Metal oxide contacts)
|AC power relays  
+
Power switches 0.1 - 0.2 N/A
|&ge; 20 cN
+
Connectors > 30 cN/contact element
|-
+
(Gold coating)
|Automotive relays
+
Connectors > 50 cN/contact element
|&ge; 20 cN
+
(Silver coating)
|-
+
Connectors > 1 N/contact element
|Motor switches (Contactors)<br />(Silver – Metal oxide contacts)
+
(Tin coating)
|0.05 - 0.08 N/A
 
|-
 
|Power switches
 
|0.1 - 0.2 N/A
 
|-
 
|Connectors<br />(Gold coating)
 
|&ge; 30 cN/contact element
 
|-
 
|Connectors<br />(Silver coating)
 
|&ge; 50 cN/contact element
 
|-
 
|Connectors<br />(Tin coating)
 
|&ge; 1 N/contact element
 
|}
 
  
 +
*'''General Rules for Dimensioning of Contact Rivets'''
 +
bild
  
'''General Rules for Dimensioning of Contact Rivets'''
+
*'''Head diameter for electrical loads'''
  
[[File:General Rules for Dimensioning of Contact Rivets.jpg|left|thumb|Figure 1: General Rules for Dimensioning of Contact Rivets]]
+
For AC currents: approx. 1 – 1.5 A/mm²
{| class="twocolortable" style="text-align: left; font-size: 12px;width:100%"
+
For 1 A min. 2 mm head diameter
|-
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10 A approx. 3 – 3.5 mm head diameter
!Dimensioning
+
20 A approx. 5 mm head diameter
!Solid Rivets (1)
+
For DC currents: approx. 0.5 0.8 A/mm²
!Composite Rivets (2)
 
|-
 
|a : d     
 
|1.5 : 1 bis 2.5 : 1
 
|2 : 1 bis 2.5 : 1
 
|-
 
|a : b     
 
|2.5 : 1 bis 10 : 1
 
|3 : 1 bis 5 : 1
 
|-
 
|c : b     
 
|&ge; 1 : 1
 
|&ge; 1 : 1
 
|-
 
|b : s     
 
|
 
|&ge; 2 : 1
 
|-
 
|s<sub>min</sub>   
 
|
 
|&#8776; 0.3 mm
 
|}
 
  
 +
*'''Head radius R for electrical loads'''
  
 +
for I < 1 A R 1,5 mm
 +
I = 6 A R 5 mm
 +
I = 10 A R 10 mm
 +
I = 20 A R 15 mm
  
 +
*'''Failure Probability of Single and Double (Bifurcated) Contacts''' (according to Thielecke)
  
 +
Fig. 6.18: Failure probability of a contact as a
 +
function of the voltage (according to Kirchdorfer);
 +
Ag/Ni10; 10 mA
  
'''Failure Probability of Single and Double (Bifurcated) Contacts''' (according to Thielecke)
+
Fig. 6.19: Failure probability of a contact as a
 
+
function of the current (according to
{| class="twocolortable" style="text-align: left; font-size: 12px;width:100%"
+
Kirchdorfer); Ag/Ni10; F = 0.45 N; U = 24 V
|-
 
!Contact force[N]   
 
!colspan="4" style="text-align:center"|'''Single contact'''
 
|-
 
!   
 
!Ag
 
!AuNi 5, Pt
 
!Ag
 
!AuNi 5, Pt
 
|-
 
|0.04 
 
|
 
|1 x 10<sup>-4</sup>
 
|
 
|2 x 10<sup>-8</sup>
 
|-
 
|0.1 
 
|2 x 10<sup>-3</sup>
 
|4 x 10<sup>-5</sup>
 
|8 x 10<sup>-5</sup>
 
|8 x 10<sup>-9</sup>
 
|-
 
|0.2
 
|1 x 10<sup>-4</sup>
 
|8 x 10<sup>-6</sup>
 
|4 x 10<sup>-6</sup>
 
|4 x 10<sup>-8</sup>
 
|-
 
|0.3
 
|5.5 x 10<sup>-6</sup>
 
|1.5 x 10<sup>-6</sup>
 
|1.8 x 10<sup>-7</sup>
 
|3.2 x 10<sup>-10</sup>
 
|}
 
 
 
 
 
<div class="multiple-images">
 
<figure id="fig:Failure probability of a contact as a function of the voitage">
 
[[File:Failure probability of a contact as a function of the voitage.jpg|left|thumb|Figure 2: Failure probability of a contact as a function of the voltage (according to Kirchdorfer); Ag/Ni10; 10 mA]]
 
</figure>
 
 
 
<figure id="fig:Failure probability of a contact as a function of the current">
 
[[File:Failure probability of a contact as a function of the current.jpg|left|thumb|Figure 3: Failure probability of a contact as a function of the current (according to Kirchdorfer); Ag/Ni10; F<sub>k</sub> = 0.45 N; U = 24 V]]
 
</figure>
 
</div>
 
<div class="clear"></div>
 
  
 
==References==
 
==References==
[[Application Tables and Guideline Data for Use of Electrical Contact Design#References|References]]
+
[[Application Tables and Guidance Data for the Use of Electrical Contacts#References|References]]
 
 
[[de:Faustregeln_für_die_Kontaktdimensionierung]]
 

Revision as of 14:31, 8 January 2014

6.4.6 General Rules for Dimensioning of Contacts

  • Recommended Minimum Contact Forces at Slightly Sliding

Contact Make:

Gold 0.03 N Silver 0.1 N Tungsten 0.5 N

  • Contact Force Recommendations:

Signal relays >3 cN AC power relays > 20 cN Automotive relays > 20 cN Motor switches (Contactors) 0.05 - 0.08 N/A (Silver – Metal oxide contacts) Power switches 0.1 - 0.2 N/A Connectors > 30 cN/contact element (Gold coating) Connectors > 50 cN/contact element (Silver coating) Connectors > 1 N/contact element (Tin coating)

  • General Rules for Dimensioning of Contact Rivets

bild

  • Head diameter for electrical loads

For AC currents: approx. 1 – 1.5 A/mm² For 1 A min. 2 mm head diameter 10 A approx. 3 – 3.5 mm head diameter 20 A approx. 5 mm head diameter For DC currents: approx. 0.5 – 0.8 A/mm²

  • Head radius R for electrical loads

for I < 1 A R 1,5 mm I = 6 A R 5 mm I = 10 A R 10 mm I = 20 A R 15 mm

  • Failure Probability of Single and Double (Bifurcated) Contacts (according to Thielecke)

Fig. 6.18: Failure probability of a contact as a function of the voltage (according to Kirchdorfer); Ag/Ni10; 10 mA

Fig. 6.19: Failure probability of a contact as a function of the current (according to Kirchdorfer); Ag/Ni10; F = 0.45 N; U = 24 V

References

References