Most failures fall into one of two categories:
Identifying which type of failure occurred is the fastest way to determine the root cause and prevent future callbacks.
Callbacks for sealant failure are frustrating because the joint looked fine on installation day, but failure shows up weeks or months later, after the crew has moved on to the next project.
The good news: sealant failure is almost always preventable once you know what to look for.
This guide breaks down why sealants fail, how to tell which failure you're dealing with, and what to change on your next job to prevent it from happening again.
Key Takeaways:
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Sealant failure occurs when a cured sealant can no longer maintain a watertight, flexible bond between two substrates. Failure typically appears as cracking, shrinkage, loss of adhesion, splitting, bubbling, or complete separation from the joint.
Adhesive failure is when the sealant pulls cleanly away from one or both sides of the joint, leaving bare substrate behind.
Cohesive failure is when the sealant itself splits down the middle, with material still bonded to both sides.
Knowing which one you're looking at is the fastest way to diagnose the real cause. Adhesive failure points to surface prep or compatibility issues, while cohesive failure usually points to movement or product selection problems.
Definitions:Adhesive failure: Sealant separates from the substrate, leaving an open gap on one or both sides of the joint. Cohesive failure: The sealant bead itself tears or cracks down the middle, with material remaining bonded on both sides. |
Sealant fails because it loses its ability to either stick to the substrate (adhesion) or stretch and compress with it (cohesion). Every failure you'll see on a jobsite is really one of these two breakdowns, and each has its own set of causes.
Most high-performance construction sealants last 10–20 years, depending on UV exposure, joint movement, substrate compatibility, installation quality, and maintenance. Lower-quality sealants or improperly installed joints may begin failing within only a few years
Cracking almost always means the sealant lost its flexibility before the joint stopped moving. Once a bead loses that stretch, every temperature swing and building shift puts stress directly on a material that can no longer absorb it.
A few conditions set this up:
Not sure which sealant class holds up in your climate?
Shrinkage occurs when a sealant loses volume as it cures, typically due to a lower-grade formulation or improper mixing, leaving gaps that allow water and air back in.
Low-quality sealants may shrink excessively during curing, leaving gaps that compromise waterproofing — which is exactly the kind of callback nobody wants to explain to a homeowner or GC.
Shrinkage tends to show up when:
Causes of Sealant Shrinking: |
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Cause: |
What's Happening: |
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Low-solids or filler-heavy formulation |
Sealant loses volume as solvents or byproducts evaporate during cure |
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Improper mixing (2-part/2K products) |
Uneven cure leads to soft spots and pull-back at the joint edges |
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Bead applied too thin |
Less material to begin with means shrinkage is more visible and more likely to open a gap |
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Joint not backed properly |
Sealant has nothing to bond to on the back side, so it pulls inward as it cures |
Choosing a sealant engineered for minimal shrinkage and mixing multi-component products exactly to spec solves most of this before it ever becomes a callback.
Adhesion failure almost always starts with the surface, not the sealant. Surface preparation is where most sealant failures begin, yet it's the step most often rushed or skipped entirely.
Oil, dust, old sealant residue, and moisture are the most common adhesion killers, and even microscopic contamination can significantly reduce bond strength.
Common adhesion failure triggers on the jobsite include:
The fix is simple but non-negotiable: a clean, dry, sound substrate every time, primer where the manufacturer calls for it, and a sealant confirmed to be compatible with every material it touches.
If the joint was clean, dry, and installed correctly, and it's still failing, movement beyond the sealant's rated capability is the next place to look. Buildings move more than most people expect (Ex. a 30-meter building might move 20-30mm between summer and winter), and the sealant has to absorb that movement without tearing or letting go.
This is where ASTM C920 comes in. It's the industry performance standard for elastomeric joint sealants, and it classifies products by how much cyclic movement they can withstand without losing adhesion or cohesion.
A Class 25 sealant is tested to withstand joint movement of plus or minus 25 percent while maintaining adhesion and remaining cohesively intact, while higher-movement products are rated up to Class 50 or beyond for high-movement applications such as curtain walls and building envelope joints.
Movement capability is the maximum extent to which a cured sealant can expand and contract without losing adhesion or tearing. ASTM C920 measures this capability as a percentage of the original joint width.
Fast Fact:A Class 25 sealant under ASTM C920 is tested to withstand ±25% joint movement while maintaining adhesion. Higher-movement sealants are rated up to Class 50 or higher for high-movement applications such as curtain walls and building envelope joints. |
Installing a Class 25 sealant into a joint engineered for 50 percent movement is a guaranteed failure, no matter how clean the surface prep was. Calculating expected joint movement (based on material, joint width, and temperature swing) before selecting a product is what separates a sealant that lasts from one that's back on the callback list in a year.
Need help matching the sealant class to your joint spec?
In most cases, failed sealant should not be patched over. Existing sealant should be completely removed, the joint cleaned, and new sealant applied according to the manufacturer's installation guidelines.
Weather rarely causes sealant failure on its own, but it often exacerbates existing installation or product selection issues. UV exposure, moisture, freeze-thaw cycles, and extreme temperature swings all shorten sealant service life when the wrong chemistry is selected.
Conditions to plan around for exterior work:
Checking the forecast before application and choosing a UV-stable, weather-appropriate formulation for the exposure level prevents most environment-driven failures before they start.
Start by looking at where the crack or gap is. If the sealant has pulled cleanly away from the substrate on one or both sides, that's adhesive failure — go straight to surface prep and compatibility.
If the sealant itself has split down the middle, with material still bonded on both edges, that's cohesive failure — check joint movement calculations and sealant class first.
A quick diagnostic checklist for the field:
→ Movement exceeded the sealant's class rating
→ Surface prep, contamination, or incompatibility
→ Shrinkage from formulation or mixing
→ Sealant has reached the end of its service life
→ Likely a cure-window issue — moisture, temperature, or contamination during application
Preventing sealant failure comes down to three habits:
None of these takes significantly more time on the jobsite; they just have to happen before the gun touches the joint.
A practical pre-application checklist:
Confirm substrate is clean, dry, and free of oils, dust, and old sealant residue
Apply primer where the manufacturer's TDS calls for it (and check the primer hasn't expired)
Calculate expected joint movement and confirm the sealant's ASTM C920 class covers it
Check the forecast and avoid application during rain, high humidity, or temperatures outside the product's range
Use a properly sized backer rod to maintain the correct width-to-depth ratio
Building this into a standard pre-application checklist rather than relying on memory from job to job is the single biggest lever for cutting callbacks.
Expert Tip Box:Before blaming the sealant, identify whether the failure is adhesive or cohesive. This simple inspection often reveals whether the problem originated with installation, substrate preparation, or product selection. |
Early cracking usually means the sealant lost flexibility before the joint stopped moving. This is often due to a bead applied too thin, no backer rod, or a cold-weather application outside the product's cure range.
Shrinkage happens as solvents or byproducts evaporate during cure. Lower-grade or filler-heavy formulations shrink more, and thin beads make the shrinkage more visible and more likely to open a gap.
Adhesive failure is the sealant pulling away from the substrate. Cohesive failure is the sealant tearing within itself while staying bonded on both sides. The location of the crack tells you which one you're dealing with.
Not without removing the old material first. Sealant needs to bond to a clean substrate. Applying over old, failed sealant sets up the same adhesion failure all over again.
It depends on the product's ASTM C920 class. Class 25 sealants are tested for ±25% joint movement; higher-movement products go up to Class 50 or more. Matching the class to the calculated joint movement is critical.
Yes. Rain, humidity, or condensation during the cure window can trap moisture against the substrate, weakening adhesion before the sealant ever fully cures.
Sealant can crack in cold weather if it is applied below the manufacturer's recommended installation temperature or if it cures before it has enough flexibility to accommodate joint movement. Cold temperatures slow the curing process, while repeated freeze-thaw cycles increase stress on the joint. Choosing a sealant designed for low-temperature application and following the recommended installation guidelines helps prevent cold-weather failures.
Installation, in most cases. Surface prep and joint movement calculations account for the majority of failures — even high-performance sealants will fail if installed on a contaminated surface or in a joint that moves beyond their rated class.
Yes. Joint dimensions play a critical role in sealant performance. A joint that is too narrow, too wide, or too shallow can prevent the sealant from stretching and compressing as intended. Using the proper joint width-to-depth ratio and installing a correctly sized backer rod helps maximize sealant movement capability and service life.
Most sealant failures are preventable. Selecting the correct sealant chemistry, properly preparing the substrate, installing the correct bead geometry, and matching movement capability to the application dramatically reduce callbacks and extend joint life.
The right prep and the right product turn sealant from a callback risk into a job you never think about again. Seal Bond makes it easy to get both right, with sealants built to hold up to real jobsite conditions and a network of distributors ready to help you find the right fit.