储能柜尼龙绝缘件湿热电痕化?那不是脏东西,是碳化通道

应用领域 发布时间: 2026-09-16 3402 阅读

After one or two years of use, the insulation inside the energy storage cabinet shows dark branch-like patterns on the surface, with slight indentations to the touch.

This isn't dirt, it's a carbonization channel. Once it forms, it's irreversible and continues to develop along the lines, eventually leading to insulation breakdown.

This phenomenon is called leakage marking, and in the industry, it's often called 'marking' or 'tracking.' It's not the same as material aging, and the troubleshooting direction is completely different.

The damp heat and electric marking of energy storage cabinets is a unique challenge in southern projects.

After a year of running in high-humidity coastal environments, carbonization conduction paths appeared on the insulation surfaces.

Once the paths connect, leakage current alarms and the entire cabinet shuts down.

One integrator compared insulation parts from three companies in the same cabinet, and a year-long live competition produced the true champion.

Damp heat, dirt, and electric field—only when all three variables are present does electric marks appear.

None of these are fatal; if they are all present, it's a ticking time bomb.

1. What is leakage marking ?

The definition of leakage marks is: under the combined action of electric field and pollution (humidity, conductive dust), localized carbonized conductive channels form on the material surface.

It requires three conditions to exist simultaneously:

First, voltage. The higher the voltage, the faster it occurs.

Second, pollution and humidity. The surface contains electrolyte or moist pollutants, forming a weak current path.

Third is the material surface itself. Different materials have different resistance to carbonization, which is measured by CTI.

If any of these three conditions are missing, none will occur. This means that troubleshooting must start from all three at once, rather than focusing solely on the material.

Second, why are energy storage cabinets especially prone to contamination ?

The operating environment of the storage cabinet almost meets all three conditions.

First, damp heat and condensation. Large temperature and humidity fluctuations inside the cabinet can cause condensation between day and night, with hundreds of cycles per year.

Second, pollution. Inside the cabinet, dust, conductive particles, and condensate work together to form a conductive thin layer on the surface of the insulator.

Third, long-term voltage. Energy storage systems are DC systems, and the issue of marking under DC voltage is usually more pronounced than AC, because the direction of the electric field is constant and the electrolytic effect is more sustained.

Four-character summary: wet, dirty, electric, long. These four words together determine that insulation components in energy storage cabinets must be chosen more conservatively than ordinary electrical components.

Three, four-step inspection sequence

Step one: Check the location and environment. Check whether the problematic parts are in the condensation zone, are near live parts, and whether the surface easily accumulates dust. This step costs almost nothing, but can eliminate more than half of the direction.

Step two: Check the material's CTI and test status. If the supplier provides dry data, first request supplementary wet state data; dry CTI is not representative in the energy storage cabinet.

Step 3: Calculate creepage distance. Many scars attributed to material issues stem from insufficient surface distance in structure. How much distance is left in the structure should be rechecked according to standards and actual contamination levels.

Step 4: Check the process and surface. Welding lines, surface defects, and release agent residues all make localized contamination more prone and marks more easily. The same material and structure may differ in surface condition by a different grade.

4. Material-side countermeasures

The core goal on the material side is simple: improve CTI under humidity regulation.

Several effective directions:

First, reduce the use of halogen-based flame-retardant systems. Some halogen-based systems negatively affect CTI and require special evaluation under high CTI requirements.

Second, control the type and proportion of fillers. Fiberglass and some fillers affect surface carbonization tendency, so high-CTI systems often have specially designed fillers.

Third, focus on water absorption rate. The lower the water absorption rate, the more stable the electrical performance under humid conditions.

Fourth, require CTI data after aging. After prolonged humid heat, CTI may decrease, so selecting materials based on aging data is reliable.

Among these four, the fourth is the easiest to miss and the hardest to refill.

Fifth, Structural Countermeasures

Structures often show results faster than materials and are less costly.

First, increase creepage distance. The most direct method is provided space allows.

Second, create grooves and reinforcement. Adding a groove to creepage path can significantly extend effective distance while interrupting the continuity of dirt accumulation.

Third, anti-condensation design. Improve ventilation inside cabinets, avoid localized low-temperature zones, or add dehumidifiers, which can reduce one factor at the source.

Fourth, avoid sharp corners and depressions. These areas are prone to water and dust accumulation, which are the starting point for marking.

The second of the four offers the best cost-performance: without changing materials or formulas, just changing the structure, many cases can reduce risk.

VI. Verification Method

(1) Humidity state CTI test, performed according to standards, indicating contaminated liquid and conditions.

(2) CTI re-testing after aging, performing again after damp heat aging to see the degree of decrease.

(3) Contamination droplet test, simulating actual contamination conditions.

(4) Salt spray plus power-on test, if the cabinet is in a coastal environment.

(5) Insulation and voltage resistance of the entire machine, assembled according to actual structure and post-test.

Of these five items, three were measured under humid and hot conditions, not repeatedly, but because the actual operating conditions of the energy storage cabinet are long-term humidity.

If you relax humidity conditions for any item, the conclusion tends to be optimistic, and the price of such optimism is usually paid after two years.

adds a practical suggestion: test contaminated liquids as close to reality as possible. Standard contaminated liquids are standardized, but the composition of contaminants inside the cabinet is not uniform. If conditions allow, conduct a round of comparative testing with on-site sampling, which is more valuable as a reference. Good results obtained on a dry lab bench do not reflect on-site performance.

The mechanism of damp heat electric marking is worth explaining in detail.

Moisture forms a water film on the insulating surface, and dirty substances dissolve into the water film to become conductive liquid.

Current leaks along the surface of the electric field heats the water film, causing local dry zones to trigger sparks.

Sparks repeatedly ignite, carbonizing the surface into conductive paths—this is electric marks.

CTI Materials with higher levels require greater voltage to form marks, so the safety margin is larger.

For insulation components in energy storage cabinets, CTI ratings should be raised by one level according to pollution level and ambient humidity.

For coastal projects, the industry standard is the minimum requirement, not the target value.

Raising the material grade by one level is much cheaper than losing a single shutdown.

Follow-up question 1: What is the appropriate CTI rating?

Starting by pollution level, raising the threshold one level for hot and humid environments, then for coastal projects. The cost of raising the level is much lower than the cost of accidents. Some integrators include the superficial rules in procurement specifications, suppliers automatically check the schedule, and communication costs are reduced to zero.

Follow-up question two: Should insulation parts be cleaned regularly?

Yes, accumulated dirt lowers the effective CTI. The cleaning cycle in the operation manual is part of the insulation system, not optional. Some projects review electric mark incidents, with cleaning debts taking up half a page. No matter how well-designed the materials are, they can't withstand ten years without cleaning.

Tracking a single carbonization path

Insulation Alarm Alarm for Energy Storage Cabinet Insulation, Compare and Test to Select the Best Grade. Investigation Reveals Condensation Design Flaws Inside the Cabinet, Moisture Condenses and Forms a Film on the Insulation Surface. Changed Condensation Management, and Marks Disappeared. Among the three key elements of electrical marks, humidity often comes from structural design, not material. Failure analysis requires considering all three factors together; focusing solely on materials can cause leaks.

Four-Gate Insulation for Damp Heat

Material CTI Raising, Structural Anti-Condensation, Operation & Maintenance Cleaning Cycle, Actual Inspection Annual Inspection. Four gates are set up at every level to ensure insulation in humid and hot environments.

To put it away: Electrical marks in damp heat are chronic, silent, and preventable. They punish luck and reward redundancy. Every lucky moment the energy storage industry has during the installation rush will be recouped back in a rainy season.

Energy Storage Cabinet Insulation Components Also Have an O&M Supplement. Infrared thermal imaging inspections can detect early signs of electric marks; local overheating points are signals. Incorporating infrared inspections into the operation and maintenance procedures of energy storage power stations advances the detection time of electric mark incidents from year to month. Material selection prevents marking, and maintenance inspections focus on early stages; only by being strong can the loop be closed. Some integrated companies' infrared regulations mark the baseline temperature of each insulator, which inspections compare and score. The more specific the standard actions, the less deviated the execution. The cleaning standards for

insulating components also deserve refinement. Salt spray deposits quickly along the coast, and the cleaning cycle is twice as short as inland. Cleaning agent selection is also important; strong solvents damage insulation surfaces and reverse electric marks to open the circuit. The cleaning agent list in the maintenance manual is a relay baton from materials engineers to maintenance colleagues. Only when this baton is passed on properly can the hard work on the materials side be fully implemented.

List Summary

Energy Storage Insulation Component Designated Data Package: CTI level after floating, anti-condensation structure review, cleaning cycle and cleaning agent list, infrared inspection benchmark, actual annual inspection data. Insulation components are quiet, but they protect the electrical safety of the entire cabinet. The rigor of the data pack is a tribute to safety.

Energy Storage Cabinet Insulation Components also offer a whole-machine perspective. Insulation components are not isolated parts; they form an insulation system together with creepage distance, electrical gaps, and condensation management. With systematic thinking in material selection, material grades are not wasted. Some integrators held insulation system review meetings, comparing materials, structure, and operations and maintenance. The outcome of the system review was a division of labor chart: whoever takes the blame, and who handles their own tasks. The division of labor is simple and extremely valuable.

Aging monitoring of insulating components is also becoming intelligent. Some solutions place temperature and humidity sensors near insulating components, and the data is sent into the operation and maintenance platform. Sensor data digitizes the health status of insulating components, automatically alerting them for abnormal trends. One project's alarm system detected a warning sign of electrical marks three months in advance. The value of digitalization is turning silent failures into speaking warnings.

Extended Two Questions

Should Insulating Parts Be Made Flame-Retardant? Decide according to the cabinet's layout, with positions close to heat sources and wiring harnesses, and relaxed support positions. Focus on location and flame retardant to make costs reasonable.

Who is the primary responsibility for condensation management? Structural design should set ventilation ducts and heating, materials should provide moisture-resistant bottom lines, and operation and maintenance pipes should drain. All three parties should participate; only when clearly stated in the agreement can there be no conflicts.

Insulation in energy storage cabinets also depends on electrochemical undercurrents. Ion migration under DC electric fields is more concealed than AC, so DC testing for insulating components cannot be skipped. Some projects have insulating components that pass all AC tests, but their performance under DC conditions is discounted. Both AC and DC tests must be answered; this is the difference between energy storage insulation and traditional power distribution. This one is very high on the industry's lesson list. The assembly of

insulating components is also worth mentioning. Tightening interference between insulating and metal parts causes plastic parts to be under long-term pressure. The dielectric strength in the pressured zone is lower than in the free state. During design, the pressure zone should be avoided from the high electric field area, or grades with better voltage creep resistance should be selected. Some factories have incorporated the stress distribution of insulating components into electric field simulations, and after superimposing the simulation, the design is completed in one go. Coupling analysis of electric and stress fields is an advanced step in insulating component design. The material archives for

insulating components must also be maintained long-term. CTI, dielectric, and aging data for each batch of materials are archived, allowing any abnormalities during ten-year operation and maintenance to be traced back. Some integrators treat insulating component files as transaction assets, and the files follow when the power station is transferred. The archival perspective of assets gives quality management depth over time. The thicker the file, the more confident the operation and maintenance will be.

Last Q&A

Question: Are there any requirements for insulating component color? There are no strict functional requirements; lighter colors make it easier to visually check carbonization traces, which is preferred on the maintenance side.

Question: Can anti-fouling flashover paint be applied? Yes, the compatibility between the coating and insulating material must be verified; don't treat it like a universal safeguard.

Final Three Points

The test paper for energy storage insulation is both AC and DC; missing one is not a pass.

The coupling zone between electric field and stress is a key defense zone in insulating component design.

Material archives are a ten-year chain of evidence for operation and maintenance, so you need to remember them carefully from day one.

Energy storage insulation components also have a related scenario for DC breaking. DC breaking arcs are harder to extinguish than AC, and insulation components near the break point suffer more severe arc erosion. Arc resistance is weighted in the DC cabinet. When selecting materials, list the DC breaking points separately and verify arc resistance separately. Some factories classify by location, using a higher grade grade for DC insulation components. The old method of positional grading has proven effective again in DC scenarios. Surface treatment of

insulation components is also one of the options. Some solutions apply anti-fouling flash coatings to insulation surfaces, increasing the use of damp heat projects. The quality of coating construction determines effectiveness; inferior coatings tend to hide dirt. Some projects have coating peeling causing carbonization, which is worse than not coating at all. Supplier qualifications and construction acceptance for coatings must be handled simultaneously. Surface treatment is a double-edged sword; good use adds points, bad damage costs lives.

Insulation Parts Knowledge Map One last time. CTI grade sets the bottom line, condensation management determines environment, cleaning cycle sets operation and maintenance, DC operating conditions determine exam papers, archive management sets ten years. Beyond the five fixed principles, here's one more principle: insulating component failure is a systemic disease; treat the symptoms as a single point, treat the root cause systemically. Treat system problems as if they were a system, and only then can the insulation of energy storage cabinets safely survive the ten rainy seasons.

Conclusion

Chain for checking marks on insulation components in energy storage cabinets:

First, check the location and environment→ then check the humidity CTI →, then recalculate the creepage distance→ Finally, check the process and surface.

This is a different line from "material aging." Using the aging approach to check marks is biased from the start

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