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Heat Treatment After Deep Hole Drilling: Stress Relief Guide

Deep hole drilling removes 10–40% of the workpiece cross-section along the entire length of the hole. This material removal releases the locked-in stresses from prior manufacturing steps — forging, rolling, welding, or rough machining. If stress relief is not performed at the correct point in the process sequence, the part moves during or after drilling and the finished hole fails to meet straightness and dimensional requirements.

Why Stress Relief Matters

Material Removal and Stress Redistribution

Starting Stock ConditionInternal Stress StateEffect of Drilling
Hot-rolled barCompressive skin, tensile coreBar bends toward the removed material side
Forged blankComplex, direction-dependent stressUneven distortion, unpredictable
Welded assemblyHigh localized stress at weld zoneWeld zone distortion, cracking risk
Pre-hardened (quenched and tempered)Relatively stableMinimal distortion if stress-relieved before Q&T
Rough-machined (prior ops)Surface compressive stressRe-distribution causes fine movement

Consequences of Skipping Stress Relief

ProblemMechanismCost Impact
Hole straightness driftPart bows as stress rebalancesScrap or rework
Diameter variation after final boringPart moves during finishingOut-of-tolerance bore
Cracking at thin wall sectionsResidual stress exceeds material strengthScrap
Delayed distortion (after final inspection)Stress slowly relaxes over days/weeksWarranty claims
Dimensional shift during subsequent machiningStress relief from later operationsReject at final inspection

Stress Relief Before Drilling

When to Stress Relieve Before Drilling

ConditionRecommendationReason
Hot-rolled bar stock > 100 mm diameterStress relieve before drillingHigh locked-in stresses from rolling
Forged blanksStress relieve before drillingComplex stress state from forging
Welded assembliesStress relieve before drillingWeld shrinkage stresses
L/D ratio > 20:1Stress relieve before drillingLong holes magnify distortion
Wall thickness-to-diameter ratio < 0.1Stress relieve before drillingThin walls distort easily
Pre-hardened materials (30+ HRC)Stress relieve before drillingMaterial already stable, but verify

Stress Relief Parameters by Material

MaterialTemperatureHold TimeCooling MethodExpected Stress Reduction
Low-carbon steel (1018, 1026)600–650°C1 hour per 25 mm thicknessFurnace cool to 300°C, then air70–85%
Medium-carbon steel (1045, 4140)600–650°C1 hour per 25 mm thicknessFurnace cool to 300°C, then air70–85%
Alloy steel (4340, 8620)620–680°C1–2 hours per 25 mm thicknessSlow furnace cool75–90%
Stainless steel (304, 316)350–450°C2 hoursSlow cool50–70%
Stainless steel (416, 17-4 PH)600–750°C1–2 hoursAir cool70–85%
Cast iron500–550°C1 hour per 25 mm thicknessFurnace cool60–80%
Aluminum (6061, 7075)300–350°C1–2 hoursSlow cool (25°C/hour max)40–60%
Titanium (Ti-6Al-4V)600–700°C1–2 hoursFurnace cool60–75%

Stress Relief After Drilling

When to Stress Relieve After Drilling

ConditionRecommendationReason
Finish boring or honing follows drillingStress relieve between rough and finishRemove drilling-induced stress before final sizing
Tight straightness tolerance (< 0.05 mm/300 mm)Stress relieve after drillingDrilling itself induces stress
Welded assembly drilled and then welded againStress relieve after each major operationMultiple stress introduction points
Case hardening or nitriding follows drillingStress relieve after drillingPrevent distortion during case hardening
Part geometry includes thin sections near holeStress relieve after drillingThin sections distort from drilling heat and pressure

Drilling-Induced Stress

Drilling FactorStress EffectMagnitude
Feed force (axial)Compressive stress ahead of drill50–200 MPa
Coolant pressureExpansive stress on bore wall5–25 MPa (at 100–250 bar)
Cutting temperatureThermal stress at surface300–600°C at cutting zone
Material plastic deformationWork-hardened layer0.02–0.10 mm deep
Chip evacuationFriction stress on bore wallModerate

Tip: Drilling-induced stresses are typically shallow (0.05–0.20 mm deep) and are removed by subsequent boring or reaming stock removal. If finish boring removes 0.25 mm per side, the drilling-induced stress layer is completely removed and post-drilling stress relief may not be needed for the final hole.

Process Sequencing Strategies

Sequence Options

SequenceProcess FlowBest For
A — Minimal stress concernsRough machine OD → Drill → Finish bore → Finish ODLow-carbon steel, thick walls
B — Standard stress reliefStress relieve billet → Drill → Stress relieve → Finish boreAlloy steel, moderate tolerances
C — Precision sequenceStress relieve → Rough bore → Stress relieve → Finish bore → HoneTight tolerance, thin walls
D — Welded assemblyStress relieve weldment → Drill → Stress relieve → Finish boreFabricated parts, hydraulic cylinders
E — Case-hardened partDrill → Stress relieve → Case harden → Finish bore (if needed)Parts requiring surface hardness
Part TypeMaterialRecommended SequenceRationale
Hydraulic cylinder1026 or 4140CTight seal bore tolerance, thin wall
Gun barrel4140 or 4340BStraightness critical
Structural tubeLow-carbon steelAGenerous tolerances
Mold core cooling holeP20 or H13CThermal cycling application
Aerospace actuator17-4 PH or Ti-6Al-4VB or CTight tolerances, critical application
Oilfield component4140 or 4340BHeavy sections, moderate tolerances

Distortion Control During Heat Treatment

Fixturing and Positioning

MethodApplicationEffectiveness
Vertical suspensionLong, slender partsExcellent — gravity maintains straightness
Horizontal support on V-blocksMedium-length partsGood — supports evenly
Ceramic or refractory supportsHigh-temperature treatmentExcellent — no reaction with part
Plugging the holePrevent ID scaling or decarburizationGood — protects bore surface
Weighted or restrained fixtureThin-walled partsModerate — may introduce new stress if uneven

Heating and Cooling Rate Control

Section ThicknessMaximum Heating RateMaximum Cooling Rate
< 25 mm200°C/hour100°C/hour
25–75 mm150°C/hour75°C/hour
75–150 mm100°C/hour50°C/hour
> 150 mm75°C/hour35°C/hour

Inspection After Stress Relief

Verification Checks

CheckMethodAcceptable Change
StraightnessStraightedge or laser alignment< 0.03 mm/300 mm change from pre-treatment
Hole diameterBore gauge< 0.02 mm change
Surface conditionVisualNo scaling, pitting, or decarburization
HardnessHardness testWithin specification ±2 HRC
CrackingDye penetrant or magnetic particleNo cracks

FAQ

Should I stress relieve before or after deep hole drilling?

It depends on the material and tolerance requirements. For most alloy steel parts with tight straightness requirements, stress relieve both before and after drilling — once before to stabilize the raw material, and once after to relieve drilling-induced stress before finish boring. For low-carbon steel with generous tolerances, stress relief is often not required at all.

What temperature is needed for stress relief of deep hole drilled parts?

For carbon and alloy steels, the standard stress relief temperature is 600–650°C. This is below the transformation temperature (Ac1), so the material's mechanical properties are not significantly changed. Hold for 1 hour per 25 mm of cross-section thickness, then furnace cool slowly. Higher temperatures remove more stress but may reduce hardness.

Does deep hole drilling itself induce stress in the part?

Yes — the feed force, coolant pressure, and cutting temperature all induce stress in the part. The feed force creates axial compressive stress ahead of the drill. The cutting temperature creates thermal stress at the bore surface. These drilling-induced stresses are typically confined to a shallow layer (0.05–0.20 mm deep) and are removed by subsequent boring or reaming stock removal.

How do I prevent distortion during stress relief heat treatment?

Suspend long parts vertically during heat treatment to prevent sagging. Use slow heating and cooling rates (75–150°C/hour depending on section thickness). Support thin-walled parts on evenly spaced V-blocks or ceramic supports. Plug the bore to prevent internal scaling. Never quench stress-relieved parts — always furnace cool or slow cool.

Can stress relief be combined with other heat treatment operations?

Yes — stress relief is often combined with normalizing (for carbon steel) or annealing cycles. For quenched and tempered parts, stress relief before final machining is incorporated into the process sequence. However, stress relief should never be combined with hardening or tempering if the temperature and cooling rate requirements are different — use separate operations with controlled parameters for each.


Stress relief is an investment in dimensional stability. The cost of one additional heat treatment cycle is far less than the cost of scrapping a deep hole drilled part that moved out of tolerance. This article reflects industry practice as of 2026.

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