593D106X9016A2TE3 >
593D106X9016A2TE3
Vishay Sprague
CAP TANT 10UF 10% 16V 1206
4345 Pcs New Original In Stock
10 µF Molded Tantalum Capacitors 16 V 1206 (3216 Metric) 1.7Ohm
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593D106X9016A2TE3 Vishay Sprague
5.0 / 5.0 - (205 Ratings)

593D106X9016A2TE3

Product Overview

947763

DiGi Electronics Part Number

593D106X9016A2TE3-DG

Manufacturer

Vishay Sprague
593D106X9016A2TE3

Description

CAP TANT 10UF 10% 16V 1206

Inventory

4345 Pcs New Original In Stock
10 µF Molded Tantalum Capacitors 16 V 1206 (3216 Metric) 1.7Ohm
CAD Models - PCB Symbols & Footprints
Quantity
Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 1 0.4996 0.4996
  • 10 0.3953 3.9530
  • 30 0.3512 10.5360
  • 100 0.2969 29.6900
  • 500 0.2322 116.1000
  • 1000 0.2176 217.6000
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593D106X9016A2TE3 Technical Specifications

Category Tantalum Capacitors

Manufacturer Vishay / Sprague

Packaging Tape & Reel (TR)

Series TANTAMOUNT™, 593D

Product Status Active

Capacitance 10 µF

Tolerance ±10%

Voltage - Rated 16 V

Type Molded

ESR (Equivalent Series Resistance) 1.7Ohm

Operating Temperature -55°C ~ 125°C

Lifetime @ Temp. -

Mounting Type Surface Mount

Package / Case 1206 (3216 Metric)

Size / Dimension 0.126" L x 0.063" W (3.20mm x 1.60mm)

Height - Seated (Max) 0.071" (1.80mm)

Lead Spacing -

Manufacturer Size Code A

Features General Purpose

Failure Rate -

Datasheet & Documents

HTML Datasheet

593D106X9016A2TE3-DG

Environmental & Export Classification

RoHS Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) 1 (Unlimited)
REACH Status REACH Unaffected
ECCN EAR99
HTSUS 8532.21.0050

Additional Information

Other Names
718-593D106X9016A2TE3TR
593D106X9016A2TE3-DG
718-593D106X9016A2TE3CT
718-593D106X9016A2TE3DKR
Standard Package
2,000

Alternative Parts

PART NUMBER
MANUFACTURER
QUANTITY AVAILABLE
DiGi PART NUMBER
UNIT PRICE
SUBSTITUTE TYPE
T491A106K016ZT
KEMET
801
T491A106K016ZT-DG
0.1645
Similar
TAJA106K016SNJ
KYOCERA AVX
1404
TAJA106K016SNJ-DG
0.1645
MFR Recommended
3-1879062-1
TE Connectivity Passive Product
912
3-1879062-1-DG
0.1645
Similar
TR3A106M016C1700
Vishay Sprague
1188
TR3A106M016C1700-DG
0.1645
Upgrade
593D106X0016A2TE3
Vishay Sprague
873
593D106X0016A2TE3-DG
0.1645
Upgrade

Reviews

5.0/5.0-(Show up to 5 Ratings)
별들***이는밤
de desembre 02, 2025
5.0
물류와 고객 지원 모두 만족스럽고, 항상 기대를 뛰어넘는 서비스를 제공해 주세요.
바람***추기
de desembre 02, 2025
5.0
빠른 배송 덕분에 정말 긴급한 작업도 차질없이 진행했어요. 제품도 튼튼해서 추천합니다.
夕***間
de desembre 02, 2025
5.0
DIYに最適な高品質な製品が揃っており、スタッフもいつも親切に対応してくれます。
こ***おと
de desembre 02, 2025
5.0
操作が直感的で迷わず買い物でき、スピーディな発送にも大変満足しています。
きらめ***さやき
de desembre 02, 2025
5.0
カスタマーサポートの対応が迅速かつ丁寧で、好印象です。
Fore***Vibes
de desembre 02, 2025
5.0
Their focus on value means I often find high-quality products at lower prices.
Fros***Winds
de desembre 02, 2025
5.0
They continually provide excellent support, reinforcing our trust in their brand.
Lumin***Sunset
de desembre 02, 2025
5.0
Shipping estimates are accurate, and delivery is always prompt.
Rus***Rose
de desembre 02, 2025
5.0
I was impressed by the sturdy and well-designed packaging, which adds to the overall value of DiGi Electronics products.
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Frequently Asked Questions (FAQ)

What are the key design-in risks when using the 593D106X9016A2TE3 in high-temperature environments near 125°C?

When designing the 593D106X9016A2TE3 into circuits operating near 125°C, engineers must account for increased risk of thermal runaway due to its molded tantalum construction and 1.7Ω ESR. While the part is rated for -55°C to 125°C, sustained high temperatures reduce effective lifetime and reliability, especially under ripple current loads. To mitigate risk, ensure derating of applied voltage to 50% of rated 16 V (i.e., ≤8 V), minimize PC board hot spots via thermal vias, and avoid placing near power-dissipating components. Additionally, verify that the PCB layout provides sufficient copper for heat dissipation without exceeding maximum seated height constraints.

How does the 593D106X9016A2TE3 compare to the AVX TAJ106K016RNJ in terms of ESR and reliability for power rail decoupling?

The 593D106X9016A2TE3 has a slightly lower ESR (1.7Ω) compared to the AVX TAJ106K016RNJ (typically 1.8Ω at 100 kHz), making the Vishay part marginally better for mid-frequency noise filtering in power rails. However, the AVX TAJ series often demonstrates superior surge current performance and lower field failure rates in transient-heavy applications. For mission-critical or automotive designs, consider reliability data and surge testing—while both are 10µF 16V 1206 tantalums, the Vishay 593D106X9016A2TE3 lacks explicit surge rating in its datasheet, increasing risk during power-up transients. Use current-limiting circuits or consider MnO₂ polymer hybrids like the Panasonic SP-Cap POSCAP for improved robustness.

Can the 593D106X9016A2TE3 be safely used as a drop-in replacement for the obsolete KEMET T491C106K016AT?

The 593D106X9016A2TE3 can serve as a functional replacement for the obsolete KEMET T491C106K016AT with important caveats: both are 10µF ±10%, 16V, 1206 molded tantalums, but the KEMET part historically featured lower ESR (around 1.5Ω) and better transient response. The Vishay 593D106X9016A2TE3’s 1.7Ω ESR may impact performance in high-speed switching circuits. Additionally, verify board footprint compatibility—though both use 1206, pad layouts optimized for KEMET’s internal geometry might need reflow profile adjustments. Always validate with in-circuit ripple current testing and confirm voltage derating practices are strictly followed to avoid latent field failures.

What PCB layout practices should I follow to minimize failure risks with the 593D106X9016A2TE3 in densely populated SMT assemblies?

To minimize failure risks with the 593D106X9016A2TE3 in dense SMT layouts, avoid placing thermal vias directly under the capacitor footprint, which can wick solder and create uneven joints. Use symmetrical, moderate-sized pads per IPC-7351 (3216 metric) to prevent tombstoning during reflow. Keep the 593D106X9016A2TE3 away from high-mass components or heat sources that create thermal gradients. Given its MSL 1 rating, storage isn't a concern, but ensure reflow profiles stay within JEDEC J-STD-020 limits—peak temperatures above 260°C increase the risk of cracking the molded case or damaging the Ta₂O₅ dielectric. Use X-ray inspection to verify solder joint integrity in high-reliability applications.

What are the main failure mechanisms to watch for when replacing ceramic capacitors with the 593D106X9016A2TE3 in a DC-DC converter output filter?

Replacing ceramic capacitors with the 593D106X9016A2TE3 in a DC-DC converter output filter introduces key failure risks: unlike ceramics, the 593D106X9016A2TE3 exhibits voltage coefficient effects (capacitance drop under bias), though less severe than BaTiO₃ ceramics. More critically, its failure mode is short-circuit, potentially causing thermal runaway without current limiting. Tantalum caps also lack the high-frequency effectiveness of low-ESL ceramics. Best practice: use the 593D106X9016A2TE3 in parallel with a small ceramic (e.g., 1µF X7R 0603) to handle high-frequency ripple, ensure input inrush and output short-circuit protection, and limit applied voltage to ≤8 V. Monitor temperature rise under load with thermal imaging during validation.

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