VHM

Short Description:

Polymer Hybrid Aluminum Electrolytic Capacitor

Miniaturized and large-capacity upgraded products of the VHT series, low ESR, high allowable ripple current, and high reliability

125℃ 4000 hours guarantee

It can meet the requirements of vibration resistance, surface mount type, high temperature lead-free reflow soldering, complies with AEC-Q200 and has responded to the RoHS directive


Product Detail

Product Tags

Technical Parameter

Series Life(Hrs) Features Rated voltage range (V.DC) Rated capacitance (uF) Operating temperature range (°C)
VHM 4000 125℃ Low ESR 16~100 3.3~1800 -55~125

The main technical parameters

Item characteristic
range of working temperature -55~+125℃
Rated working voltage 16~100V
capacity range 3.3-1800 uF 120Hz 20℃
Capacity tolerance ±20% (120Hz 20℃)
loss tangent 120Hz 20℃ below the value in the list of standard products
Leakage current※ Below 0.01 CV(uA), charge at rated voltage for 2 minutes at 20°C
Equivalent Series Resistance (ESR) 100kHz 20°C below the value in the list of standard products
Temperature Characteristics (Impedance Ratio) Z(-25℃)/Z(+20℃)≤2.0 ; Z(-55℃)/Z(+20℃)≤2.5 (100kHz)
Durability At a temperature of 125°C, apply a rated voltage including a rated ripple current for a specified period of time, and then place it at 20°C for 16 hours before testing, the product should meet
Capacitance change rate ±30% of initial value
Equivalent Series Resistance (ESR) ≤200% of the initial specification value
loss tangent ≤200% of the initial specification value
leakage current ≤Initial specification value
local temperature storage Store at 125°C for 1000 hours, place it at room temperature for 16 hours before testing, test temperature: 20°C±2°C, the product should meet the following requirements
Capacitance change rate ±30% of initial value
Equivalent Series Resistance (ESR) ≤200% of the initial specification value
loss tangent ≤200% of the initial specification value
leakage current to initial specification value
Note: Products stored at high temperature must undergo voltage treatment.
High temperature and humidity After applying the rated voltage for 1000 hours at 85°C and 85%R.H humidity, and placing it at 20°C for 16 hours, the product should meet
Capacitance change rate ±30% of initial value
Equivalent Series Resistance (ESR) ≤200% of the initial specification value
loss tangent ≤200% of the initial specification value
leakage current ≤Initial specification value

※When in doubt about the leakage current value, please place the product at 105°C and apply the rated working voltage for 2 hours, and then conduct the leakage current test after cooling down to 20°C.

Product Dimensions (Unit:mm)

ΦD B C A H E K a
6.3 6.6 6.6 2.6 0.70±0.20 1.8 0.5MAX ±0.5
8 8.3(8.8) 8.3 3 0.90±0.20 3.1 0.5MAX
10 10.3(10.8) 10.3 3.5 0.90±0.20 4.6 0.70±0.20

frequency correction factor

Capacitance C Frequency (Hz) 120Hz 500Hz 1kHz 5kHz 10kHz 20kHz 40kHz 100kHz 200kHz 500kHz
C<47uF correction
factor
0.12 0.2 0.35 0.5 0.65 0.7 0.8 1 1 1.05
47uF≤C<120uF 0.15 0.3 0.45 0.6 0.75 0.8 0.85 1 1 1
C≥120uF 0.15 0.3 0.45 0.65 0.8 0.85 0.85 1 1 1

List Of Standard Products

Rated voltage Nominal capacity (uF) Product DimensionDxL(mm) tanδ 120Hz ESR (mΩ 100kHz) Rated ripple current Model
(surge voltage) (V) (mA r.m.s/125℃100kHz) Standard Products Earthquake-resistant products
16(18.4) 82 5x5.8 0.12 80 850 VHMB0581c820MVCG
16(18.4) 150 6.3x5.8 0.12 45 1400 VHMC0581C151MVCG
16(18.4) 220 6.3x77 0.12 27 2000 VHMC0771C221MVCG ---
16(18.4) 560 8x10.5 0.12 22 2200 VHMD1051C561MVCG VHMD1051C561MVKZ
16(18.4) 1000 10x10.5 0.12 18 2800 VHME1051C102MVCG VHME1051C102MVKZ
16(18.4) 1200 10x13 0.12 16 3200 VHME1301C122MVCG VHME1301C122MVKZ
16(18.4) 1800 10x17 0.12 12 4100 VHME1701C182MVCG VHME1701C182MVKZ
25(28.8) 56 5x5.8 0.12 80 850 VHMB0581E560MVCG
25(28.8) 100 6.3x5.8 0.12 50 1300 VHMC0581E101MVCG
25(28.8) 180 6.3x77 0.12 30 1800 VHMC0771E181MVCG
25(28.8) 330 8x10.5 0.12 27 2000 VHMD1051E331MVCG VHMD1051E331MVKZ
25(28.8) 560 10x10.5 0.12 20 2800 VHME1051E561MVCG VHME1051E561MVKZ
25(28.8) 820 10x13 0.12 16 3200 VHME1301E821MVCG VHME1301E821MVKZ
25(28.8) 1000 10x17 0.12 12 4100 VHME1701E102MVCG VHME1701E102MVKZ
35(41) 39 5x5.8 0.12 100 750 VHMB0581V390MVCG
35(41) 68 6.3x5.8 0.12 60 1200 VHMC0581V680MVCG
35(41) 120 6.3x77 0.12 35 1800 VHMC0771V121MVCG
35(41) 220 8x10.5 0.12 27 2000 VHMD1051V221MVCG VHMD1051V221MVKZ
35(41) 390 10x10.5 0.12 20 2800 VHME1051V391MVCG VHME1051V391MVKZ
35(41) 560 10x13 0.12 16 3200 VHME1301V561MVCG VHME1301V561MVKZ
35(41) 680 10x17 0.12 12 4100 VHME1701V681MVCG VHME1701V681MVKZ
50(58) 12 5x5.8 0.1 120 650 VHMB0581H120MVCG
50(58) 22 63x5.8 0.1 80 1000 VHMC0581H220MVCG
50(58) 33 6.3x77 0.1 40 1600 VHMC0771H330MVCG
50(58) 82 8x10.5 0.1 30 1800 VHMD1051H820MVCG VHMD1051H820MVKZ
50(58) 150 10x10.5 0.1 25 2200 VHME1051H151MVCG VHME1051H151MVKZ
50(58) 220 10x13 0.1 20 2400 VHME1301H221MVCG VHME1301H221MVKZ
50(58) 270 10x17 0.1 12 3850 VHME1701H271MVCG VHME1701H271MVKZ
63(73) 8.2 5x5.8 0.1 120 650 VHMB0581J8R2MVCG
63(73) 15 63x5.8 0.1 80 1000 VHMC0581J150MVCG
63(73) 22 6.3x77 0.1 50 1600 VHMC0771J220MVCG
63(73) 56 8x10.5 0.1 40 1800 VHMD1051J560MVCG VHMD1051J560MVKZ
63(73) 100 10x10.5 0.1 30 2200 VHME1051J101MVCG VHME1051J101MVKZ
63(73) 150 10x13 0.1 20 2400 VHME1301J151MVCG VHME1301J151MVKZ
63(73) 180 10x17 0.1 12 3850 VHME1701J181MVCG VHME1701J181MVKZ
80(92) 5.6 5x5.8 0.1 120 650 VHMB0581K5R6MVCG
80(92) 10 63x5.8 0.1 80 1000 VHMC0581K100MVCG
80(92) 15 6.3x77 0.1 50 1500 VHMC0771K150MVCG
80(92) 39 8x10.5 0.1 40 1800 VHMD1051K390MVCG VHMD1051K390MVKZ
80(92) 68 10x10.5 0.1 30 2000 VHME1051K680MVCG VHME1051K680MVKZ
80(92) 82 10x13 0.1 20 2200 VHME1301K820MVCG VHME1301K820MVKZ
80(92) 120 10x17 0.1 12 3650 VHME1701K121MVCG VHME1701K121MVKZ
100(115) 3.3 5x5.8 0.1 120 650 VHMB0582A3R3MVCG
 
Rated voltage Nominal capacity (uF) Product Dimension tanδ 120Hz ESR (mΩ100kHz) Rated ripple current Model
(surge voltage) (V) DxL(mm) (mA r.m.s/125℃100kHz) Standard Products Earthquake-resistant products
100(115) 5.6 63x5.8 0.1 80 1000 VHMC0582A5R6MVCG
100(115) 10 6.3x77 0.1 50 1500 VHMC0772A100MVCG
100(115) 22 8x10.5 0.1 40 1800 VHMD1052A220MVCG VHMD1052A220MVKZ
100(115) 39 10x10.5 0.1 30 2000 VHME1052A390MVCG VHME1052A390MVKZ
100(115) 56 10x13 0.1 20 2200 VHME1302A560MVCG VHME1302A560MVKZ
100(115) 82 10x17 0.1 12 3650 VHME1702A820MVCG VHME1702A820MVKZ

Conductive polymer hybrid aluminum electrolytic capacitors are a type of capacitor that combines the benefits of both aluminum electrolytic and conductive polymer capacitors. They are widely used in the electronics industry due to their high capacitance, low ESR, and long lifespan. In this guide, we'll explore how these capacitors work and why they're a preferred choice for many applications.

Introduction to Conductive Polymer Hybrid Aluminum Electrolytic Capacitors.

Conductive polymer hybrid aluminum electrolytic capacitors are a type of capacitor that has gained popularity in recent years due to their unique combination of features. These capacitors are made by combining the benefits of aluminum electrolytic capacitors and conductive polymer capacitors, resulting in a capacitor that has high capacitance, low ESR, and a long lifespan. In this guide, we'll take a closer look at how these capacitors work and why they're a preferred choice in the electronics industry.

How Conductive Polymer Hybrid Aluminum Electrolytic Capacitors Work.

Conductive polymer hybrid aluminum electrolytic capacitors work by combining the benefits of two different types of capacitors. The aluminum electrolytic capacitor provides high capacitance, while the conductive polymer capacitor provides low ESR (Equivalent Series Resistance) and a long lifespan. The conductive polymer layer is added to the aluminum electrolytic capacitor to improve its performance. The conductive polymer layer is made up of a conductive polymer material that is added to the aluminum oxide layer of the capacitor. This layer helps to reduce the ESR of the capacitor and improve its performance. The result is a capacitor that has high capacitance, low ESR, and a long lifespan, making it a preferred choice in the electronics industry.

Advantages of Conductive Polymer Hybrid Aluminum Electrolytic Capacitors.

Conductive polymer hybrid aluminum electrolytic capacitors offer several advantages over traditional capacitors. Firstly, they have a longer lifespan due to the conductive polymer layer, which helps to prevent the formation of aluminum oxide. This means that they can be used in applications where reliability is crucial, such as in automotive electronics or medical devices. Secondly, they have a lower ESR, which means that they can handle higher ripple currents and provide better filtering performance. Finally, they have a higher capacitance than other types of capacitors, which makes them ideal for use in high-power applications. Overall, conductive polymer hybrid aluminum electrolytic capacitors are a reliable and efficient choice for many different electronic applications.

Applications of Conductive Polymer Hybrid Aluminum Electrolytic Capacitors.

Conductive polymer hybrid aluminum electrolytic capacitors are used in a wide range of electronic applications due to their reliability and efficiency. They are commonly used in automotive electronics, medical devices, power supplies, and telecommunications equipment. In automotive electronics, they are used in engine control units, airbag systems, and navigation systems. In medical devices, they are used in pacemakers, defibrillators, and other implantable devices. In power supplies, they are used in voltage regulators, DC-DC converters, and inverters. In telecommunications equipment, they are used in base stations, routers, and switches. Overall, conductive polymer hybrid aluminum electrolytic capacitors are a versatile component that can be used in many different electronic applications.

Choosing the Right Conductive Polymer Hybrid Aluminum Electrolytic Capacitor for Your Project.

When choosing a conductive polymer hybrid aluminum electrolytic capacitor for your project, there are several factors to consider. First, consider the voltage rating and capacitance required for your application. You should also consider the operating temperature range and the expected lifespan of the capacitor. Additionally, it's important to consider the size and shape of the capacitor, as well as any specific mounting requirements. Finally, consider the manufacturer's reputation for quality and reliability, as well as any certifications or approvals that may be required for your application. By carefully considering these factors, you can choose the right conductive polymer hybrid aluminum electrolytic capacitor for your project and ensure reliable performance over the long term.

 


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