雷达罩天线罩用什么改性尼龙?让电磁波几乎无损通过才行

应用领域 发布时间: 2026-09-16 1910 阅读

114 Radome and radome What modified nylon should be used ?

Wave-transmitting is the only hard metric

Radome and radome have only one function—to protect the internal antenna while allowing electromagnetic waves to pass through almost indestructively. All material selection revolves around this goal.

No conductive fillers (carbon fiber, metal powder, conductive carbon black) can be used—they reflect and absorb electromagnetic waves. Available reinforcing materials are only glass fiber and minerals, and low-dielectric grades of glass fiber should be chosen (D glass fiber is better than E glass fiber).

On-site Replication: Rain Decline Suspicion in an Field Test

Two summers ago, at a coastal shooting range, a newly installed antenna cover suddenly showed data drift after three consecutive days of sunshine. After rain that night, the drift worsened the next day.

's first reaction on site was equipment failure. After a full day of investigation, they pointed to the antenna itself, then finally removed the hood for comparison. The data immediately returned to normal—the problem was moisture absorption of the hood, whose dielectric constant changed after absorbing water, and its wave transmission performance also changed.

After this incident, the hood material was sent for saturation water absorption testing. The saturation absorption rate of general-grade nylon is several times higher than that of the modified solution, so it could absorb water properly in a high-humidity coastal environment within a month. After switching to a low-moisture absorption system and surface coating, during the same rainy season re-testing, drift converged within the system's allowable noise range.

The test team leader later said at the summary meeting: The material lesson was made up by both the equipment and materials sides.

The senior engineer at the range had a vivid explanation of moisture absorption: when the hood is fully watered, it's like coating the lens with a film of water—electromagnetic waves both enter and exit are discounted. This analogy isn't precise, but it explains the relationship between moisture absorption and dielectric properties to a level everyone on site can understand—more useful than reading parameter tables.

There's another detail recorded: drift appears in a regular pattern—it first appears in the high-humidity evening and then falls back in the morning, indicating that moisture changes inside and outside the mask wall day and night, providing a timeline for identifying the cause. Field discharge tests observation skills, and material knowledge provides direction.

Dielectric constant and dielectric loss

Two core indicators: the lower the dielectric constant ε, the better (ideally close to 1), and the smaller the tangent of the dielectric loss angle tanδ, the better.

PA66 ε is about 3.5, tanδ about 0.02; after adding glass fiber, the ε rises to 4.0-4.5.

For comparison: the PA ε with carbon fiber soars above 10 and reflects strongly. In design, the enclosure wall thickness should be an integer multiple of the electromagnetic wavelength to neutralize and reflect each other at the interface.

Moisture absorption changes dielectric properties

This is the most easily overlooked point—after PA absorbs water, its dielectric constant increases significantly (water molecules are strongly polar, ε about 80). After PA66 absorbs 3% moisture, the ε rises from 3.5 to above 4.5, and the antenna's standing wave ratio deteriorates.

Three countermeasures: First, use PA12 with low water absorption (ε about 3.0, with minimal moisture absorption); Second, apply surface hydrophobic treatment; Third, reserve a performance margin after moisture absorption in the design.

The contradiction between structural strength and thickness

The enclosure body must both transmit waves and withstand wind, ice, and bird impacts. Thickening can improve strength, but it increases wave transmission loss, and wall thickness is limited by half-wavelength conditions.

There are two solutions: First, a sandwich structure—two thin inner and outer layers + a honeycomb or foam core in the middle, which offers high rigidity, light weight, and good wave transmission; Second, use GF30 reinforcement to achieve the same strength at even thinner wall thicknesses.

The sandwich structure is the mainstream for large radar domes.

Weather resistance and corrosion resistance

Radar domes are outdoors year-round and must pass through four levels: ultraviolet rays, rain erosion, salt spray, and temperature differences. Rain erosion is the most special—raindrops at high speed gradually strip away the surface material from the cover, changing the wall thickness and affecting wave transmission.

The solution is to coat the surface with a rain-resistant coating (polyurethane elastic coating is mainstream). Ground radar covers mainly use UV and salt spray, using the UV three-piece set + hydrolysis resistance system.

Extended Judgment: Hidden Variables of the Radome

have three most easily overlooked hidden variables. First, the coating itself also affects wave transmission—both rain-resistant and anti-icing coatings must undergo dielectric testing, and thickness should be factored into wall thickness design.

Second, the position of metal parts—the metal brackets and screws inside the hood can disturb the electromagnetic field, so simulations should be conducted to avoid the main lobe direction. Third, water accumulation—water accumulation in the hood severely attenuates signals, so drainage holes and hydrophobic coatings must be considered together.

Deeper layer: The origin and contradiction of dielectric indicators

The first indicator of the radome is wave transmission, followed by two parameters: dielectric constant and loss tangent. Dielectric constant determines the reflection and phase delay of electromagnetic waves at the mask wall interface, while the loss tangent determines how much energy is consumed in the material.

Design requires these two parameters to be low and stable; low is the threshold, stability is lifespan — many materials have attractive static data, but once exposed to high humidity and high and low temperature cycles, they drift; stability is the true battlefield for modified nylon solutions.

The battle between moisture absorption and dielectric requires two efforts. On the formulation side, choose low-moisture absorption copolymer systems and hydrophobic modification to push balanced water absorption to the lowest level; At the structural end, a weather-resistant coating is applied to the outer surface of the hood to block the main channel for moisture ingress.

After completing these two tasks, the delivery documents must clearly specify the maximum humidity usage and coating maintenance intervals. Clearly stating performance boundaries is more reassuring than reporting parameters perfectly.

The contradiction between structural strength and wall thickness is a classic challenge in antenna cover design.

The thinner the shield wall, the better the wave transmission, but thin walls cannot withstand wind loads, hail, and bird strikes. The choice of reinforcement solution here is very particular: ordinary glass fiber increases the dielectric constant at high content, while low dielectric glass fiber doubles the price. The combination of solid and hollow microbeads can reduce the equivalent dielectric constant while supplementing stiffness. Actual tests show that a certain type of shield reduces wall thickness by 20% at the same wave transmission index.

Rain erosion is a chronic disease of exposed antenna covers. When raindrops collide with high-speed airflow, the coating at the leading edge becomes pitted. Beneath the surface, exposure of the material body accelerates moisture absorption, creating a vicious cycle of performance drift.

The hardness and toughness of rain-resistant coatings and the material body must be matched in design. Coatings that are too hard are prone to cracking or too soft and wear down. Matching solutions are more valuable than selling materials alone, and customers often repurchase because of this layer of service.

The temperature window must not be missed either. On high-speed platforms, the front edge of the hood is pneumatically heated, so the resin glass transition temperature must be left with sufficient margin, and the dielectric drift curve within the entire temperature range must be given to the overall for phase compensation.

The material side compensates for the curve and overall side. Under this collaborative model, the application cases of modified nylon on high-Mach platforms have been increasing year after year.

Engineering Testing: 4 mandatory tests

Test 1: Dielectric constant ε. PA66 3.5, PA12 3.0, glass fiber reinforced PA66 4.2, carbon fiber reinforced PA 10 and above — carbon fiber is directly eliminated.

Test 2: Dielectric loss tanδ. PA66 0.02, PA12 0.015, glass fiber reinforced 0.025 — long carbon chains slightly better.

Test 3: Moisture absorption effect. After absorbing 3% moisture, PA66 ε rises to 4.5, and the standing wave ratio deteriorates from 1.2 to 1.8—hydrophobic treatment is required.

Test 4: Rain erosion test. Uncoated PA66 loses 12 mg of surface weight after 2 hours of simulated rain erosion, and 1.5 mg after polyurethane coating.

Boundary Declaration

Working ConditionsRecommended Materials
Large Radar DomeInterlayer Structure (Thin Wall + Honeycomb Core).
Small RadomePA66-GF30 or PA12-GF30
High Humidity EnvironmentPA12 + Surface Water-Repellent Treatment
Reinforcement MaterialD Glass fiber or mineral, carbon fiber is prohibited
High-speed rain erosion scenarioPolyurethane rain corrosion anti-corrosion coating

Engineering memo

Radome The only hard metric is wave transmission—carbon fiber and any conductive filler are directly eliminated and can only be reinforced with glass fiber or mineral.

The most easily overlooked aspect is that after PA moisture absorption, the dielectric constant rises from 3.5 to 4.5, the antenna's standing wave ratio deteriorates significantly, and in high-humidity environments, PA12 is treated with hydrophobicity.

Follow-up question one: How do you explain wave transmission performance indicators to non-professional customers?

A: Use the power ledger. The power emitted by the antenna passes through the enclosure, partially reflected and absorbed, and only the rest is radiated. Comparing the power losses of three material schemes and converting them into differences in detection distance, customers immediately understand why the shield is worth spending extra—every bit of transmission loss ultimately results in a loss of radar power.

Follow-up question 2: What process is suitable for small-batch radomes?

A: Both hand lay-up and resin transfer molding routes are possible. Modified nylon systems are better suited for injection and reaction injection molding routes, with less obvious cost disadvantages for small batches, and actual advantages in dimensional consistency and batch traceability. The real selection logic is based on the surface complexity and performance grade of the cover. Simple molding uses injection molding, while high-precision molding uses molding—there is no single answer.

Follow-up Question 3: Can performance drift caused by moisture absorption be completely eliminated?

Answer: It cannot be reset to zero; it can only be converged within the system budget. The low-moisture absorption formula plus coating can reduce drift to less than one-tenth of the original, and the remaining portion is absorbed by the overall phase compensation. Accurately recording residual quantities in technical documents builds long-term trust better than promising zero drift. Cooperation with products like radomes spans ten years.

Reverse Case Record: One project skipped saturation moisture absorption retesting to meet deadlines, using only dry-state values for finalized data. During the first rainy season of loading, performance declined, so they changed materials and restarted the test, but the cycle actually took half a year longer. The saved three days of testing resulted in triple the rework.

Practical Case: Common pitfalls and correct answers

Pitfall One: Applying the physical property tables of ordinary industrial parts directly to aviation special scenarios, but after half a year of installation, they failed smoke toxicity levels, low-temperature brittle cracking, and flame retardant re-inspections.

Correct answer: This scenario is standard first—flame retardant smoke and toxicity standards for airworthiness or rail transit, low-temperature impact standards, all need to be rechecked. Ordinary modified nylon physical property sheets only cover room temperature mechanical properties and are completely unsuitable—this is the root cause of 80% of the initial sample submission failures.

Pitfall 2: To reduce weight, glass fiber content is kept increased, resulting in exposed fiberglass at thin-walled areas, floating fibers on the surface, and loose dimensions. Correct answer: Weight reduction depends on structure, not just adding fibers. Thin-walled parts follow the GF30 limit; exceeding them requires switching to higher flow grades or adding mineral filling.

Pitfall 3: Only tests room temperature performance, ignoring alternating high and low temperatures and salt spray. Correct answer: Service environment verification must be based on the overall machine lifespan, including high and low temperature cycling + salt spray + damp heat aging at once. Missing one means batch potential risks.

These three pitfalls are all checklists that must be self-checked before mass production.

Supplement: Four observations from the front lines

First, low-orbit communication terminals have pulled radomes from military into civilian mass production, and consumer-grade price ranges impose completely different constraints on material costs. Second, testing capabilities for wave-transmitting materials are shifting downward. Previously, only a few institutes had far-field testing, but now leading modification factories are building their own, shortening delivery cycles by more than half.

Third, the supporting sales model for coatings and bodies has become effective, and customers are more willing to pay for the overall solution than to negotiate for individual materials. Fourth, the transition window for environmentally friendly coatings to solvent-based coatings has opened, and the early layout plan has gained a first advantage in regions with tightened environmental impact assessments. All four points are recorded for follow-up purposes.

Addition: Another four frequently asked questions by customers

First, ask about the range of degrees for dielectric parameters drifting with temperature. We provide the entire curve from -55 to 120 degrees, and compensation calculations for high-speed platforms are directly usable. Second, ask about the recoating cycle for rain-etched coatings. The coastal station's experience is 18 to 24 months, so visual inspection of the front edge area causes numbness in advance.

Third, ask what washers are used to connect the hood body and flange, and what kind of washer is used to connect the enclosure body and flange? The modified system with low-compression permanent deformation combined with a torque-controlled bolt sequence provides five-year maintenance-free real-world support. Fourth, ask how long it takes from small-batch prototyping to finalization. For injection molding routes, prototyping takes two weeks, and for shaping and testing about three months, which is much faster than the forming/molding route.

All original records of the four questions are in the delivery files and can be accessed as needed.

Conclusion

The most troublesome inquiry is this—the earlier you ask about material selection, the easier it is.

For these kinds of parts, material selection and mold trial can be discussed together

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