Increase performance with Priolube 6050

Improve durability and biodegradability in hydraulic fluids without compromise

Modern base oils help formulators build high-performance, long-lasting lubricants - but every chemistry involves tradeoffs. Traditional synthetic esters can struggle with hydrolytic stability in water-exposed service, while mineral-oil and PAO-based fluids can fall short on biodegradability and bio-based content. Cargill™ Priolube™ 6050 is a next-generation synthetic ester co-base fluid designed to improve oxidative stability, hydrolytic stability, and biodegradability in hydraulic fluids and stern tube oils.

Priolube 6050 helps formulators overcome the traditional tradeoff between stability and biodegradability in hydraulic fluid formulations.

 

Request a sample   Download brochure

 

Key benefits for hydraulic fluids

Performance benefits that matter in real applications

Green line icon combining a leaf shape with a circular arrow looping around it, symbolizing biodegradability or natural decomposition.

Readily biodegradable*

Simple green line icon of a leaf outline with a central stem and branching veins, representing bio-based or plant-derived content.

High bio-based content**

Green line icon of a laboratory flask with a liquid level indicated across the middle, symbolizing chemical stability and resistance to oxidation and hydrolysis.

Strong oxidative and hydrolytic stability

Green line icon showing a vertical bar chart with three ascending bars beside a circle containing a check mark, representing performance, durability, and low friction.

Low friction

What challenges does Priolube 6050 solve?

How to improve hydraulic fluid durability and performance

Hydraulic fluids often suffer from hydrolysis, oxidation, and friction‑related losses leading to shorter fluid life and reduced efficiency. Priolube 6050 helps formulators overcome these limitations by enhancing stability, lowering friction, and supporting EAL‑compliant formulations.

Problem: Hydrolysis in water-rich systems - causes acid formation and fluid degradation

Solution: Increased resistance to hydrolysis - less acid formed, longer fluid lifetime

Problem: Oxidation at high operating temperatures - reduces fluid lifetime

Solution: High oxidative stability - increases fluid lifetime

Problem: Low biodegradability of conventional fluids

Solution: 86% bio-based** and readily biodegradable*

Problem: Energy losses from friction

Solution: Lower traction and improved efficiency

 

Why formulators are re-evaluating conventional hydraulic base oils

     

Table showing why formulators are re-evaluating conventional hydraulic base oils

     

 

Why Priolube 6050?

Unlocking measurable value for your formulations

86%

Bio-based content*

Reduces reliance on fossil resources

>10x

Longer oxidation life

                    vs. PAO40                      

>1700

Minutes

Of oxidation induction time

30%

Lower traction

vs. conventional saturated esters and PAO

 

Proven performance

Superior oxidative stability

Priolube 6050 shows a significantly longer oxidation‑induction period than conventional base oils, indicating superior resistance to thermal oxidation.

Oxidative stability measured by RapidOxyTM tester (ASTM D7545). Sample pressurized to 700 kPa O₂ and held at 160 °C; oxidation is tracked as a pressure drop. The time to reach a 10% pressure decrease reflects the sample’s oxidative induction time.

Figure 1. Oxidative stability measured by RapidOxy tester (ASTM D7545). Sample pressurized to 700 kPa O₂ and held at 160 °C; oxidation is tracked as a pressure drop. The time to reach a 10% pressure decrease reflects the sample’s oxidative induction time.

Exceptional hydrolytic stability

Priolube 6050 demonstrates the lowest acid value increase over time, confirming excellent resistance to water‑induced degradation.

Hydrolytic stability of ester base oils evaluated using Swedish standard SS155181.

Figure 2. Hydrolytic stability of ester base oils evaluated using Swedish standard SS155181. Samples containing 10% water were held at 90 °C in a sealed conical‑flask, and ΔAcid Value was measured at 5, 8 and 15 days.

Efficiency gains at 40°C

Priolube 6050 maintains lower traction across operating and high‑temperature conditions, supporting improved efficiency and reduced wear.

Priolube 6050 exhibits a lower coefficient of friction across 0–100% SRR than unsaturated and saturated polyol esters and ISO 150 PAO blends, indicating reduced traction and improved efficiency at moderate operating temperatures.

Figure 3. MTM traction curves at 40 °C under 16 N load and 2 ms⁻¹ entrainment speed. Priolube 6050 exhibits a lower coefficient of friction across 0–100% SRR than unsaturated and saturated polyol esters and ISO 150 PAO blends, indicating reduced traction and improved efficiency at moderate operating temperatures.

Efficiency gains at 100°C

Priolube 6050 maintains lower traction across operating and high‑temperature conditions, supporting improved efficiency and reduced wear.

MTM traction curves at 100 °C under 16 N load and 2 m s⁻¹ entrainment speed.

Figure 4. MTM traction curves at 100 °C under 16 N load and 2 m s⁻¹ entrainment speed. Priolube 6050 maintains lower traction than comparative ester and PAO systems across the SRR range, demonstrating stable low‑friction performance and efficiency benefits at elevated temperatures.

 

Solve formulation challenges with Cargill experts

Work directly with our technical specialists to evaluate performance targets, EAL-related requirements and formulation tradeoffs to optimize stability, efficiency and fluid life.

 

*OECD 301B

**ASTM D6866