Silage Quality Testing: What the Numbers Actually Mean

Silage Management · Quality Testing · Feed Decisions

Silage Quality Testing: What the Numbers Actually Mean

A practical guide to reading a forage test report — translating pH, NH₃-N, ME, NDF, ADF, and fermentation acid values into the feeding decisions that actually change what goes in the trough.

The Test Result That Sits in a Drawer Changing Nothing

Australian dairy and beef farmers send more silage samples to forage testing laboratories than ever before — NIR testing is inexpensive (AUD $40 to $75 per sample), fast (24 to 48 hour turnaround from most laboratories), and widely promoted by agronomists, nutritionists, and feed company representatives. The problem is that a significant proportion of test results are received, filed, and not acted on — either because the numbers are unfamiliar, because the producer doesn’t know which numbers matter most for their livestock class, or because the nutritional implications are unclear without the context of a full ration calculation.

This article is a plain-language guide to the numbers that appear on a standard Australian silage forage test report — what each parameter measures, what the acceptable ranges are for different livestock classes, and what specific feeding or ration decisions each result should trigger. The goal is to convert a test result from a document you file to a tool you use.

For the production decisions that determine what quality a silage test result will show before it arrives — including the impact of wrapping quality and fermentation management — our article on the best silage baler setup for high-volume dairy operations covers how production decisions upstream of the test determine what the result can be.

Silage bales in storage — a forage test result from a core sample tells you what is inside every bale in the row and what ration adjustments are needed before feeding begins

The Core Parameters: What Each Number Measures

1. Dry Matter (DM) — The Starting Point for Everything

DM percentage tells you how much of the bale is actual feed and how much is water. A silage bale at 40% DM (60% moisture) contains 400 kg DM per tonne of fresh weight; a bale at 30% DM (70% moisture) contains 300 kg DM per tonne. All other parameters — ME, CP, NDF — are expressed on a DM basis, so the DM figure is the denominator for all nutritional calculations.

Action trigger: If DM is below 30% (above 70% moisture), the silage was baled too wet and fermentation quality risk is high — check pH and NH₃-N before feeding to sensitive livestock. If DM is above 55% (below 45% moisture), the silage was baled on the dry side and aerobic stability at feedout may be compromised — open bales close to the daily consumption rate.

2. pH — The Primary Fermentation Quality Indicator

pH measures the acidity of the silage. Well-fermented silage produced predominantly by lactic acid bacteria has pH 3.8 to 4.5. Higher pH (4.5 to 5.5) indicates incomplete or compromised fermentation — either because the silage was too dry (above 55% DM) for active fermentation, too wet (below 30% DM) with insufficient WSC, or because the fermentation was dominated by clostridial bacteria producing butyric acid rather than lactic acid.

pH Range Fermentation Assessment Livestock Suitability Action
3.8–4.5 Excellent — lactic acid dominant All classes — no restriction Feed normally
4.5–5.0 Acceptable — minor clostridial activity All classes with monitoring Check NH₃-N; limit to non-peak animals if high
5.0–5.5 Poor — significant clostridial activity Avoid peak-lactation dairy, late-preg ewes Check NH₃-N; feed only to dry/maintenance stock
>5.5 Failed fermentation Do not feed to productive livestock Discard or compost

3. Ammonia Nitrogen (NH₃-N) — The Protein Damage Indicator

NH₃-N is expressed as a percentage of total nitrogen in the sample. It measures how much of the silage’s protein nitrogen has been broken down into ammonia — a metabolically useless form for ruminants and a palatability depressant at elevated concentrations. In well-fermented silage, NH₃-N below 8% of total N indicates minimal protein degradation. Above 12%, the silage carries measurable palatability reduction and available protein is significantly below what the crude protein figure suggests.

NH₃-N is the most important single indicator of silage feeding value after pH. A silage with CP of 18% but NH₃-N of 20% has most of its ‘protein’ in ammonia form — effectively unavailable to the animal and causing intake depression that reduces the productivity benefit you would expect from an 18% CP feed.

4. Metabolisable Energy (ME) — The Productivity Driver

ME (MJ/kg DM) is calculated from the digestibility of the silage’s organic matter. It is the most direct measure of how much energy the animal can extract from the silage. High ME silage (10.0 to 11.5 MJ/kg DM) supports high production; medium ME (9.0 to 10.0 MJ/kg DM) supports maintenance to moderate production; low ME (below 8.5 MJ/kg DM) is inadequate for productive livestock and requires energy supplementation from grain or other concentrates.

ME Range Suitable For Grain Supplement Required? Typical Silage Source
≥10.5 MJ/kg DM Peak lactation dairy, growing cattle Minimal or none Early-cut ryegrass/lucerne
9.5–10.5 MJ/kg DM Lactating ewes, growing heifers Small allocation Flag-leaf silage, good ferment
9.0–9.5 MJ/kg DM Dry cows, weaned lambs, maintenance 0.5–1.0 kg/head/day Mid-season cut, good ferment
<9.0 MJ/kg DM Dry stock maintenance only 1.5–2.5 kg/head/day Late-cut or poor ferment

5. NDF and ADF — The Fibre Quality Indicators

Neutral Detergent Fibre (NDF) measures the total structural fibre — cell wall material including cellulose, hemicellulose, and lignin. Higher NDF reduces voluntary intake because rumen fill from structural fibre is the primary intake regulator in ruminants. NDF below 50% DM indicates a leafy, digestible silage with high voluntary intake potential; NDF above 65% DM indicates a mature, stemmy material with restricted intake potential.

Acid Detergent Fibre (ADF) measures only the cellulose and lignin fraction — the least digestible components. ADF correlates inversely with digestibility: high ADF = low digestibility. ADF below 30% DM indicates excellent digestibility; ADF above 40% DM indicates poor digestibility regardless of CP or ME values.

Fermentation Acid Profile: The Advanced Test Parameters

Lactic Acid vs. Acetic Acid vs. Butyric Acid — What Each Means

Advanced silage tests from laboratories including Feedtest (Elanco Australia) and Nutrient Advantage report the actual fermentation acid profile — the concentrations of lactic acid, acetic acid, propionic acid, and butyric acid in the silage DM. These parameters are not on standard NIR tests but are available as add-ons at AUD $25 to $45 additional per sample and provide the most detailed picture of fermentation pathway available without a full microbiology analysis.

Acid Good Silage Range Indication if Elevated Action
Lactic acid 5–10% DM Primary fermentation product — dominant in good silage High is good
Acetic acid 1–3% DM Heterofermentative LAB or aerobic activity Above 4%: aerobic stability concern
Propionic acid <0.5% DM Minor byproduct — normal at low levels High: unusual, investigate
Butyric acid <0.1% DM Clostridial fermentation marker Any detectable level: poor quality batch

Butyric acid is the key diagnostic parameter for clostridial fermentation. Any detectable butyric acid (above 0.05% DM) in a silage sample indicates that clostridial bacteria were active during fermentation — and that NH₃-N is likely elevated, palatability is reduced, and the batch should be assessed before feeding to peak-productivity livestock.

9YCM-850 film wrapping machine — consistent 6-layer wrapping is the production factor most directly linked to achieving pH below 4.5 in the test result

How to Use Test Results in Practical Feeding Decisions

The Ration Check: Four Questions the Test Result Should Answer

1
Is the ME adequate for the stock class I’m feeding?

Compare the test ME to the target ME for your stock class. If the silage ME is below target by more than 0.5 MJ/kg DM, calculate the additional grain needed per head per day to close the energy gap. A Holstein cow at peak lactation needs 10.5 MJ/kg DM silage as a minimum for silage to carry the roughage fraction of her ration without large grain allocations.

2
Is the CP adequate, and is the NH₃-N below 8%?

If CP is adequate (above 14% for dairy) but NH₃-N is above 10%, the available protein is significantly below the headline CP figure. Adjust the protein supplement allocation upward to compensate for ammonia-N that will not be used by the animal. If CP is below target regardless of NH₃-N, add rumen-degradable protein supplement.

3
Is the NDF low enough for my target voluntary intake?

For peak-lactation dairy, NDF above 55% starts restricting voluntary intake below the 20 to 24 kg DM/day target. If NDF is high, supplement with a lower-NDF, higher-ME complementary ingredient (grain, distillers grains, beet pulp) to maintain total energy intake without relying on higher roughage volume.

4
What is the pH, and does it restrict which stock class can safely receive this batch?

pH above 5.0 restricts the batch to dry/maintenance stock only. pH 4.5 to 5.0 allows all stock classes with monitoring. pH below 4.5 is unrestricted. Use this determination to assign batches to stock pens before feedout begins — not after intake problems emerge.

Frequently Asked Questions

How many bales should I sample from a single cut for a reliable result?+
Sample 1 bale for every 50 to 80 bales of similar production origin (same paddock, same cutting day, same baling conditions). For a 400-bale cut from a single paddock, 5 to 8 representative samples provide a statistically reliable picture of average quality. Use a dedicated silage bale coring tool (a long hollow probe driven through the bale end face) rather than pulling surface material — the surface sample represents the outer layers, which are the lowest-quality part of the bale, not the average interior.
When is the right time to test silage after baling?+
Minimum 21 days after baling — before this point, fermentation is still active in most bales and the pH, NH₃-N, and acid profile are still changing. Testing at 14 days or earlier produces results that do not represent the final fermentation outcome. Optimal testing time is 28 to 45 days post-baling, when fermentation is complete and the result reflects what the animal will actually receive when the bale is opened.
My silage test shows 15% CP but cattle intake is lower than expected. What is wrong?+
Check NH₃-N. High CP with low intake and reduced productivity is the classic profile of clostridially spoiled silage where the headline CP is accurate but a large proportion of it is in the ammonia form — which depresses intake through its odour and metabolic effects. If NH₃-N is above 12% of total N, the effective available protein is closer to 8 to 10% than 15%, and the intake depression is the animal’s normal response to ammonia-contaminated feed.
Do I need a full acid profile test or is standard NIR sufficient?+
Standard NIR (DM, CP, ME, NDF, ADF, pH, NH₃-N) is sufficient for routine silage management and feeding decisions in most operations. The full fermentation acid profile (lactic, acetic, butyric) adds value when: you are diagnosing a batch with lower-than-expected performance despite acceptable pH and NH₃-N, you want to assess aerobic stability risk before opening high-value batches in warm weather, or you are calibrating a new silage production protocol and want to verify fermentation pathway.
Can I compare silage test results between different laboratories?+
With caution. NDF, ADF, DM, and CP values from NATA-accredited Australian laboratories (Nutrient Advantage, Feedtest/Elanco, ALS Agriculture) are directly comparable because they use standardised AOAC methods. ME values may vary by up to 0.3 to 0.5 MJ/kg DM between laboratories because ME is calculated from digestibility using different regression equations at different labs — confirm which ME equation each laboratory uses before comparing results across labs. pH is universal and directly comparable across laboratories.

9YG-1.25A round baler — the production decisions made at this machine are what the forage test result measures weeks later; understanding the numbers closes the loop9GQY-3.2 mower-conditioner — cutting stage at mowing is the single production decision most strongly correlated with ME and NDF in the subsequent forage test result

Consistent silage production quality — starting from baling and wrapping — is what gives the forage test result its best possible starting point. The 9YCM-850 bundling film wrapping machine applies a programmable, consistent layer count to every bale — removing the operator counting variation that causes under-wrapped bales whose fermentation the test result will later reflect. Starting from a well-wrapped bale gives the fermentation process its best possible substrate; the forage test simply confirms how well it succeeded.

EverPower Baling Machinery · Condell Park NSW 2200

Discuss Your Silage Quality Targets

Tell us your stock class, production targets, and current test results — we’ll help translate the numbers into the feeding and production decisions that improve your programme.

TAGs: