Field-ready calculators built on ASME B30.9. Use the tabs below to switch between tools. Always verify critical lifts with a qualified person.
—°
Sling angle from horizontal
60° and up45°30° and below
Load
Rigging Configuration
30° min recommended · 60° ideal · 90° = vertical
Results
Tension per Leg—
Angle Correction Factor—×
Legs sharing the load—
⚠ Field reference only. All critical lifts must be reviewed by a qualified rigger. Never exceed the WLL of any rigging component.
Chain Specifications
Configuration
Results
Single Leg WLL (vertical)—lbs
Leg Factor—×
Angle Factor—×
Assembly WLL—lbs
—
⚠ WLL values based on ASME B30.9 Grade 100 and Grade 80 alloy chain tables. Verify against chain manufacturer documentation. Never exceed WLL of the weakest component.
Material
Shape & Dimensions
Results
Estimated Weight—lbs
In Short Tons—tons
In Metric Tons—t
Volume—ft³
⚠ Estimates only. Always verify actual load weight before rigging. Account for coatings, attachments, and fluids.
Conversion Type
Convert
Result—
Full precision—
Frequently Asked Questions
Grade refers to the chain's minimum tensile strength per unit of cross-sectional area. Grade 70 is a transport/cargo control chain, not rated for overhead lifting. Grade 80 is an alloy chain approved for overhead lifting. Grade 100 is stronger than Grade 80, allowing a higher WLL in a lighter chain, and it's become the industry standard for lifting applications. Never use Grade 30 or Grade 43 (proof coil) for overhead lifting.
Start with four things: the weight of the load, the shape and surface of the load, the lifting environment (heat, chemicals, abrasion), and the required hitch type (vertical, choker, or basket). Wire rope slings handle abrasion and heat well. Synthetic slings are gentle on finished surfaces but vulnerable to cuts and chemicals. Chain slings are the most durable and heat-resistant. When in doubt, call us.
A design factor is the ratio of a sling's minimum breaking strength to its working load limit. ASME B30.9 requires a minimum design factor of 5:1 for most slings. Crane hoist lines typically use 3.5:1. Personnel hoisting requires 10:1. The design factor accounts for dynamic loads, wear, and the consequences of failure.
ASME B30.9 requires a visual inspection before each use, a periodic inspection by a qualified person at intervals determined by frequency of use (typically annually for normal use), and documentation of those inspections. We offer on-site inspections and can help you establish a compliant inspection program.
AWRF Accreditation is a voluntary program run by the Associated Wire Rope Fabricators. To earn it, a fabricator has to pass an independent third-party audit carried out by the Lifting Equipment Engineers Association (LEEA), the global standards body for the lifting industry. The audit covers products, fabrication processes, inspection practices, technical training, and documented quality management. Only a select group of companies hold it. Nelson Wire Rope passed its audit in April 2024.
For wire rope slings: 10 randomly distributed broken wires in one rope lay, or 5 broken wires in one strand. For chain slings: any crack, gouge, nick, or deformation; wear exceeding 10% of original dimensions; chain stretch. For synthetic slings: cuts, tears, broken stitching, chemical damage, heat damage, or a missing/illegible tag. When in doubt, remove it.
Screw pin shackles are quick to rig but can back out if the pin rotates during the lift, dropping the load. Bolt-type (safety) shackles have a bolt secured with a nut and cotter pin, far more secure for permanent connections, rotation-prone applications, and overhead lifts where backing out would be catastrophic.
Yes. In-house fabrication is one of our core capabilities. Wire rope slings, chain slings, synthetic slings, and custom hardware assemblies. Every sling we fabricate is proof-tested and certified before it leaves the shop. Call us with your specs.
Need help with a specific lift?
Our team has decades of hands-on rigging experience. Call us with your load, configuration, and environment.