Kuidas kasutada betooni vahutavat ainet: Stabiilse kerge vahu samm-sammuline juhend

Has Your Lightweight Concrete Foam Collapsed Before Pouring?

You mixed the batch. The foam looked good in the generator. Siis, halfway through the pour, the bubbles popped. The density shot up. Your insulation value disappeared. This is the most common failure when working with a Betooni vahutamine Agent. The problem is rarely the chemical itself. The problem is the process. Most operators skip critical preparation steps. They blame the agent. They switch brands. The same failure repeats.

This guide gives you a repeatable procedure. Follow these steps precisely. You will get stable vaht and predictable density every time.

Samm 1. Select the Right Foaming Agent for Your Density Target

Mitte kõik vahutav agents behave the same. You must match the chemical type to your target density. Light weight concrete allpool 600 kg/m³ demands a protein-based agent. Protein agents produce smaller, tougher bubbles. These bubbles resist the hydraulic pressure of a wet cement paste. For densities above 1000 kg/m³, synthetic surfactant agents work fine. They are cheaper. They generate larger bubbles. Those larger bubbles collapse under the weight of a thick mix.

Key Chemical Distinction

Do not confuse a Concrete Foaming Agent with an air-entraining admixture. Air entrainment creates microscopic air voids at 3% juurde 6% of volume. Foamed concrete uses foam to replace 20% juurde 60% of the solid volume. The mechanism is different. The stability requirements are different.

  • Synthetic surfactants: Good for densities > 1000 kg/m³. Lower cost. Larger bubble size. Faster foam drainage.
  • Protein-based agents: Required for densities < 800 kg/m³. Higher cost. Smaller bubble size. Excellent stability against cement alkalinity.
  • Hybrid blends: Offer a middle ground. Use them when you need moderate density reduction without the protein price premium.

Samm 2. Prepare the Base Mix with the Correct Water Reducer

Foam is fragile. A mix that is too stiff will crush the bubbles. A mix that is too wet will cause segregation. The solution is a Superplastifikaator või Concrete Vee reduktor. You need the base mortar to flow under its own weight without vibration. Vibration destroys foam cells.

Here is the correct sequence. Esiteks, mix water and Spetsiaalne tsement (typically Portland cement with high early strength). Blend for two minutes. Then add the Betooni vee reduktor. Mix another two minutes. Lõpuks, add the pre-formed foam. The water reducer must be in the paste before the foam touches it. This ensures the paste has maximum fluidity with minimum water. Excess water causes bleed water, which sinks to the bottom and creates a density gradient.

Samm 3. Calibrate Your Foam Generator Output

A Vahugeneraator produces wet foam. Wet foam is liquid. Dry foam is gas. You want dry foam. Wet foam adds unplanned water to your mix. That additional water changes your water-cement ratio. It weakens the final product.

Test your generator before every production run. Measure the foam density as it exits the hose. Target foam density between 40 g/L and 80 g/l. allpool 40 g/l, the foam is too dry. It will collapse immediately. Eespool 80 g/l, the foam is too wet. Your final density will be inconsistent. Adjust the compressed air pressure and the solution flow rate until you hit your target. Document the settings. Repeat them for every batch.

Samm 4. Mix Foam into the Paste at Controlled Speed

Do not dump all the foam into the mixer at once. You must add it in three equal increments. After each addition, sega madalal kiirusel (60 rpm maximum) jaoks 15 sekundit. High shear mixing pops the bubbles. Low speed folding preserves them. The total mixing time after all foam is added should not exceed 90 sekundit. Longer mixing times continuously reduce air content. You lose density control.

Monitor the mix visually. A stable mix looks like a uniform oatmeal paste. There should be no free water on the surface. You should see small, discrete bubbles throughout. If you see a shiny water layer on top, your Betooni vahutõrjevahend contamination is present. Cheque your mixer. Residue from a previous batch containing defoamer will ruin the foam. Wash the drum with hot water and detergent before the changeover.

Samm 5. Test Fresh Density Before Pouring

Do not trust calculations alone. Fill a container of known volume (tüüpiliselt 1 liter). Kaaluge seda. Calculate the fresh density. Compare it to your target. If the density is higher than target, your foam is collapsing. The cause is usually one of three issues: Hüdroksüpropüülmetüültselluloos või Hüdroksüetüültselluloos dosage is too low, the foam generator is producing wet foam, or the mix temperature is above 35°C. High temperature accelerates foam drainage. Cool your ingredients with ice water if ambient temperatures are high.

If the density is lower than target, sul on liiga palju vahtu. This seems good, but it is dangerous. Excess foam creates large interconnected voids. These voids reduce compressive strength non-linearly. You will have a block that is light but crumbles under finger pressure. Adjust the foam volume downward by 10%. Retest.

Summary Table: Key Process Parameters for Foamed Concrete

Parameeter Target Value Control Method
Foam density (at generator) 40 – 80 g/l Adjust air pressure and solution flow
Base mix slump (before foam) 200 – 250 mm Using Superplasticizer
Mixing time after foam addition < 90 seconds Low speed (60 rpm)
Fresh concrete density Target ± 5% Weight check in known volume
Mix temperature 15 – 30 °C Ice water or chilled aggregates

Samm 6. Understand the Role of Additives in Stabilization

Some mixes require extra stabilization. Taasdispergeeruv polümeeripulber adds toughness to the cell walls. It reduces the risk of collapse during pumping. Add it at 1% juurde 3% tsemendi massi järgi. Nano-modifikaator particles (like fumed silica) fill the gaps between cement grains. They reduce bleed water. Kasuta 0.5% juurde 1% tsemendi massi järgi. Fiber (polypropylene at 0.1% volume fraction) prevents plastic shrinkage cracking in thin sections. It does not help with foam stability directly. It improves the mechanical performance of the cured product.

Avoid Calcium Chloride as an Varajane tugevusvahend if you use protein-based foam. Calcium chloride attacks the protein structure. The foam dies. Use a non-chloride accelerator instead. Naatriumsilikaat või Kaaliumsilikaat can be used as accelerators in some formulations, but test compatibility first. Silicates can react with the foam and cause flash setting or foam collapse depending on the specific agent chemistry.

Samm 7. Cure Properly to Retain Foam Structure

The foam structure is set during the first 12 hours of curing. Do not let the surface dry out. Evaporative water loss pulls moisture from the foam cells. The cells collapse. Cover the surface immediately after pouring with wet burlap and plastic sheeting. Säilitada 100% humidity for the first 24 tundi. After demolding, continue wet curing for at least 7 päevadel. Foamed concrete gains strength slowly. Proper curing can increase 28-day compressive strength by 30% compared to air-dried samples.

Levinud viga: Incorrect Use of Concrete Release Agent

Many operators use a Betooni vabastav aine on the mold. They choose a petroleum-based oil. This oil penetrates the foamed concrete surface. It creates a thin layer of defoaming activity at the mold interface. The result is a soft, crumbly surface. Use water-based release agents with zero defoamer content. Or line the mold with plastic sheeting. Do not risk contamination from the mold surface.

Environmental and Performance Advantages

Foamed concrete with a Betooni vahutav aine uses less raw material. You replace heavy aggregate with air. This reduces the carbon footprint per cubic meter by 20% juurde 40% compared to normal weight concrete. The cellular structure provides thermal insulation (0.1 juurde 0.3 W/mK). It provides acoustic damping. It is non-combustible. These properties make it ideal for Vahtbetoon uses in trench fill, geothermal insulation, and precast panels. The process also accepts recycled materials. You can use recycled glass sand or fly ash as aggregate replacement without foam stability issues.

Final Advice: Test Before You Scale

You cannot wing this process. Every cement source, every Betooni vahutav aine batch, and every temperature condition changes the outcome. Run a 50-liter trial batch before the production run. Measure fresh density. Cast three cubes. Katsetage survetugevust kl 7 päevadel. Adjust your TRUNNANO (or your supplier’s) additives dosage based on the results. Document everything. Reproducibility is the only path to profitability in foamed concrete production.

Suppiler
Oleme kergbetooni ja täiustatud vahtplastlahenduste alal ülemaailmne liider. Ülemaailmselt tuntud oma pühendumuse poolest teadusuuringutele, uuenduslikkust, ja rakendatud ekspertiis, oleme pakkunud vahtplastlahendusi alates 2012. aasta algusest.

Saame tarnida kvaliteetseid betoonisegu ja vahtbetooniga seotud tooteid üle kogu maailma.

Ettevõttel on professionaalne tehniline osakond ja kvaliteedijärelevalve osakond, hästi varustatud labor, ning varustatud täiustatud testimisseadmete ja müügijärgse klienditeeninduskeskusega.

Kui olete huvitatud, palun võtke meiega ühendust.

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