Thrust & Torque — Raise-Bore Reamer (Info)
Cutterhead thrust and torque estimate for a raise-bore reamer (info).
Raise boring pulls the reamer UP — thrust is pull on the drill string, torque from the surface rig. Same cutter physics rotated vertical: the per-cutter force and count arithmetic carries straight over to reamer head design.
Formula
Note: Planning-level tunnelling estimate — actual TBM performance is set by detailed geotechnical baseline data, machine design and the contractor's means & methods. Use for feasibility framing only.
Disclaimer: This tool is for general informational and estimation purposes only and is not professional financial, tax, accounting or legal advice. All figures are estimates — verify with a qualified professional before making decisions. Read the full disclaimer.
Cutterhead thrust and torque estimate for a raise-bore reamer (info). A free tbm performance & tunnelling tool — no sign-up, no upload, instant results in your browser.
About Thrust & Torque — Raise-Bore Reamer (Info)
Thrust & Torque — Raise-Bore Reamer (Info) computes the governing relationship thrust = (n·F) × (1+friction) · T ≈ α·D³ live as you type. Raise boring pulls the reamer UP — thrust is pull on the drill string, torque from the surface rig. Same cutter physics rotated vertical: the per-cutter force and count arithmetic carries straight over to reamer head design. Defaults are pre-filled with realistic values for this exact scenario, and the worked example substitutes your numbers step by step so the math is never a black box.
How to use Thrust & Torque — Raise-Bore Reamer (Info)
- 1Enter your values — Disc cutters, Force per cutter, Diameter, Shield friction & drag share and more (sensible defaults are pre-filled).
- 2Read the live results: Total thrust required, Breakout torque.
- 3Check the "with your numbers" line to see thrust = (n·F) × (1+friction) · T ≈ α·D³ substituted step by step.
- 4Adjust inputs until the scenario matches yours, then copy or share the result.
Why use Thrust & Torque — Raise-Bore Reamer (Info)?
- ✓Instant, free and private — every calculation runs client-side in your browser; nothing is uploaded
- ✓Built on the stated formula thrust = (n·F) × (1+friction) · T ≈ α·D³ with authoritative sources cited on the page (Maidl et al., Mechanised Shield Tunnelling, 2nd ed.; Colorado School of Mines TBM performance model)
- ✓Raise boring pulls the reamer UP — thrust is pull on the drill string, torque from the surface rig.
- ✓Niche-specific defaults give a meaningful worked answer the moment the page loads
Frequently asked questions
What formula does the thrust & torque — raise-bore reamer (info) use?+
It evaluates thrust = (n·F) × (1+friction) · T ≈ α·D³, exactly as published. Sources: Maidl et al., Mechanised Shield Tunnelling, 2nd ed.; Colorado School of Mines TBM performance model. The substituted worked example on the page lets you verify every step against the textbook.
How should I read the result — and how far can I trust it?+
Raise boring pulls the reamer UP — thrust is pull on the drill string, torque from the surface rig. Planning-level tunnelling estimate — actual TBM performance is set by detailed geotechnical baseline data, machine design and the contractor's means & methods. Use for feasibility framing only.
When is this calculator the right tool for the job?+
Cutterhead thrust and torque estimate for a raise-bore reamer (info). A free tbm performance & tunnelling tool. Same cutter physics rotated vertical: the per-cutter force and count arithmetic carries straight over to reamer head design. For neighbouring scenarios, the related tools below cover the same engine with different presets.
Do I need to install anything or create an account?+
No. The tool is pure client-side JavaScript: open the page and it works, offline once loaded, with no account, no quota and no data leaving your device.
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