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530AB000185DG

In Stock 2332 pcs Reference Price(In US Dollars)
50+
$12.7813
Manufacturer Part Number:
530AB000185DG
Manufacturer / Brand
Skyworks Solutions Inc.
Part of Description:
XTAL OSC XO 185.0000KHZ LVPECL
Datasheets:
530AB000185DG(1).pdf530AB000185DG(2).pdf530AB000185DG(3).pdf
Lead Free Status / RoHS Status:
RoHS Compliant
Stock Condition:
New original, 2332 pcs Stock Available.
ECAD Model:
Ship From:
Hong Kong
Shipment Way:
DHL/Fedex/TNT/UPS

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Part Number 530AB000185DG
Manufacturer / Brand Skyworks Solutions Inc.
Stock Quantity 2332 pcs Stock
Category Crystals, Oscillators, Resonators > Oscillators
Description XTAL OSC XO 185.0000KHZ LVPECL
Lead Free Status / RoHS Status: RoHS Compliant
Voltage - Supply 3.3V
Type XO (Standard)
Spread Spectrum Bandwidth -
Size / Dimension 0.276" L x 0.197" W (7.00mm x 5.00mm)
Series Si530
Ratings -
Package / Case 6-SMD, No Lead
Package Strip
Output LVPECL
Operating Temperature -40°C ~ 85°C
Mounting Type Surface Mount
Height - Seated (Max) 0.071" (1.80mm)
Function Enable/Disable
Frequency Stability ±20ppm
Frequency 185 kHz
Current - Supply (Max) 121mA
Current - Supply (Disable) (Max) 75mA
Base Resonator Crystal
Base Product Number 530AB
Absolute Pull Range (APR) -

Packaging & ESD

Industry-standard static shielding packaging is used for electronic components.Anti-static, light-transparent materials allow easy identification of ICs and PCB assemblies.
The packaging structure provides electrostatic protection based on Faraday cage principles.This helps protect sensitive components from static discharge during handling and transportation.


All products are packed in ESD-safe anti-static packaging. Outer packaging labels include part number, brand, and quantity for clear identification. Goods are inspected prior to shipment to ensure proper condition and authenticity.

ESD protection is maintained throughout packing, handling, and global transportation. Secure packaging provides reliable sealing and resistance during transit. Additional cushioning materials are applied when required to protect sensitive components.

QC(Part Testing by IC Components)Quality Warranty

We can offer worldwide express delivery service, such as DHLor FedEx or TNT or UPS or other forwarder for shipment.

Global Shipment by DHL/FedEx/TNT/UPS

Shipping Fees reference DHL/FedEx
1). You can offer your express delivery account for shipment, ifyou haven’t any express account for shipment, we can offer our account inadvance.
2). Use our account for shipment, Shipment charges(Reference DHL/FedEx, Different Countries has different price.)
Shipment charges: (Reference DHL and FedEX)
Weight(KG): 0.00kg-1.00kg Price(USD$) : USD$60.00
Weight(KG): 1.00kg-2.00kg Price(USD$) : USD$80.00
* The price of cost is reference with DHL/FedEx. The detail charges, please contact us. Different country the express charges are different.



We accept the payment terms: Telegraphic Transfer(T/T), Credit Card, PayPal and Western Union.

PayPal:

PayPal Bank Information:
Company Name : IC COMPONENTS LTD
Paypal ID: Info@IC-Components.com

BANK TRANSFAR (Telegraphic Transfer)

Payment For Telegraphic Transfers:
Company Name : IC COMPONENTS LTD Beneficiary Account Number : 549-100669-701
Beneficiary Bank name : Bank of Communications (Hong Kong) Ltd Beneficiary Bank Code : 382 (for local payment)
Beneficiary Bank SWIFT : COMMHKHK
Beneficiary Bank Address : Tsuen Wan Market Street Branch 53 Market Street, Tsuen Wan N.T., Hong Kong

Any inquires or questions, please kindly contact us Email: Info@IC-Components.com


Frequently Asked Questions

How should I design the LVPECL interface around 530AB000185DG if my logic is not already LVPECL?
The 530AB000185DG uses an LVPECL output, so the receiving circuit needs a compatible termination and common-mode arrangement. If the downstream device only accepts CMOS or LVCMOS, a level translation stage or a different oscillator family is usually a better fit than direct connection. For short board routes, pay attention to the termination network recommended by the target device and verify that the input common-mode range remains valid across temperature and supply variation.
Can 530AB000185DG be used as a drop-in replacement for another 185 kHz oscillator from a different vendor?
The 530AB000185DG can be a functional replacement only if the replacement candidate matches frequency, output standard, supply voltage, enable behavior, package, pinout, and start-up characteristics closely enough for the target board. LVPECL signaling and the 6-SMD no-lead package often prevent direct drop-in substitution without checking the footprint and termination scheme. For migration from another brand, compare output swing, disable state behavior, and load expectations, not just the nominal 185 kHz frequency.
What should I check before migrating from a crystal plus discrete oscillator circuit to 530AB000185DG?
When moving to 530AB000185DG, confirm that the system really needs a fixed-frequency XO rather than a tunable or MCU-generated clock. Also verify that the board can accommodate the oscillator’s 3.3 V supply, LVPECL output interface, and enable/disable control. If the original design depended on a different output topology or lower power draw, the new integration may require changes to termination, power sequencing, and clock input biasing.
Is 530AB000185DG suitable for industrial equipment running from -40°C to 85°C?
The 530AB000185DG is specified for -40°C to 85°C operation, so it is aligned with many industrial environments. In long-life equipment, the practical checks are supply noise, vibration and solder-joint reliability in the 6-SMD no-lead package, and whether the clock receiver can tolerate the oscillator’s startup and disable behavior over temperature. If the design has strong thermal cycling or high EMI exposure, validating phase noise sensitivity and board-level layout becomes part of the qualification plan.
How do I use the enable/disable function on 530AB000185DG without causing clock glitches?
The 530AB000185DG supports enable/disable control, but the control pin should be treated as part of the power-up and shutdown sequence. Hold the downstream logic in reset or clock-gated state before toggling enable, then verify the receiver’s lock or sampling requirements before releasing the system. For designs that cannot tolerate missing pulses or undefined startup states, it is wise to confirm behavior on the bench under the exact load and termination network used on the final PCB.
What are the main trade-offs if I replace 530AB000185DG with a lower-power clock source?
Replacing 530AB000185DG with a lower-power part usually changes more than current draw. You may also change output type, rise/fall behavior, jitter profile, disable state leakage, and compatibility with existing termination. If power is the main constraint, compare the new part against the clock receiver’s input requirements and the board’s EMI margin, because a lower-current oscillator can still fail if the interface is no longer electrically compatible.
Can 530AB000185DG be used in a design that needs very tight frequency accuracy over time?
The 530AB000185DG has a frequency stability specification of ±20 ppm, which is appropriate for many timing and reference applications, but not for systems that need a tighter long-term error budget without calibration. For a design with multiple clocks, include crystal aging, temperature drift, and board-level loading effects in the total budget, even though the oscillator itself already integrates the resonator. If the application needs sub-ppm class behavior, a different reference architecture may be more suitable.
What layout and assembly issues matter most for 530AB000185DG in production?
The 530AB000185DG is a 6-SMD, no-lead surface-mount device, so pad design, paste control, and reflow profile matter for consistent solder joints. Keep the LVPECL traces short and controlled, and place the termination close to the receiver when required by the target interface. Because the part is moisture sensitivity level 1, handling constraints are relatively relaxed, but standard PCB cleanliness and assembly discipline still help avoid intermittent clock faults.
Are there alternatives to 530AB000185DG if my board cannot support LVPECL signaling?
If your board cannot support LVPECL, the better alternative to 530AB000185DG is usually an oscillator with CMOS, LVDS, HCSL, or another output family that matches the receiver. The exact choice depends on the input thresholds, supply rails, and whether the clock must drive a long trace or multiple loads. In many cases, changing output standard is simpler than adding translation circuitry around an LVPECL source.
What failure modes should I watch for when qualifying 530AB000185DG in a new system?
With 530AB000185DG, the common qualification issues are interface mismatch, improper termination, excessive supply noise on 3.3 V, and disable-pin behavior that does not match the system power sequence. A board can pass basic bring-up and still show intermittent clock loss if the receiver input is marginal at temperature or if the layout adds unwanted reflections. For production qualification, test startup, disable/enable transitions, temperature corners, and supply variation with the final load attached.

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