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2026-09-28
Vacuum brazing large and thick plate-fin heat exchangers is challenging because thick parting plates and thin fins heat at different rates. This temperature imbalance can cause incomplete brazing, fin erosion, deformation, and leakage.
The key to improving brazing quality is to maintain a balanced temperature field and control heating, brazing, cooling, and assembly conditions throughout the process.
Large plate-fin heat exchangers often have a “thick-thin-thick” structure. Thin fins heat quickly, while thick plates heat more slowly.
If the furnace temperature or holding time is increased to compensate, the fins may become overheated before the thick plates reach the required brazing temperature.
Typical defects include:
A staged heating process can reduce the temperature difference between thick plates and thin fins.
For the process described in this article:
For Al-Si brazing filler metal, the brazing temperature can be approximately 595–605°C.
The holding time is generally 20–60 minutes, depending on product thickness. Importantly, the brazing holding time should begin after the core center reaches the target temperature.
Multiple thermocouples should be placed on the thick plate, fin area, closure bars, and other critical locations. The coldest measurement point should be used as the reference.
After brazing, high-purity nitrogen or argon can be used for cooling. For thick plate areas, the cooling rate should be controlled at ≤10°C/min to reduce thermal stress.
Proper fixture design is important for both positioning and thermal control.
Graphite or stainless-steel fixtures can be selected according to high-temperature and thermal conductivity requirements. Graphite heat-storage blocks can help compensate for areas where thick plates heat more slowly.
Elastic clamping can maintain approximately 0.05–0.2 MPa pressure. Excessive pressure may restrict filler-metal flow, while insufficient pressure can create excessive gaps.
For filler metal, double-sided clad sheets such as 4004/3003/4004 can be used with a cladding ratio of 8–15%. Local areas can be supplemented with 0.1–0.2 mm brazing foil.
The assembly gap should generally be controlled at 0.05–0.15 mm. Plate flatness should also be checked, with the example requirement of ≤0.03 mm/100 mm.
Proper cleaning is equally important. Aluminum components can be treated with NaOH followed by HNO₃, then washed and dried before assembly.
A stable vacuum brazing furnace is essential for large plate-fin heat exchangers.
Temperature Uniformity Surveys (TUS), where applicable under furnace standards and customer specifications, can be used to verify furnace performance. For the process discussed here, the effective heating zone should be controlled within ±3°C.
At least 3–5 workpiece thermocouples can be placed at critical locations, including the thick-plate center, fin area, and upper and lower surfaces.
Large products should be positioned in the most uniform heating area, with sufficient spacing between workpieces to reduce uneven heat radiation.
SUNHOPE supplies vacuum brazing furnaces and aluminum brazing equipment for radiator and heat exchanger manufacturing, with options for heating control, vacuum protection, cooling, and production-line integration.
Thermal simulation can help identify temperature differences before production. For example, when the thick plate center is 35°C behind the fin temperature, extending the 450°C holding stage to 60 minutes can reduce the temperature difference to within 15°C.
After brazing, quality can be evaluated through:
These results can be used to optimize furnace profiles, fixtures, filler-metal placement, and assembly tolerances.
A thick-plate oil cooler with 1.5 mm parting plates originally had a qualified rate of only 78%. Leakage mainly occurred at the four corners and center thick-plate joints, with fin-edge erosion also observed.
The original process used rapid heating to 590°C, while the thick plate temperature lagged by approximately 28°C.
The process was improved by:
After optimization, the workpiece temperature difference was controlled within ±5°C, the average brazing rate reached 97%, and the qualified rate increased to 96%.
Consistent brazing quality requires coordinated control of heating profiles, temperature monitoring, fixture design, filler metal, assembly gaps, furnace uniformity, cooling, and post-brazing inspection.
With systematic process control, the vacuum brazing qualified rate of large and thick plate-fin heat exchangers can be improved from below 80% to consistently above 95%, while supporting repeatable and traceable production.
The main challenge is the different heating rates of thick plates and thin fins, which can create temperature imbalance during brazing.
For the Al-Si brazing filler metal example discussed here, the brazing temperature can be approximately 595–605°C.
Key factors include staged heating, accurate temperature monitoring, fixture optimization, filler-metal control, assembly-gap control, furnace uniformity, controlled cooling, and leak testing.
With more than 15 years of industry experience, SUNHOPE provides equipment, components, and technical support for radiator and heat exchanger manufacturing.
Our solutions include vacuum brazing furnaces, aluminum brazing equipment, core assembly machines, fin forming machines, and leak testing equipment for manufacturers developing or upgrading heat exchanger production.
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