IHLP2525CZERR82M07 >
IHLP2525CZERR82M07
Vishay Dale
FIXED IND 820NH 13A 7.41MOHM SMD
3220 Pcs New Original In Stock
820 nH Shielded Molded Inductor 13 A 7.41mOhm Nonstandard
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IHLP2525CZERR82M07 Vishay Dale
5.0 / 5.0 - (79 Ratings)

IHLP2525CZERR82M07

Product Overview

1153998

DiGi Electronics Part Number

IHLP2525CZERR82M07-DG

Manufacturer

Vishay Dale
IHLP2525CZERR82M07

Description

FIXED IND 820NH 13A 7.41MOHM SMD

Inventory

3220 Pcs New Original In Stock
820 nH Shielded Molded Inductor 13 A 7.41mOhm Nonstandard
Quantity
Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 1 1.6189 1.6189
  • 200 0.6458 129.1600
  • 500 0.6245 312.2500
  • 1000 0.6146 614.6000
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IHLP2525CZERR82M07 Technical Specifications

Category Fixed Inductors

Manufacturer Vishay

Packaging Tape & Reel (TR)

Series IHLP-2525CZ-07

Product Status Active

Type Molded

Material - Core -

Inductance 820 nH

Tolerance ±20%

Current Rating (Amps) 13 A

Current - Saturation (Isat) 24A

Shielding Shielded

DC Resistance (DCR) 7.41mOhm

Q @ Freq -

Frequency - Self Resonant -

Ratings -

Operating Temperature -55°C ~ 125°C

Inductance Frequency - Test 100 kHz

Mounting Type Surface Mount

Package / Case Nonstandard

Supplier Device Package -

Size / Dimension 0.270" L x 0.255" W (6.86mm x 6.47mm)

Height - Seated (Max) 0.118" (3.00mm)

Datasheet & Documents

Environmental & Export Classification

RoHS Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) 1 (Unlimited)
REACH Status REACH Unaffected
ECCN EAR99
HTSUS 8504.50.4000

Additional Information

Standard Package
2,000

Alternative Parts

View Details
PART NUMBER
MANUFACTURER
QUANTITY AVAILABLE
DiGi PART NUMBER
UNIT PRICE
SUBSTITUTE TYPE
0630CDMCDDS-R82MC
Sumida America Components Inc.
2335
0630CDMCDDS-R82MC-DG
0.2573
Direct

Reviews

5.0/5.0-(Show up to 5 Ratings)
Vib***yage
Dec 02, 2025
5.0
I haven't experienced any delays, which speaks volumes about their operational reliability.
Seren***Spring
Dec 02, 2025
5.0
The overall shopping experience was seamless and efficient, showcasing DiGi Electronics' commitment to customer satisfaction.
Lumi***sPath
Dec 02, 2025
5.0
Choosing DiGi Electronics means investing in reliable and affordable technology.
Meado***isper
Dec 02, 2025
5.0
Their logistics and packaging convey a message of reliability and excellence.
Golde***nshine
Dec 02, 2025
5.0
物流速度令人印象深刻,几天内便迅速送达,体验非常顺畅。
Dazz***gDawn
Dec 02, 2025
5.0
DiGi Electronics' products are built to last, and their delivery service is equally dependable.
Sassy***flower
Dec 02, 2025
5.0
The packaging design is thorough and secure, preventing any damage during transit.
Rain***Haven
Dec 02, 2025
5.0
The quality of their electronics is remarkable, and prices are always competitive.
Dayd***mDaze
Dec 02, 2025
5.0
Received my order swiftly, and the eco-conscious packaging showed their dedication to the environment.
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Frequently Asked Questions (FAQ)

Can the IHLP2525CZERR82M07 be used in high-frequency DC-DC converters above 2 MHz, and what are the core loss risks at elevated switching frequencies?

The IHLP2525CZERR82M07 is optimized for applications up to approximately 1 MHz; above this, core losses can increase significantly due to its ferrite-based material without published Q or self-resonant frequency specs. In designs operating above 2 MHz, such as those using the TPS546D24, inductor core heating and reduced efficiency are key risks. If high-frequency operation is required, consider alternatives like the Würth 74439351820 (820 nH, 11 A) with better high-Q performance, or validate thermal performance empirically under load, using IR imaging and waveform analysis to detect saturation or overheating in the IHLP2525CZERR82M07.

How does the ±20% tolerance of the IHLP2525CZERR82M07 affect loop stability in tightly regulated power supplies, and should I design for worst-case inductance?

The ±20% tolerance on the IHLP2525CZERR82M07 means actual inductance can range from 656 nH to 984 nH, which can shift crossover frequency and phase margin in voltage-mode control loops. In sensitive applications like FPGA core rails (e.g., with Xilinx Zynq UltraScale+), this variability risks instability or transient overshoot. Always simulate the control loop using both min and max inductance values in SPICE, and ensure compensation provides adequate phase margin across the tolerance and temperature range. If tighter regulation is needed, consider feedback calibration or a more stable inductor type.

Is the IHLP2525CZERR82M07 a reliable drop-in replacement for the 0630CDMCDDS-R82MC in high-current POL designs, and are there PCB layout differences to watch?

The IHLP2525CZERR82M07 can serve as a functional replacement for the 0630CDMCDDS-R82MC, offering similar 820 nH rating and higher saturation current (24 A vs. ~20 A), but the footprint differs slightly (6.86mm x 6.47mm vs. 6.3mm x 6.0mm). Ensure PCB land patterns are updated to match the larger Vishay package to prevent solder tombstoning or thermal imbalance. Also, the lower DCR (7.41 mΩ vs. ~9 mΩ) improves efficiency but may require re-tuning of current-sense thresholds in DCR-based current monitoring circuits.

What thermal derating should be applied to the IHLP2525CZERR82M07 in enclosed industrial environments where ambient temperatures reach 105°C?

While the IHLP2525CZERR82M07 is rated for 13 A at 40°C and operates up to 125°C case temperature, in enclosed systems at 105°C ambient, significant current derating is necessary due to limited airflow and PCB heating. Expect to derate load current by 30–50% depending on board copper density and proximity to other hot components. Use thermal vias under the inductor's base and solid ground planes to improve heat dissipation. Monitor inductor temperature under full load to ensure ΔT ≤ 40°C rise above ambient, avoiding long-term aging or insulation degradation.

Does the molded shield of the IHLP2525CZERR82M07 provide sufficient EMI suppression for automotive ADAS applications near sensitive RF receivers?

The IHLP2525CZERR82M07’s molded shield offers good magnetic field containment, reducing radiated EMI compared to unshielded types, but in noise-sensitive ADAS systems (e.g., 77 GHz radar modules powered by buck converters), residual high-frequency harmonics may still couple. For compliance with CISPR 25, supplement the IHLP2525CZERR82M07 with input filtering (e.g., common-mode chokes) and controlled switching slew rates. Avoid routing low-level analog or RF traces directly under or adjacent to the inductor, and validate emissions in the final enclosure with near-field probes to detect hotspots.

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