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    參數(shù)資料
    型號: 203908-2
    廠商: Tyco Electronics
    元件分類: 輸入/輸出連接器
    英文描述: M Series Connectors
    中文描述: M系列連接器
    文件頁數(shù): 68/100頁
    文件大?。?/td> 5980K
    代理商: 203908-2
    7
    AMP M Series
    Pin and Socket Connectors
    Catalog 82003
    Dimensions are in millimeters
    Dimensions are shown for
    USA: 1-800-522-6752
    South America: 55-11-3611-1514
    Revised 06-08
    and inches unless otherwise
    reference purposes only.
    Canada: 1-905-470-4425
    Hong Kong: 852-2735-1628
    specified. Values in brackets are
    Specifications subject
    Mexico: 01-800-733-8926
    Japan: 81-44-844-8013
    www.tycoelectronics.com
    equivalent U.S. Customary Units.
    to change.
    C. America: 52-55-5-729-0425
    UK: 44-141-810-8967
    NOTE: All part numbers
    are RoHS Compliant
    Contract Carrying Capabilities
    The total current capacity of
    each contact in a given con-
    nector is dependent upon the
    heat rise resulting from the
    combination of electrical
    loads of the contacts in the
    connector arrangement and
    the maximum ambient tem-
    perature in which the
    connector will be operating.
    Caution must be taken to
    ensure that this combination
    of conditions does not cause
    the internal temperature of
    the connector to exceed the
    maximum operating temper-
    ature of the housing material.
    Several variables which must
    be considered when deter-
    mining this maximum current
    capability for your applica-
    tion are:
    Connector Size - In general,
    with more circuits in a con-
    nector, less current per
    contact can be carried.
    Current Load Distribution -
    Spreading those lines with
    greater current loads
    through-out the connector,
    particularly around the
    outer perimeter, will
    enhance heat dissipation.
    Ambient Temperature -
    With higher ambient
    temperatures, less current
    can be carried.
    Current Rating Verification
    Can a contact rated at 10
    amps carry 10 amps?
    Maybe yes, but probably not.
    The reason lies in the test
    conditions used to rate the
    contact. If these conditions
    do not adequately reflect the
    application conditions, the
    actual allowable current lev-
    els may be lower than
    specified levels. For example,
    many manufacturers, includ-
    ing Tyco, test a single contact
    in air. This gives an accurate
    measure of the basic current-
    carrying capacity of the
    contact. Use the contact
    alone in air and it can cer-
    tainly carry 10 amperes. Use
    it in a multi-position connec-
    tor surrounded by other
    current-carrying contacts or
    in high ambient temperatures,
    and the contact should carry
    less current.
    Similarly, as the contact ages
    and stress relaxation, environ-
    mental cycling, and other
    degradation factors take their
    toll, the contact’s current-
    carrying capacity decreases.
    A prudent design must set
    current levels for such end-of-
    design-life (EODL) conditions.
    Practical current-carrying
    capacity is not an absolute,
    but an application-dependent
    condition.
    New Method Simplifies
    Ratings
    To help the designer set the
    appropriate current level,
    Tyco has developed a
    method of specifying cur-
    rent-carrying capacity. This
    method takes into account
    the various application fac-
    tors that influence current
    rating.
    The method can be summa-
    rized as follows:
    The contact is aged to
    EODL conditions by durabil-
    ity cycling, thermal cycling,
    and environmental expo-
    sure.
    The contact’s resistance
    stability is verified.
    The current necessary to
    produce the specified tem-
    perature rise is measured.
    This T-rise is usually 30°C.
    A rating factor is deter-
    mined to allow derating of
    multiple contacts in the
    same housing and for differ-
    ent conductor sizes.
    Temperature
    One other factor influencing
    current levels is the maximum
    operating temperature, for
    example, 105°C. If the appli-
    cation has a high ambient
    temperature (over 75°C) the
    contact’s T-rise is limited by
    the maximum operating tem-
    perature. For example, an
    application temperature of
    90°C limits the contact T-rise
    to 15°C. Since current pro-
    duces heat (the I2R law), the
    current must be lowered to
    limit the T-rise.
    A contact’s T-rise depends
    not only on its I2R Joule heat-
    ing, but also on its ability to
    dissipate the heat. Consider a
    contact in a multi-contact
    housing. Joule heating in
    multiple contacts will raise
    the local ambient tempera-
    ture. Since the contact will
    not be able to dissipate its
    own heat as well by convec-
    tion, the maximum T-rise will
    be realized at a lower current
    level. Conse-quently, the
    allowable current level must
    be lower to maintain an
    acceptable T-rise.
    For a given connector, the
    current level will be set by the
    loading density. A connector
    containing 50% current-carry-
    ing contacts will permit higher
    currents (per contact) than a
    connector will at 75% loading.
    The loading percentage
    assumes an even distribution
    of contacts within the housing.
    If all 10 contacts are grouped
    together in one section of a
    20-position
    connector, the loading density
    may approach 100%.
    The Importance of EODL
    As stated, T-rise in a contact
    depends on both resistance
    and current. As it ages, a con-
    tact’s resistance will increase.
    The contact designer will
    specify a maximum resistance
    for the contact, this level is the
    end-of-design-life resistance.
    Before the contact is tested
    for current, Tyco subjects it to
    a sequence of tests that exer-
    cises the major failure
    mechanisms and thereby sim-
    ulates EODL conditions.
    Conditioning includes mating
    cycling, industrial mixed-flow-
    ing gases, humidity and
    tempera-ture cycling, and
    vibration to sequentially
    introduce wear, corrosion,
    stress relaxation, and
    mechanical disturbance.
    75
    60
    56
    50
    45
    35
    23
    7.5
    60
    45
    30
    15
    0
    Type XII Upgrade
    Size 8 Upgrade
    .125 POWERBAND
    Contact
    Size 8
    Type XII
    Type I, Type II/III+
    Upgrade
    Type III+, Type II,
    Type III+ Posted
    Size 20 Upgrade
    20 DF
    CONTACT CURRENT GUIDE Maximum Current (Amperes)
    13
    11.85
    Wire Size - Larger wire will
    carry more current since it
    has less internal resistance
    to current flow and gener-
    ates less heat. The wire also
    conducts heat away from
    the connector.
    Curr
    ent
    Carring
    Capabilities
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