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GT8E-8S-HU

Description
conn skt 2mm 8pos
CategoryThe connector    The connector   
File Size351KB,12 Pages
ManufacturerHirose
Websitehttp://www.hirose-connectors.com/
Environmental Compliance
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GT8E-8S-HU Overview

conn skt 2mm 8pos

GT8E-8S-HU Parametric

Parameter NameAttribute value
Is it lead-free?Lead free
Is it Rohs certified?conform to
Reach Compliance Codeunknow
Body/casing typeSOCKET
Connector typeDIP CONNECTOR
Contact to complete cooperationTIN
Contact completed and terminatedTin (Sn)
Contact point genderFEMALE
Contact materialCOPPER ALLOY
DIN complianceNO
Filter functionNO
IEC complianceNO
JESD-609 codee3
MIL complianceNO
Mixed contactsNO
Installation typeCABLE
Number of rows loaded1
OptionsGENERAL PURPOSE
Termination typeCRIMP
Total number of contacts8
UL Flammability Code94V-0
Base Number Matches1
NEW
2mm pitch, high reliability with lock, board to cable and cable to cable connector
GT8E Series
Mechanical lock mechanism
Mechanical lock
sOverview
The GT8E series comes with a 2mm pitch lock, for discreet cable, board-to-
cable and cable-to-cable connectors. It is highly reliable in terms of
vibration, heat and environmental resistance, and is used in applications
such as industrial equipment, which are exposed to harsh vibration, in-
vehicle equipment requiring high heat resistance, and so on.
Half mating prevention mechanism
Enlarged lock form to improve workability, and with an audibly
clicking lock, and inertia lock via a mechanical lock mechanism,
firm connection is ensured.
Excellent lock strength, vibration resistance
Lock strength is guaranteed up to a standard value of 98N, while
it also resists vibration and cable tension. The vibration
resistance also cleared the test for harsh vehicles.
sFeatures
1. High reliability
The GT8E series has high reliability in the following 5 aspects, namely
vibration resistance, thermal shock resistance and so on, and is usable in
industrial and in-vehicle equipment exposed to harsh environments. (It
meets the test conditions for various in-vehicle equipment)
qVibration
resistance: Contact resistance is stable during the vibration test
With the female terminal featuring an airtight dimple mechanism, the
contact point portion area is minimized, and contact pressure is enhanced.
wThermal
shock resistance: Usable under harsh temperature
environments
Test conditions: (-40ç: 30 minutes
normal temperature: 5 minutes
105ç: 30 minutes
normal temperature: 5 minutes)
It has undergone 1000 cycles.
eHeat
resistance: Usable up to 105ç
PBT and PPS are used in molds, and usable up to 105ç.(including
temperature increase at power distribution)
rHalf
joint prevention
With an audibly clicking lock, and inertia lock via a mechanical lock
mechanism, firm connection is ensured. Also, the full lock mechanism
means it resists tension and vibration. (Figure 1)
tEnvironment
resistance
When mated status, it passed the sulfite gas resistance test
(concentration 500ppm, 8 hours).
Figure 1
Lead reflow
Connector
implementation
area
Land pattern
Through hole
2. Improved fixation power of the crimp terminal
The waterproof relay type is usable with retainer equipped, and high
retention against removal is ensured when the cable is pulled.
3. Decent variation
- Straight DIP type
- Right angle DIP type
- Right angle SMT type
- In-line type (Waterproof)
4. Space saving
The pin header includes both SMT and DIP types. Exclusive reinforcing clasps
are used instead of screws ensuring high peel strength and saving space.
Soldering can be applied to the land pattern and through hole at
the same time, reinforcing the clasp and the SMT terminal via a
one-time reflow process.
Compared to the conventional reinforcing clasp used in SMT
implementation, higher peel strength is ensured.
5. Reduction of implementation man-hours
In SMT type pin headers, the lead reflow type reinforcing clasps, which are
available for reflow soldering, are used. As well as ensuring high peel
strength, implementation can be performed via a one-time reflow, thus
reducing the man-hours required in comparison to screw type connectors.
(Figure 2)
Figure 2
2010.9
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