We never sell your data to third parties
NTN 32026XUP6 single row metric series tapered roller bearing with 130 mm straight bore and open design. Through hardened steel construction for high radial and axial load capacity. Suitable for gearboxes, vehicle wheel hubs, and industrial shaft applications.
MODEL 32026XUP6
$624.84 Each
Prices are subject to change
FREE SHIPPING ON ORDERS OVER $100
Select Quantity
Typically Ships in: 1 day
Returnable:No
a (Effective Load Center)
-0.0591 in
B (in)
1.7717
Bore Type
Round
Bore type
Round
C (in)
1.3386
Configuration
One
D (in)
7.8740
d (in)
5.1181
Da
7.48 in
da
142.0 mm
Da min
7.01 in
Db
7.56 in
db
5.67 in
Dynamic Load Rating
72000 lbf
Dynamic load rating
72000 lbf
e (Axial Load Factor)
0.43
Enclosure
Open
I.D.
5.1181 in
Limiting Speed - Grease
1700 RPM
Limiting speed - grease
1700 RPM
Limiting Speed - Oil
2200 RPM
Limiting speed - oil
2200 RPM
Lubrication
w/o Oil Hole
Material
Through hardened steel
O.D.
7.874 in
Operating Temperature Range
-40 to 250 °F
Operating temperature range
-40 to 250 ºF
Precision Rating
ISO Class 6
Precision rating
ISO Class 6
R (in)
0.10
r (in)
0.0800
Static Load Rating
123000 lbf
Static load rating
123000 lbf
Style
Cone & cup
T (in)
1.7717
Type
Tapered Roller Bearing
Y0 (Axial Load Factor)
0.76
Y2 (Axial Load Factor)
1.38
Technical Specifications
Type | Tapered Roller Bearing |
Bore Type | Round |
Material | Through Hardened Steel |
Limiting Speed - Oil | 2200 RPM |
Limiting Speed - Grease | 1700 RPM |
Style | Cone & Cup |
Precision Rating | ISO Class 6 |
Configuration | One |
Lubrication | w/o Oil Hole |
e (Axial Load Factor) | 0.43 |
Y2 (Axial Load Factor) | 1.38 |
Y0 (Axial Load Factor) | 0.76 |
Static Load Rating | 123000 lbf545000 N545.00 kN |
Dynamic Load Rating | 72000 lbf320000 N320.00 kN |
Enclosure | Open |
Weight | 10.935 lb4.960 kg |
Operating Temperature Range | -40 to 250 F-40 to 120 C |
What lubrication is required for taper roller bearing assemblies?
Taper roller bearings perform well with either grease or oil, depending on speed and environment. Sealed cartridges with lifetime grease work best at low to moderate speeds (below ~3000 RPM), while higher-speed applications benefit from oil circulation or oil-mist systems to minimize friction and heat. Use lubricants compatible with the bearing seals and materials; contaminated or depleted lubricant is a leading cause of premature failure.
How do I select the right taper roller bearing assembly for my application?
Selection starts with identifying your radial and axial load requirements, operating speed, and temperature range. Consult bearing load-rating tables to find assemblies with adequate basic dynamic load ratings (C) for your calculated life expectancy, and verify the basic static load rating (C₀) meets peak loads. Confirm the bore diameter matches your shaft and choose sealed or open configurations based on your environment.
How should I mount and preload a taper roller bearing assembly?
Taper roller bearings are typically mounted in pairs (back-to-back or face-to-face) to handle combined loads and improve stiffness. Preloading—applied via spring loads, shim stacks, or adjustable mounting nuts—eliminates radial play and reduces noise and deflection. Avoid over-preloading, which generates excess heat and shortens bearing life; follow manufacturer guidance, usually expressed as a light drag force when hand-rotating the assembly.
What's the difference between radial and axial load capacity, and does it matter for taper roller bearings?
Taper roller bearings uniquely handle both radial (perpendicular to shaft) and axial (along the shaft) loads simultaneously—a major advantage over other bearing types. The bearing's contact angle determines how load is distributed between radial and axial directions; a steeper angle shifts capacity toward axial loads. Always evaluate bearing life (L₁₀) for your combined load scenario, since exceeding either load direction degrades total service life.
What are the most common failure modes, and how can I avoid them?
Spalling (surface fatigue from overload or misalignment), fretting corrosion (vibration without rotation), and loss of preload are the primary failure mechanisms. Prevent these through proper radial alignment (within ~0.05 mm), clean and adequate lubrication, regular temperature monitoring, and periodic wear inspection. Use precision machining and tight bearing-seat tolerances to maintain alignment; even small misalignments compound over time and dramatically reduce bearing life.
Why can tapered roller bearings handle both radial and axial (thrust) loads when other bearings can't?
Tapered roller bearings are designed with tapered rollers and raceways at an angle, allowing them to carry combined radial and axial loads. The contact angle of the inner ring (cone) and outer ring (cup) raceways creates a force component on the rollers that distributes load over a larger area, increasing load capacity in both directions. The steeper the taper angle, the greater the axial load capacity—though this comes at the cost of slightly lower radial capacity. Sources: ScienceDirect - Tapered Roller Bearings; SKF - Tapered Roller Bearing Loads; ISK Bearings.
What's the difference between RBEC (inch) and ISO metric tapered roller bearing standards?
RBEC designates the tolerance standard for inch-series tapered roller bearings following ANSI/ABMA standards, with tolerance classes 4, 2, 3, 0, and 00. ISO metric tapered roller bearings follow the ISO 492 standard with different tolerance classes (0, 6X, 6, 5, and 4) plus additional classifications like K, N, C, B, A per ISO/DIN standards. The standards differ in tolerance requirements and specifications, so ensure you order the correct series for your application—inch or metric dimensions are not interchangeable. Sources: NTN Bearing Tolerance Standards; AST Bearings - Bearing Tolerances and Precision Levels.
How are tapered roller bearings set up when mounted in opposing pairs, and why does that matter for the application?
When two tapered roller bearings are mounted in opposition, engineers can configure them three ways: End play (axial clearance between rollers and races, allows controlled movement); Preload (axial interference with minimal shaft movement, for rigidity); Line-to-line (zero setting condition, minimal clearance). The key is that the axial location of one bearing row must be set relative to the opposite row. This opposing pair arrangement allows the bearing system to support axial forces equally in both directions and gives designers control over how tightly the bearings are seated—critical for applications like wheel hubs and gearboxes where you want predictable play and load distribution. Sources: Timken - Bearing Setting Procedures; BCA Bearings - Installation Procedures and Tips for Wheel-End Tapered Roller Bearings; Pumps & Systems.
What are the main industrial applications for tapered roller bearings, and why are they chosen over other bearing types?
Tapered roller bearings excel in heavy-duty, multi-directional load applications where both radial and axial forces are present: - Automotive wheel hubs and axles: Support the combined weight and steering/braking forces on vehicles - Gearboxes and speed reducers: Handle moment loads and simultaneous radial/axial stress in transmission systems - Industrial machinery and motors: Provide rigidity and load capacity for pumps, fans, and propeller shafts They're chosen over other bearing types because they provide higher load capacity and moment rigidity than angular contact ball bearings (ACBBs) in the same space, making them ideal when space is limited but loads are severe. Sources: NSK Global - Tapered Roller Bearings; ISK Bearings - Tapered Roller Bearings; NBC Bearings - Tapered Roller Bearings.
What are the "cone" and "cup" parts of a tapered roller bearing, and why does that matter?
In tapered roller bearing terminology, the inner ring is called the cone and the outer ring is called the cup. The cup is the outer ring component, while the cone assembly includes the inner ring, rollers, and cage. This nomenclature matters because tapered roller bearings are separable—the cone and cup can be removed and mounted separately, giving you flexibility in assembly. Source: ScienceDirect - Tapered Roller Bearings.
What are the main types of roller bearings and what is each used for?
Roller bearings are classified by roller geometry, with each type optimized for different load and speed conditions: Cylindrical Roller Bearings handle pure radial loads at the highest speeds among roller bearing types. They feature linear contact between cylindrical rollers and raceways. Common applications include machine tool spindles, wind turbine generators, printing presses, and rolling mills. Their low sliding friction enables them to operate at DN (bore diameter mm × speed rpm) values up to 2,000,000+. Tapered Roller Bearings are designed for combined radial and axial loads simultaneously, with the ability to absorb moment loads when used in pairs. They feature trapezoidal rollers with angled raceways. Typical applications include automotive wheel hubs, transmissions, pumps, and compressors. Spherical Roller Bearings excel in heavy machinery with shock loads and misalignment. They contain two rows of barrel-shaped rollers in a spherical outer raceway, enabling self-alignment up to ±3 degrees and simultaneous high radial and axial load capacity. Common applications include mining conveyors, crushers, cement mills, steel rolling mills, and wind turbine main shafts. Needle Roller Bearings provide maximum load capacity in minimum space through a distinctive high length-to-diameter ratio (typically 3-10:1 or higher). This slender, elongated roller geometry enables compact bearing designs where radial height must be minimized. Despite their compact profile, needle rollers deliver high stiffness and radial load capacity.
How do load ratings and bearing life relate to operating speed?
Roller bearing load ratings are specified under the ISO 281 standard. Understanding how load and speed interact helps predict bearing service life. Basic Dynamic Load Rating (ISO 281): The Basic Dynamic Load Rating (C) is a constant load that results in exactly one million revolutions before 90% of identical bearings fail from fatigue. This is the benchmark used by all bearing manufacturers (SKF, NSK, Timken, JTEKT). Fatigue Life Calculation: L₁₀ = (C ÷ P)^(10/3), where C = Basic Dynamic Load Rating, P = Actual dynamic equivalent load, L₁₀ = life in millions of revolutions at 90% reliability. Load-Life Relationship: If you reduce operating load to 50% of rated capacity, bearing life increases by a factor of 10×. If you double the load, bearing life reduces to 1/10 original life. Speed Rating and Operating Limits (DN = bore diameter mm × speed rpm): - DN <1,000,000: Grease-lubricated bearings perform optimally - DN 1,000,000-1,500,000: Transition zone; oil lubrication recommended - DN 1,500,000+: Oil lubrication required; risk of grease breakdown and bearing overheating Example: A cylindrical roller bearing with C = 100 kN carrying 20 kN load: L₁₀ = (100 ÷ 20)^(10/3) = 5^(10/3) ≈ 63 million revolutions. At 1,000 rpm this equals ~1,050 operating hours.
Which roller bearing type is best for heavy loads and shock impacts?
Spherical Roller Bearings are the first choice for heavy loads combined with shock impacts, vibration, and misalignment. Why Spherical Rollers Excel in Harsh Conditions: Their self-aligning design (±3 degree tolerance) accommodates shaft deflection and installation misalignment without premature wear. Two rows of barrel-shaped rollers distribute shock loads across multiple rolling elements, extending bearing life dramatically compared to single-row designs. The spherical raceway design enables simultaneous high radial load capacity and significant axial load capacity. Typical Applications: - Mining equipment and conveyors - Crushers, vibrating screens, and ore mills - Cement industry kiln systems - Steel rolling mill equipment - Paper machine dryer cylinders - Wind turbine main shafts - Marine propulsion systems Alternative for Combined Loads: If your application requires both heavy radial and axial loads but less misalignment tolerance, Tapered Roller Bearings (often used in matched pairs) provide superior precision and combined load handling. However, they require careful alignment and are less forgiving of shaft deflection than spherical rollers.
How do I properly mount a tapered roller bearing on a shaft?
Tapered roller bearing installation requires specific procedures to achieve proper preload and longevity. 1. Prepare the Shaft: Clean shaft surface thoroughly. Ensure bore diameter tolerance is within specification per bearing manufacturer guidance. 2. Determine Taper Ratio and Drive-Up Measurement: Tapered roller bearings are mounted on tapered shafts or tapered sleeves with specific reduction ratios: - 1:12 solid steel tapered shaft: 16× reduction - 1:12 tapered sleeve: 18× reduction - 1:30 solid steel tapered shaft: 39× reduction - 1:30 tapered sleeve: 42× reduction Example: 1:12 ratio with bearing bore 50mm requires approximately 50mm ÷ 16 = 3.1mm of axial movement to achieve the target preload. 3. Mount with Interference Fit: The inner ring must be seated with slight interference fit on the shaft taper. Do NOT install bearings loosely; negative clearance (preload) is essential for fatigue performance and stiffness. 4. Apply Lubrication Before Operation: For non-greased bearings, apply bearing grease into the housing grease sector via grease nipple before operation. Never leave a dry bearing installed. 5. Verify Installation: Measure the drive-up displacement along the shaft axis to confirm proper seating. Consult bearing specification sheet for target preload force.
When should I use a roller bearing instead of a ball bearing?
Roller bearings and ball bearings serve different load, speed, and precision combinations. Roller bearings have line contact between rolling elements and raceways, giving higher load capacity per unit volume than point-contact ball bearings, but that same line contact creates more sliding friction and limits speed. Choose roller bearings for heavy radial loads at low-to-moderate speeds, and ball bearings for high-speed rotation, lighter loads, combined radial and axial loads, or high precision.
What bearing materials are available and which should I use?
Standard bearing materials include: - Chrome Steel — Premium bearing steel used by SKF, NSK, Timken, and most manufacturers. Offers excellent hardness, fatigue resistance, and durability in standard industrial applications. Most common for ball and roller bearings. - Stainless Steel — Provides corrosion resistance for applications in wet, humid, or chemically corrosive environments. Used in food processing, marine, and pharmaceutical equipment. - Ceramic Hybrid Bearings — Combine steel races with ceramic rolling elements. Offer reduced friction, lower heat generation, and higher temperature capability. Used in high-speed, high-precision applications and aerospace. - Polymeric Bearings — Utilize fluoropolymer composites with embedded graphite or PTFE. Provide low friction in high-speed applications where lubrication film breakdown would be problematic. Material selection depends on operating environment (temperature, moisture, chemical exposure), speed, load, and precision requirements. Standard chrome steel bearings suit most industrial MRO applications.
What is a bearing and what does it do?
A bearing is a mechanical component that enables smooth rotational or linear motion by reducing friction between moving parts. Bearings support loads and facilitate the transfer of forces between moving elements, preventing direct metal-to-metal contact that would cause wear and heat buildup. Rolling element bearings contain balls or rollers that rotate within races (raceways) to minimize friction. Common types include ball bearings (used for moderate loads and high speeds), roller bearings (used for heavy loads at medium speeds), and angular contact bearings (designed for combined radial and axial loads). Bearings are essential in industrial equipment including motors, pumps, compressors, gearboxes, turbines, and conveyor systems.
How do I choose the right type of bearing for my application?
Start with the load and how it’s applied. You need to know if you’re dealing with radial loads, axial loads, or a mix of both. Then look at speed, operating environment, and space constraints. For example, ball bearings are great for high speed and lighter loads, while roller bearings handle heavier loads but usually at lower speeds. If there’s contamination, moisture, or heat involved, you may need sealed bearings or specific materials. In most cases, the right choice comes down to matching load type, speed, and environment to the bearing design.
How should I maintain and lubricate bearings?
Lubrication Importance — Improper lubrication causes over 40% of bearing failures. Proper bearing lubrication prevents friction damage, dissipates heat, protects against corrosion, and acts as a barrier against contaminants (dust, moisture, debris). Lubrication Selection — Choose between grease and oil based on: - Grease: Suitable for low-to-medium speed, sealed bearings, and applications without continuous circulation. Easier to apply and retain. Common for motors, household appliances, and sealed units. - Oil Mist or Circulating Systems: Better for high-speed applications, high-temperature environments, and heavy-load machinery where heat dissipation is critical. Best Practices: 1. Map all lubrication points and create a maintenance schedule. 2. Use the correct lubricant type and viscosity grade specified by the bearing manufacturer. 3. Store lubricants in sealed, labeled containers away from moisture and contaminants. 4. Monitor bearing temperature and vibration; unusual heat or noise may indicate inadequate lubrication or bearing wear. 5. Replace bearings before reaching L10 life if contamination or lubrication failure is detected.
What are dynamic and static load ratings, and why do they matter?
Static Load Rating (C₀) — The maximum load a stationary or slowly rotating bearing can support without permanent deformation of its rolling elements or raceways. Defined by ISO 76 as the load producing 0.01% permanent deformation of the rolling element diameter. Static load capacity is the limiting factor when a bearing operates at very low speeds or remains stationary under heavy loads. Dynamic Load Rating (C) — The constant load a bearing can endure for a specified number of revolutions (the L10 life, at which 90% of identical bearings are expected to survive). Dynamic load rating determines how long a bearing will last under rotating or oscillating motion. ISO 281 defines the L10 calculation using the formula: L10 = (C/P)^p, where C is dynamic load rating, P is equivalent dynamic load, and p is the life exponent (3 for ball bearings, 10/3 for roller bearings). Why They Matter — Static load rating determines if a bearing can handle peak loads without permanent damage (even if not rotating). Dynamic load rating determines operational life. For high-speed applications, dynamic rating is critical. For low-speed or stationary loads, static rating may be the limiting factor. Always verify both ratings against your application's load profile.
How do I choose the right bearing for my application?
Bearing selection depends on five key factors: 1. Load Type and Direction — Determine whether your application has radial loads (perpendicular to shaft), axial loads (along the shaft), or combined loads. Deep groove ball bearings suit primarily radial loads; tapered roller bearings excel at combined loads; thrust bearings handle pure axial forces. 2. Rotational Speed — Ball bearings support higher speeds with lower friction. Roller bearings are better for medium-speed, heavy-load applications. Verify bearing speed ratings against your operating RPM. 3. Load Capacity — Select a bearing with adequate load capacity for your application. Basic dynamic load rating (C) and basic static load rating (C₀) determine how much load the bearing can safely carry. 4. Lubrication Requirements — Choose between grease and oil lubrication based on speed, temperature, and load. High-speed or high-temperature applications typically require oil circulation; lower-speed applications can use grease. 5. Precision and Rigidity — Evaluate your application's tolerance for runout deviation. High-precision applications require tighter tolerances and higher-grade bearings.
What is bearing life (L10) and how does it affect my equipment maintenance?
L10 Life Definition (ISO 281) — L10 is the basic rating life at which 90% of a large group of identical bearings are statistically expected to survive under constant load and speed. It is calculated in millions of revolutions using the formula: L10 = (C/P)^p, where C is the basic dynamic load rating, P is the equivalent dynamic bearing load, and p is the life exponent (3 for ball bearings). Converting L10 to Operating Hours — To express L10 life in hours: L10h = (L10 × 10^6) / (60 × n), where n is rotational speed in RPM. For example, a bearing with L10 = 1,000 million revolutions operating at 3,600 RPM has approximately L10h ≈ 4,630 hours. Modified Life (L10a) — Actual bearing life also depends on lubrication quality, contamination, speed, temperature, and bearing accuracy. ISO 281 defines a modified life factor (a₁ × aISO) that adjusts the theoretical L10 for these real-world conditions. High-quality lubrication and proper maintenance can extend bearing life significantly; poor lubrication or high contamination reduces it. Why It Matters for Maintenance — L10 life helps you schedule preventive maintenance, budget for bearing replacement, and select bearings adequate for your duty cycle.
| Brand | Turck |
| Model | BI5-M18-AP6X |
| Brand | Bestorq |
| Model | 550H300 |