Skip to content

Solid Carbide vs Indexable Insert for Deep Hole Drilling

The crossover point between solid carbide and indexable insert deep hole drilling is around 14–20 mm diameter — below it, carbide's rigidity wins; above it, the economics of replaceable inserts become increasingly compelling.

Overview

Deep hole drilling tooling falls into two broad categories: solid carbide (one-piece construction, tip and body are a single carbide element) and indexable insert (steel tool body with replaceable carbide inserts). The choice between them affects not only initial tooling cost but also process reliability, inventory requirements, and long-term cost per hole.

Both categories are used across gun drilling and BTA drilling, though the practical diameter ranges differ. Understanding where each type excels — and where the crossover point lies — is essential for process planning.

Solid Carbide Tooling

Solid carbide deep hole drills consist of a single piece of carbide (the cutting head and body) brazed into a steel shank or driver. The entire cutting portion is carbide, with no joints between the tip and body.

Typical Configuration

  • Gun drilling: Solid carbide from tip through fluted body, brazed to steel driver
  • BTA drilling: Solid carbide head brazed directly to steel drill tube
  • Diameter range: 0.5–20 mm (gun drilling); 8–65 mm (brazed BTA heads)
  • Depth capability: Up to 100× diameter in a single pass

Advantages

AdvantageWhy It Matters
Highest rigidityOne-piece construction resists torsional wind-up; enables better straightness and surface finish
Superior surface finishCan achieve Ra 0.4 µm without secondary operations
Tighter tolerancesIT7–IT9 achievable; TIR as low as ±0.0005"
Higher feed potentialSome solid carbide geometries allow 100–150% higher feed rates than equivalent brazed drills
No braze joint at headEliminates a failure point and potential coolant obstruction
Regrindable5–15 regrinds per tool, extending useful life

Limitations

LimitationImpact
High initial costA solid carbide gun drill can cost $500+ for larger diameters
BrittlenessCarbide is hard but brittle; susceptible to chipping from runout or interrupted cuts
Regrinding logisticsMust be sent to a specialist; requires maintaining spare tool inventory
Diameter-limitedImpractical above 20 mm (gun drilling) or 65 mm (BTA) due to cost and brittleness

Indexable Insert Tooling

Indexable insert deep hole drills use a steel tool body with replaceable carbide inserts. When an insert's cutting edges are worn, the insert is indexed (rotated to a fresh edge) or replaced entirely, while the tool body remains in service.

Typical Configuration

  • Gun drilling: Indexable insert gun drills for diameters above ~15 mm
  • BTA drilling: Indexable insert heads for diameters from 15 mm upward
  • Diameter range: 15–250 mm and beyond
  • Edge count per insert: 4–8 depending on geometry

Advantages

AdvantageWhy It Matters
Lower cost per edgeIndividual inserts cost a fraction of a solid carbide tool
No regrinding neededReplace inserts on-machine in seconds
Material flexibilityChange insert grade/coating for different materials using the same tool body
Lower inventory costStock inserts (small, standardized) rather than many solid tools
Adjustable diameterSome BTA heads allow diameter adjustment via insert or shim changes
Forgiving of interruptionsInsert absorbs impact better than a solid carbide edge

Limitations

LimitationImpact
Lower rigidityMechanical clamping introduces runout and reduces stiffness
Poorer surface finishRa 0.8–3.2 µm typical; rougher than solid carbide equivalents
Reduced depth capabilityIndexable connections limit L/D ratio compared to solid designs
Larger minimum diameterNot practical below 14–15 mm due to insert size constraints
Per-edge tool life shorterEach edge lasts 2–3 hours typically vs. 7+ hours for solid carbide

Head-to-Head Comparison

ParameterSolid CarbideIndexable Insert
Diameter range (gun drill)0.5 – 20 mm15 – 65 mm
Diameter range (BTA)8 – 65 mm (brazed)15 – 250 mm+
Cost per edgeHigh (entire tool)Low (just the insert)
Tool body costPaid per tool (disposable)One-time; reusable indefinitely
RigidityVery highModerate
Surface finish (Ra)0.4 – 1.6 µm0.8 – 3.2 µm
Tolerance (IT grade)IT7 – IT9IT9 – IT11
Regrind requiredYes (5–15× per tool)No
Edge change timeTool removed from machineSeconds, on-machine
Catastrophic failure costReplace entire toolReplace only insert
Typical edge life5–10 hours1–3 hours

Cost Per Hole Analysis

The economics of solid carbide vs. indexable insert tooling depend primarily on diameter and production volume.

Small Diameters (under 14 mm)

Solid carbide is almost always more economical at small diameters. Indexable inserts below 14 mm are not widely available, and the rigidity advantage of solid carbide is critical for maintaining straightness at high L/D ratios. The initial cost is higher, but the per-hole cost is competitive when regrinding is factored in.

Medium Diameters (14–20 mm)

This is the crossover zone. Both tooling types are technically feasible, and the economic choice depends on:

  • Production volume: High volume favors indexable (lower cost per edge, faster changes)
  • Quality requirements: Tight tolerances favor solid carbide
  • Material mix: Multiple materials favor indexable (change insert grade)
  • Machine utilization: Indexable reduces downtime from tool changes

Large Diameters (above 20 mm)

Indexable insert tooling becomes increasingly economical as diameter increases. The cost of a solid carbide tool scales with the cube of the diameter (more material, more grinding), while an indexable head's cost is dominated by the reusable steel body.

Real-World Data

Allied Machine's BT-A indexable BTA drill heads demonstrate the potential cost savings:

MetricAerospace Landing Gear (4340 steel, Ø52 mm)
Tool life43 holes per edge (BT-A) vs. 2 holes (competitor solid)
Cycle time1 min 20 sec vs. 15 min
Cost per hole99% reduction

In this case, the indexable head paid for itself after 15 parts.

Selection Framework

Choose Solid Carbide When

ConditionReason
Diameter under 14 mmIndexable tooling not practical
Surface finish Ra < 0.8 µm requiredSolid carbide achieves better finish
Tight straightness toleranceOne-piece construction is more rigid
Low to moderate production volumeRegrinding economics work at lower volumes
High L/D ratio (> 50:1)Solid carbide maintains straightness better
Limited tooling budget for inventoryOne tool covers the job

Choose Indexable Insert When

ConditionReason
Diameter above 20 mmEconomics shift decisively to indexable
High production volumeLower cost per edge at scale
Multiple workpiece materialsChange insert grade, keep same body
Minimizing downtime is criticalOn-machine insert change in seconds
Limited regrinding capabilityNo regrinding expertise needed
Catastrophic failure risk is highReplace insert, not the entire tool

Decision Matrix

Dia < 14 mm  ─── Solid carbide
Dia 14–20 mm ─── Evaluate both:
                  High volume       → Indexable
                  Tight tolerances  → Solid carbide
                  Mixed materials   → Indexable
Dia > 20 mm  ─── Indexable insert (or brazed BTA for moderate volumes)

Brazed carbide is a third option

Brazed (non-indexable) BTA heads occupy the middle ground — they offer lower cost than solid carbide at larger diameters but still require replacement or retipping when worn. For moderate volumes at 20–65 mm, brazed BTA heads may be more economical than either solid carbide or indexable systems.

Regrinding Economics

Solid carbide tools can be reground 5–15 times, each regrind restoring the original geometry. The cost per regrind is typically 30–50% of the new tool cost.

Breakeven Calculation

If a solid carbide drill costs $500 and can be reground 10 times at $200 each:

  • Total usable life: $500 + (10 × $200) = $2,500
  • Cost per regrind cycle: $250

If an equivalent indexable head costs $350 (one-time) with inserts at $15 each and 6 edges per insert:

  • Total cost per edge: $15 ÷ 6 = $2.50
  • Tool body amortized over thousands of edges

The crossover depends on volume: at low volumes, the solid carbide's regrind economics work well; at high volumes, the indexable system's per-edge cost is unbeatable.

Summary

Decision FactorSolid CarbideIndexable Insert
Best diameter range< 14 mm> 20 mm
Cost advantageLow volume, small diameterHigh volume, large diameter
Quality advantageSurface finish, straightnessMaterial flexibility
Operational advantageSet and forgetQuick change, low consumable cost
Tool life managementRegrinding program neededInsert inventory management

FAQ

At what diameter should I switch from solid carbide to indexable?

The crossover point is approximately 14–20 mm. Below 14 mm, solid carbide is the standard with few indexable options available. Above 20 mm, indexable insert tooling becomes increasingly economical. In the 14–20 mm range, evaluate based on production volume, quality requirements, and material variety.

How many times can a solid carbide gun drill be reground?

Typically 5–15 times, depending on the original tip length and the amount removed per regrind (0.2–0.5 mm per cycle). Each regrind restores the cutting geometry. The tool is retired when the carbide tip becomes too short for effective chip evacuation or when the shank clearance becomes insufficient.

Are indexable insert gun drills available for small diameters?

Indexable gun drills are generally limited to diameters above 15 mm due to the space required for the insert clamping mechanism and the screw or clamp. For diameters under 15 mm, brazed solid carbide or solid carbide gun drills are the only practical options.

Which option gives better surface finish?

Solid carbide consistently produces better surface finish (Ra 0.4–1.6 µm) than indexable insert tooling (Ra 0.8–3.2 µm). The one-piece construction eliminates runout at the tip-to-body interface, and the rigid carbide body reduces vibration that can mark the bore surface.

How do brazed BTA heads compare to indexable BTA heads?

Brazed BTA heads (solid carbide head brazed to steel tube) offer a middle ground — lower cost than solid carbide at larger diameters, and better rigidity than indexable systems. However, they must be replaced or retipped when worn, while indexable heads only need new inserts. Brazed heads are common in the 20–65 mm range for moderate production volumes.

What is the failure mode difference between the two types?

Solid carbide tools typically fail by chipping or fracture, which requires replacing the entire tool. Indexable systems fail by edge wear or insert fracture — the damaged insert is replaced in seconds, and the tool body continues in service. In high-volume production, this difference makes indexable systems significantly more robust.


Tooling selection depends on specific application requirements including hole geometry, material, production volume, and available equipment. Consult your tooling supplier for application-specific recommendations. This article reflects industry knowledge as of 2026.

Deep Hole Drilling Hub — Your Trusted Third-Party Industry Resource