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    參數(shù)資料
    型號(hào): CR2LS-100
    廠商: FUJI ELECTRIC CO LTD
    元件分類: 保險(xiǎn)絲
    英文描述: SUPER FAST BLOW ELECTRIC FUSE, 100A, 250VAC, 100000A (IR), INLINE/HOLDER
    文件頁數(shù): 3/12頁
    文件大?。?/td> 809K
    代理商: CR2LS-100
    Fuji Electric FA components & Systems Co., Ltd./D & C Catalog
    Information subject to change without notice
    08/45
    08
    I Application and selection guide
    BLC, CR and CS-type – Super rapid
    fuse
    When selecting fuses for
    semiconductor rectifier circuit protection
    the following conditions must be
    satisfied.
    For additional details contact FUJI.
    I Conditions of application
    1. The rated interrupting current of the
    fuse must be greater than the
    estimated short circuit current of the
    circuit.
    Available short
    Rated interrupting
    circuit current
    current of fuse
    of rectifier circuit
    2. The let-thru current value of fuse
    must be less than the allowable 1/2
    cycle surge current value.
    Semiconductor – 1/2
    Fuse let-thru
    cycle allowable surge
    current value
    current 10ms (at 50Hz)
    3. The total clearing I2t value which the
    fuse requires to complete interruption
    must be less than the allowable I2t
    value of semiconductor.
    Fuse – total
    Semiconductor – I2t
    clearing I2t
    4. The rated current of the fuse must be
    greater than the average forward
    current of the semiconductor.
    Fuse –
    Semiconductor –
    rated current
    average forward current
    5. The rated current and voltage of the
    fuse must be greater than those of
    the rectifier circuit.
    Fuse – rated
    Rectifier circuit –
    current and
    current and voltage
    voltage
    Method of application
    Semiconductor rectifier equipment has
    a variety of rectifier circuits. Taking the
    3-phase bridge rectifier circuit as an
    example – Fig. (a) and (b) as shown in
    the following.
    Although the number of fuses used in
    the line fuse method (a) is half the
    number used in the element fuse
    method (b), the fuses must have a
    larger current capacity.
    Fig. (a)
    Line fuse method
    In this method the fuses are connected to
    the AC line side.
    Fig. (b)
    Element fuse method
    In this method the fuses are connected in
    series to the semiconductor element.
    I Fuse ratings
    When selecting fuses various factors
    such as protection, coordination and
    load, etc. must be considered.
    However, in this catalog the main
    matters such as voltage, current and I2t
    only are explained.
    G
    Rated voltage
    The rated voltage of the fuse indicates
    the maximum operational voltage and
    this also indicates the root-mean-
    square value of the AC sinusoidal wave
    voltage. Select fuses having a rated
    voltage exceeding the voltage obtained
    by the formula shown in the following
    table. (Fig. 1)
    Do not select current-limiting fuses with
    rated voltages drastically exceeding the
    rectifier circuit voltage. It is necessary
    to consider the arc voltage.
    >
    =
    >
    =
    >
    =
    >
    =
    >
    =
    >
    =
    Fig. 1 Rated voltage required by fuses
    Wire connection
    Wiring diagram
    Rated voltage of Fuse (VFN rms)
    type
    For line fuse
    For element fuse
    Single-phase bridge
    VFN
    a Ea
    VFN
    a Ea
    3-phase bridge
    VFN
    a Ea
    VFN
    a Ea
    3-phase, double star
    VFN
    a 3 Ea
    VFN
    a 3 Ea
    Remarks: The 'a' is a coefficient where the regulation of the AC input voltage is taken into account. This
    is a=1.1 in case of voltage regulation ±10%.
    Fig. 2 Element current and line current
    Wire connection
    Wiring diagram
    Element fuse method
    Line fuse method
    type
    Element current Ia
    Line current
    Single-phase bridge
    3-phase bridge
    3-phase, double star
    <
    =
    <
    =
    >
    Low Voltage Fuses
    BLC, CR and CS types
    Super Rapid Fuses
    Ea
    Ia
    Id
    I
    Ia =
    I = d
    = 0.707d
    Id
    _
    2
    _
    Ia =
    = 0.577dI
    Id
    _
    3
    _
    I=
    Id
    = 0.816dI
    2
    3
    I = Ia =
    = 0.289dI
    Id
    2
    _
    3
    _
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