Dolomitic vs Calcitic Lime Calculator (Same pH Correction, Different Supply of Magnesium)
Compare dolomitic and calcitic lime for the same pH correction.
🕒 Last updated: September 25, 2026
Inputs
Lawn Area
ℹ️Total lawn area to be treated. If different zones tested at very different pH, run this calculator separately for each.
Soil Test
Common in high-rainfall regions — rain leaches calcium and magnesium out of the soil over time, common across the US Southeast, Pacific Northwest, and UK/Ireland.
Fast, no lab test needed. Soil texture is only a PROXY for how strongly your soil resists a pH change, so this is a genuine estimate — a real soil test's buffer pH reading is materially more accurate.
ℹ️From a soil test — a basic pH test kit or strip is enough for this field either way.
ℹ️Clay holds far more reserve acidity (or alkalinity) than sand for the same pH reading, so it needs proportionally more material to shift — roughly 1.5x a loam soil, against roughly two-thirds for sand.
ℹ️6.0-6.5 is the commonly cited optimum for turfgrass — most nutrients stay available across the whole 6.0-7.0 range.
Lime Product
ℹ️Supplies both calcium and magnesium. The common default — use calcitic instead only if a soil test shows magnesium is already high.
💡Check the bag label (“ECCE” or “neutralizing value”) — leave blank to use a typical default for this product.
Cost
Total Dolomitic Lime Needed
147.4
lb (66.8 kg) — Dolomitic Lime (calcium + magnesium)
Bags to Buy
4
at 40 lb per bag
Applications
1
one pass covers it
5.8 → 6.5 over 5000 sq ft (464.5 m²) — Raise pH
Material
Dolomitic Lime (calcium + magnesium)
Supplies both calcium and magnesium. The common default — use calcitic instead only if a soil test shows magnesium is already high.
Total: 147.4 lb (66.8 kg)
Bags: 4 at 40 lb each
Application Schedule
The full 147.4 lb is within the safe single-application limit — one pass covers it.
Before You Apply
- Soil texture is only a rough proxy for how much lime your soil actually needs — two soils of the same texture can have very different organic matter content and buffering capacity. If you have (or can get) a real soil test with a buffer pH reading, switch to the accurate method above for a materially better number.
Assumptions Used
The texture-based estimate uses a loam baseline of 40 lb of calcium carbonate equivalent per 1,000 sq ft per full pH unit, scaled by 0.67x for sandy soil and 1.5x for clay — soil texture is only a rough proxy for buffering capacity, so a real soil test's buffer pH reading (the accurate method above) will be more precise. Every application is capped at ITS OWN product-specific safe single-pass limit — lime and aluminum sulfate at 50 lb/1,000 sq ft, elemental sulfur at a much tighter 5 lb/1,000 sq ft plus a separate 10 lb/1,000 sq ft annual cap — sourced independently for each product rather than one figure applied to all three, and split into as many passes (and, for elemental sulfur specifically, as many years) as the total genuinely requires. This calculator sizes materials only — it does not replace an actual soil test, does not account for magnesium excess (a reason to choose calcitic over dolomitic lime), and does not model how fast your specific soil will respond.
Soil pH Gauge
Diagram simplified for clarity (not to scale) — pH zone boundaries follow Purdue Extension's published soil-pH nutrient-availability ranges, collapsed to three bands for legibility.
Looking for the verification checklist, reference tables, tips, or common mistakes?See the complete Lawn Lime & Soil-pH Amendment Calculator.
The chemistry is the same correction — the choice is what else the soil gets
Dolomitic and calcitic lime raise pH by the identical mechanism — both are forms of calcium carbonate that neutralize soil acidity. The difference is what else comes with it: dolomitic lime (calcium carbonate plus magnesium carbonate) supplies both calcium and magnesium, while calcitic lime (pure calcium carbonate) supplies calcium only. Most lawns benefit from the magnesium dolomitic lime provides, which is why it is the sensible default.
The exception is a soil already naturally high in magnesium, where repeated dolomitic applications can push the calcium-to-magnesium ratio out of balance and, on fine-textured soils, contribute to compaction. A soil test that reports magnesium alongside pH is what actually settles which product is right — this calculator lets you compare both at the neutralizing value each product actually carries (dolomitic commonly 85-109%, calcitic slightly different), rather than assuming they need identical amounts.
Lawn Lime Formula
Four steps, in the order the calculator works them out.
Step 1 — How much correction is needed
pH change = |target pH - current pH|
Direction = raise (lime) if target > current, lower (sulfur) if target < current
If the current pH is already on the correct side of the target, no amendment is needed at all — applying one anyway would overshoot and cause the opposite problem.
Step 2a — Texture-based estimate (quick, less precise)
Lime: lb CCE/1,000 sq ft = 40 x pH rise x soil texture multiplier
Sulfur: read directly off a published present-pH x desired-pH grid, x texture multiplier
Texture multiplier: sand 0.67x, loam 1x, clay 1.5x
Soil texture is only a proxy for how strongly the soil resists a pH change — this is a genuine estimate, disclosed as one everywhere it appears on this page.
Step 2b — Buffer-pH method (accurate, needs a real soil test)
tons lime/acre = published buffer-pH table lookup, by buffer pH and target pH
lb CCE/1,000 sq ft = tons/acre x (2,000 / 43.56)
Reads the requirement directly off Cornell Cooperative Extension's own published Modified Mehlich buffer table — the same method real agronomy uses — rather than estimating from texture.
Step 3 — Adjust for the product and the area
lb product/1,000 sq ft = lb CCE/1,000 sq ft / (product's %ENV / 100)
Total lb = lb product/1,000 sq ft x (area sq ft / 1,000)
A lower-neutralizing-value product needs proportionally more of itself to deliver the same correction — this is exactly how Cornell's own published method adjusts for lime source.
Step 4 — Split into a safe application schedule
Applications = ceil(total lb / (safe lb per 1,000 sq ft x area / 1,000))
Lime ceiling: 50 lb/1,000 sq ft per pass
Sulfur ceiling: 5 lb/1,000 sq ft per pass AND 10 lb/1,000 sq ft per year
Sulfur's second, annual ceiling is what turns a large correction into a multi-year schedule — lime has no equivalent annual cap, only the per-application one.
Real-World Lawn Lime Calculation Example
This example uses the values you have entered above and follows the same four steps as the formula section.
Input Values Used
| Input | Value | Why it is used |
|---|---|---|
| Lawn area | 5000 sq ft (464.5 m²) | Scales the total from a per-1,000-sq-ft rate |
| Direction | Raise pH | Sets which material and which safety ceilings apply |
| Current pH | 5.8 | Where the soil starts |
| Target pH | 6.5 | Where the soil needs to end up |
| Method | Texture-based estimate | Soil texture used as a proxy for buffering capacity |
| Product | Dolomitic Lime (calcium + magnesium) | Sets the %ENV used to size actual material |
Step 1 — How much correction is needed
| Calculation | Formula / Substitution | Result |
|---|---|---|
| pH change | |6.5 - 5.8| | 0.7 pH units |
| Direction | target > current | Raise (lime) |
Step 2 — Texture-based lime estimate
A loam baseline scaled by the soil's own texture multiplier.
| Calculation | Formula / Substitution | Result |
|---|---|---|
| pH rise | 6.5 - 5.8 | 0.7 units |
| Texture multiplier | Loam / average garden soil | 1x |
| Lime requirement | 40 x 0.7 x 1 | 28 lb CCE/1,000 sq ft |
Step 3 — Adjust for product and area
| Calculation | Formula / Substitution | Result |
|---|---|---|
| Total for the area | rate x (5000 / 1,000) | 147.4 lb (66.8 kg) |
| Bags to buy | 147.4 / 40 lb | 4 bags |
Step 4 — Application schedule
| Calculation | Formula / Substitution | Result |
|---|---|---|
| Safe ceiling | 50 lb/1,000 sq ft per pass | - |
| Applications needed | ceil(147.4 / safe amount for this area) | 1 application |
Therefore: buy 4 bags of dolomitic lime (147.4 lb total), applied in 1 application.
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Disclaimer: This calculator provides approximate results for planning and estimation purposes only. Actual requirements may vary based on site conditions, materials, workmanship, and local building regulations. Always consult a qualified engineer, architect, or construction professional before making final decisions.