• HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz

HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz

Products Main features:
1、Axial leaded connection.
2、High thermal conductivity epoxy compound molding.
3、Excellent surge current resistance
4、Special high temperature resistant chip
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • HVRM5- Low frequency high voltage diode 5KV,2A,50-60Hz
  • Desciption

  • data sheet

  • Installation Guide

 HVRM5  Low frequency high voltage diode Data Sheet 
 Parameter Symbol Unit Test Conditions Value
 Repetitive Peak Backward Voltage Vrrm KV Ta=25℃  Ir=2.0μA 5
 Peak Working Backward Voltage Vrwm KV Ta=25℃  Ir=2.0μA 5
 Average Forward Current If(AV) A 50Hz Half-sine Wave , Resistance load @Tbreak=50℃ 2
 Backward Recovery Time Trr nS   --
 Surge Forward Current Ifsm A 0.01S @ Half-Sine wave  50Hz 180
 Operating Ambient Temperature Ta ℃   -55~+175
 Storage Temperature Tstg ℃   -55~+150
 Forward Peak Voltage Vfm V   ≥6.0
 Backward Peak  Current Irrm1 μA @ Ta=25℃ VRM=VRRM 2.0
Irrm2 μA @ Ta=100℃ VRM=VRRM 20.0
 Absolute Maximum Ratings & Electrical Characteristics



A 5 kV Rectifier Rated for 2 A of Average Current

HVRM5 is the lowest-blocking member of the HVRM power-frequency line, and it carries the highest average current that line offers. Reverse blocking appears twice in the data — 5 kV repetitive peak (Vrrm) and 5 kV peak working (Vrwm), both measured at Ta = 25 °C with 2.0 µA of reverse current — while the forward side is rated 2 A average on a 50 Hz half-sine wave into a resistive load at Tbreak = 50 °C. Forward peak voltage is specified at ≥6.0 V, the lowest figure in the range, so every ampere of rectified current is bought with less forward drop than a higher-voltage build requires. This high voltage diode is a continuous-duty part for mains-frequency rectification, where the working peak stays under 5 kV and the average current stays at or below 2 A.

How the Package Supports the Rating

  • Axial leads on a molded body — the leads exit at both ends, so the part seats in through-hole positions, tag strips and hand-wired rectifier frames, and it can be lifted out and replaced during service without a reflow profile.
  • High thermal conductivity epoxy molding — the compound is chosen to conduct heat from the chip to the surface, which matters most inside a sealed box, a potted assembly or an oil-filled tank where air cannot move across the body.
  • 180 A surge forward current — a 0.01 s half-sine pulse at 50 Hz passes without damage, covering the inrush of charging a capacitor bank at switch-on and the short line transients that reach a rectifier in service.
  • Low forward peak voltage for the class — at ≥6.0 V it is the smallest value published in the HVRM power-frequency range, so the part adds less heat per amp than a higher-voltage sibling.
  • A die rated for hot surroundings — operating ambient spans -55 °C to +175 °C, so blocking behaviour holds near transformers, inside oil tanks and in cabinets that are already warm before the diode is fitted.

Circuit Positions That Suit This Rating

  1. Single-phase 50-60 Hz rectifier stages where the secondary peak stays below 5 kV and the average current stays at or under 2 A — the diode blocks on one half of the cycle and conducts on the other, so both ratings are in use at once.
  2. Diode PCB assemblies and hand-wired rectifier frames — the leaded body mounts on a board and can be unsoldered for replacement instead of scrapping the assembly around it.
  3. Series strings for higher working peaks — two or more high voltage diodes connected end to end share the reverse voltage when a single 5 kV device cannot cover the circuit.
  4. Bench supplies and prototype builds — published leakage, forward drop and surge figures let a rectifier be sized on paper before any parts are ordered.

Where This Part Stops

Three limits define the part. Reverse recovery time is not specified for it: at 50-60 Hz the diode is either conducting or blocking for most of the cycle, and a design that switches in the kilohertz range belongs with a fast-recovery or ultra-fast-recovery type instead. Average forward current stops at 2 A, so a heavier load calls for a different device rather than a hotter-running one. Blocking stops at 5 kV; above that the HVRM line continues up to 15 kV, and as high voltage diode manufacturers we supply the higher-voltage steps as well. Two practical notes: storage is rated -55 °C to +150 °C, narrower at the top than the operating range, and the 180 A figure describes a 0.01 s half-sine current pulse rather than a sustained overload.

Mounting Medium and Surface Insulation

  • Insulating oil first — immersion carries heat away from the body and suppresses the surface discharges that gather around any high-voltage junction, and it is the arrangement the data sheet recommends when the full 5 kV has to be held continuously.
  • Insulating gas gives a similar result inside sealed enclosures.
  • Potted or secondary-encapsulated builds make the surrounding compound part of the heat path, so the losses and the compound's behaviour across the ambient range deserve attention while the enclosure is being designed.
  • Open air is the hardest case — a small body in still air dissipates less heat and is more likely to discharge across its own surface, so leave clearance around it, add airflow if the cabinet allows, and fit insulated electrodes at both ends.
  • Surface coating — silicone cures to a clear, elastic rubber that absorbs shock and survives -40 °C to +200 °C swings; acrylic cures hard and clear with low moisture absorption and a short cure time; urethane is hard, wear-resistant and stable in the cold; epoxy-based coatings are rigid, usually opaque and strongest against moisture, chemicals and abrasion.

FAQ

Q1. Can this diode carry 2 A continuously?

Yes — 2 A is an average forward current rating, not a peak figure. It is measured on a 50 Hz half-sine wave into a resistive load at Tbreak = 50 °C, so the cooling your mounting provides decides how close you can sit to it. In insulating oil or a well-ventilated enclosure, running near 2 A is reasonable; inside a sealed or potted assembly the same current runs hotter, so keep margin or improve the heat path. Operating ambient is rated to +175 °C, and that is where the thermal budget ends.

Q2. How much does reverse leakage change as the diode warms up?

It roughly multiplies by ten between 25 °C and 100 °C: 2.0 µA at 25 °C and 20.0 µA at 100 °C, both measured at VRM = VRRM. In absolute terms the figure stays small, but the rise matters in a stack, because the warmest diode leaks the most and, without a sharing network, takes the largest share of the reverse voltage.

Q3. Why is the forward peak voltage lower on this model than on higher-voltage HVRM diodes?

Forward peak voltage on this build is ≥6.0 V, and the figure climbs as the blocking rating rises across the line. Staying at 5 kV therefore keeps conduction loss — and the heat it produces — at the low end of the family. A circuit that has been running a higher-rated part but never works above 5 kV can specify this build and its lower forward drop at the same current.

Q4. What is the difference between Vrrm and Vrwm on this part?

Vrrm is the repetitive peak reverse voltage the diode must block on every cycle; Vrwm is the peak working reverse voltage it holds in continuous operation. Both are specified at 5 kV for this model, at Ta = 25 °C with 2.0 µA of reverse current. Treat 5 kV as the ceiling for the working peak and leave margin underneath it for whatever transients the circuit can generate; as high voltage diode manufacturers we can look at the peak your layout actually applies.

Q5. Must the diode be oil-immersed, or can it run in air?

Oil immersion is the arrangement the data sheet recommends when the full reverse voltage has to be held continuously, with sealed insulating gas a close second. Open air is workable but is the hardest environment: a small body in still air dissipates less heat and is more likely to discharge across its own surface. Leave clearance around the body, add airflow if the enclosure allows, and fit insulated electrodes at both ends so the connections are not the weak point.

Q6. Can two of these diodes be connected in series for more than 5 kV?

Yes. A string of high voltage diodes is a normal way to reach a working peak above 5 kV, with each device holding its own share of the reverse voltage. Because leakage rises with temperature, a voltage-sharing network across the string is standard practice to keep any single diode from taking more than its share, and each device should still stay within its own 5 kV. Tell us the total voltage and current and we will work through the arrangement with you.

The selection of high-voltage diodes is closely related to their usage environment。

1. Used in insulating oil. (Recommended)
2. Used in insulating gases. (Recommended)
3. Secondary packaging use. (High requirements for heat dissipation and other parameter performance of components)
4. Use in exposed air or add air cooling. (If the size of the high-voltage diode is small, it is easy to discharge, and the heat dissipation performance is average.)

For high-voltage diodes used in exposed air, it is recommended to install them with insulated electrodes at both ends.




Common treatment methods for surface adhesive insulation:

Characteristics of insulation adhesive material:

1. Silicone material usually presents a transparent and elastic rubber state after curing, which is more effective in shock resistance and can also withstand severe stress changes caused by large high and low temperature changes (-40 ° C~200 ° C).

2. Acrylic materials typically exhibit a transparent and hard coating after curing, with low moisture absorption and fast curing time, as well as excellent wear resistance and insulation.

3. After curing, Urethane material usually presents a transparent and hard coating, which has superior wear resistance and good moisture resistance. Its performance is particularly stable in low temperature environments, but it is less resistant to high temperatures.

4. The coating material based on epoxy is very sturdy and usually opaque, with good moisture and moisture resistance. Its resistance to chemical corrosion and wear is also very good. In addition, epoxy also has good dielectric properties.

Here, suitable insulation adhesive materials can be selected based on the different usage situations of engineers.

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