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| DSH 5411 L( G/ r( Z- T) g3 {4 N
8 q( y5 u, E: J. {; [ | Transformer overload" j; W, v j: A4 m
| 4.3, 110 H9 e( \( A) ^9 J9 t1 g( F- @
| 60065(ed.6)% B. C) v2 _: x5 R' C: b4 C
| ) q2 ]5 \5 V+ ^: ]1 a% }+ P# C
Standard(s)-(year and edition):& j7 E7 ^+ v) \6 E6 W% e0 h
IEC 60065 (1998) 6th Ed% \! B, ?! ~' z1 f
Sub clause(s):% E! g% [8 w. p
4.3, 11( c$ z! Y0 K& E( K. [
Dec. No.
s- R" i: s; ~# LDSH-541
1 p5 Y) T/ d% K9 R) ` k4 R5 ^Subject:
; z8 d2 t8 t* ]# o6 ^3 GTransformer overload! R8 Q" F4 Q( u# o/ N
Key words:3 R" F' ^: }8 i# u# v
FAULT CONDITIONS
+ _3 N0 N+ I6 i# G+ [Decision of:
' F" G% Y' c3 d40th CTL meeting /2003
2 x5 {& R' C0 \% c, ~ cQuestion:5 f% X% W, c/ d( v% _7 K3 }
The standard does not specify a transformer overload test, as there is, , for example, in IEC 60950.,
/ X& v; a/ a+ ?& N. tIf it is obvious, based on engineering judgment of the technical design of the product, that% s0 w- |) h9 [/ s# U7 p" b
due to a single fault condition (e.g. component failures, short circuit of functional insulation)
# N/ B: {1 B: C. C, G4 R: p: tan overload situation on a transformer is likely to occur, which approach should be
& x# Y, d4 ]8 B. M$ Sfollowed?1 N9 ^1 q$ e$ B/ p/ V
1) The actual overload on the transformer shall be performed, taking into account the 'characteristics' of- C, R: |, c3 c$ w
eventual protective devices.9 s8 p5 x9 |% M s
2) All possible single fault conditions shall be performed. For those situations where the protective' U9 H" _+ U: `6 X5 I- W& ]4 R
device reacts, the current through the protector shall be measured and the characteristic of the# X% g) H6 y- |0 ^0 {$ U
protector shall be taken into account.5 l$ n1 x, I, i1 l; x# P% X
3) No overload condition shall be created, since the standard does not specify this in wording." D- a- s3 _6 S$ x2 e; Y! d
4) Other possibilities.: u! O& O1 W/ F. o' ]3 c
Decision:2 A- ~$ z+ r" c* F4 e7 [( I* Q
Following the standard option 2 from above has to be used.% P5 k5 f; E6 ?9 J- f
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