Build sheet 03 / 06 · Welded shop press

Welded 2-Ton Shop Press

One 2-ton bottle jack, six feet of square steel tube, and two steel plates make a bench-top press. Question: does the H-frame bend as predicted under proof load, and what working-load label is justified by the recorded test?

2,000 lbworking load, centered on the top beam
FOS 4.2safety margin — 4.2× at the 2,000 lb working load, 2.1× at jack max
$130–240jack, steel, scale, consumables — $190–320 with a gas fill
20–30 hdesign, fabrication, and proof test

Measured: proof load, mid-span deflection, squareness, and weld condition. Proof closes with 03_frame_drawing.pdf, 03_proof_load_table.csv, 03_deflection_chart.png, and 03_rating_label_photo.jpg.

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What this page proves

Beam bending and proof loading in a welded frame. Start here for the build, question, measurement, and closeout proof.

What we are making

A bench H-frame press built from 2x2x0.125 in tube, steel plates, a bottle jack, and a measured proof setup.

Question answered

Does the welded frame bend as predicted under proof load, and what service label is justified by the recorded load?

What will be measured

Proof load, mid-span deflection, squareness, weld condition, and rating label.

Proof that closes it

03_frame_drawing.pdf, 03_cut_list.csv, 03_hand_calculation.pdf, 03_weld_log.pdf, 03_squareness_photo.jpg, 03_proof_load_table.csv, 03_deflection_chart.png, and 03_rating_label_photo.jpg.

15-year-old explanation

A bottle jack pushes inside a steel frame. The top beam bends a tiny amount. The calculation predicts that bend before welding, and the proof test checks whether the real frame behaves like the math.

Words you need

Project terms

TermMeaning on this page
Shop pressFrame and jack used to push parts.
Bottle jackHydraulic jack supplying force.
Working loadLoad allowed by the label.
Proof loadMeasured test load.
Beam bendingSmall deflection of a loaded beam.
StressInternal force per area.
DeflectionMeasured movement.
Safety factorYield strength divided by stress.
Yield strengthStress where steel permanently deforms.
WeldFused steel joint.
Dial indicatorGauge for small movement.

Capstone framing

Objective, requirements, constraints

TypeSpecific requirement
ObjectiveBuild and proof a small welded press.
R1Drawing before cutting.
R2Hand calc for stress and deflection.
R3Weld procedure documented.
R4Squareness within 1/16 in.
R5Proof-load deflection recorded.
R6Label matches highest passed proof.
Adult operationWelding, grinding, proof loading.

Section 01 · Concept

Function and rating basis

A shop press pushes tight-fitting metal parts together or apart — bearings onto shafts, pins out of holes. It gives steady force where a hammer gives shock. This build covers the whole job: design it, calculate it, weld it, then prove it with a measured load.

What it is

Jack and fabricated frame

The jack supplies the force; it comes off the shelf. Everything around it is fabricated: a square-tube steel frame with a 6 in opening, plus two 4×4 in press plates.

Work presses between the jack's saddle and the upper plate — bearings onto shafts, bushings into housings, pins in or out. Every piece in the load path is sized on paper before any steel is cut.

Actual principle used

Beam bending and proof loading in a welded frame

Beam stress, expected bend, and the safety factor are all calculated before fabrication. The load test then measures the real numbers against the predictions.

Bending

10.9 ksi at 2,000 lb

Deflection

0.0045 in predicted

FOS

4.2 at 2,000 lb · 2.1 at jack max

Proof

1,000 lb measured · 50% load

Section 04 · Sequence

Build sequence and gates

The order is: define, cut, calculate, weld, finish, prove. Every checkpoint ends with something you can show — a calculation sheet, a squareness check, a load record, a label, a drawing.

Operating rules

Safety rules

Eye protection stays on for every press cycle, because pressed parts store energy and can let go fast. The work sits centered. Force goes straight down the jack's axis. The frame stays bolted to the bench.

PPE

eye protection

Load axis

centered on the jack

Proof

1,000 lb measured, held

Rating

labeled on frame

Sequence

Build sequence

Define. Fix the pressing tasks, set the working load at 2,000 lb — half the jack's 4,000 lb capacity — and issue the dimensioned drawing (DRAW-1).

Cut. Saw the two 12 in crossmembers and two 14 in columns from 2×2×0.125 in tube, to the drawing.

Plate. Cut two 4×4 in press plates from 3/8 in stock and drill two 17/32 in retention-pin holes in the lower plate on a 3 in square pattern.

Calculate. Publish the load-path sheet: 10.9 ksi bending, FOS 4.2 at 2,000 lb and 2.1 at jack max, 0.0045 in predicted deflection, weld and column checks.

Weld. Tack all four joints square with the jack axis on the plate centers, measure diagonals and tap true, then final-weld in an alternating sequence — opposite joints, opposite sides — to balance shrinkage. Run 0.030 in ER70S-6 at 130–140 A and 18–19 V with C25 gas at 20 cfh for the 0.125 in wall.

Finish. Weld the upper plate centered under the top crossmember and the lower plate to the base as the jack seat (1/8 in fillets, opposite edges), install the retention pins, then degrease, prime, paint, and apply the working-load label. Bolt the base to the bench through two 3/8 in holes.

Prove. Stack the crane scale in the press axis, exercise the frame once to 1,000 lb, release, and zero the indicator. Reload to a 1,000 lb reading, hold two minutes, record load and deflection, and inspect the welds.

Acceptance gates — owner: Kohler

Acceptance gates

CALC-1Stress and deflection sheet published before welding: σ 10.9 ksi, FOS 4.2 at 2,000 lb (2.1 at the jack's 4,000 lb max), δ 0.0045 in at 2,000 lb, weld and column checks included.PendingEvidence file: 03_hand_calculation.pdf. Failure action: update design before welding.
WELD-1Frame diagonals square within 1/16 in across the throat at final weld-out.PendingEvidence files: 03_weld_log.pdf and 03_squareness_photo.jpg. Failure action: repair or scrap before proof.
PROOF-11,000 lb proof load applied through the crane scale and held two minutes; load and mid-span deflection recorded — deflection ≤ 0.0035 in on a 0.0005 in indicator referenced from the beam ends, returning to within 0.0005 in of zero on unload — and welds pass visual inspection.PendingEvidence files: 03_proof_load_table.csv and 03_deflection_chart.png. Failure action: unload, inspect, repeat lower step.
LABEL-1Maximum working load labeled on the frame in view of the operator; the 2,000 lb figure enters service after the recorded 2,000 lb hold in Section 05.PendingEvidence file: 03_rating_label_photo.jpg. Failure action: relabel to highest passed proof.
DRAW-1Dimensioned drawing issued before the Cut step; as-built span, throat, column length, and plate size within 1/16 in of the drawing at close-out.PendingEvidence files: 03_frame_drawing.pdf and 03_cut_list.csv. Failure action: update drawing or as-built notes.

Risk, judging, and closeout

What can fail and how the result is judged

What could go wrong

RiskControlFailure action
Weld defectLog settings and inspect.Repair before higher load.
Off-axis loadCenter work and use plates.Unload and reset.
Stored energyStand clear.Abort if work shifts.
Jack slipFlat centered seat.Unload and correct.
Frame instabilityLevel base.Stop if frame walks.
Bad proof setupVerified scale and indicator.Repeat with verified tools.

How the result will be judged

CheckA-level resultNot acceptable
CalculationStress, deflection, weld, column checks.Only CAD image.
Proof ladder500, 1000, 1500, 2000 lb holds if supported.Unmeasured jack pump.
DeflectionMeasured curve vs hand calc.No dial record.
RatingLabel matches proof.2,000 lb claim without hold.

Data package

Exact closeout filenames

  • 03_frame_drawing.pdf
  • 03_cut_list.csv
  • 03_hand_calculation.pdf
  • 03_weld_log.pdf
  • 03_squareness_photo.jpg
  • 03_proof_load_table.csv
  • 03_deflection_chart.png
  • 03_rating_label_photo.jpg

Senior capstone readiness

Current status: build plan; prototype and proof data pending. A-level requires hand calc reconciled with FEA, weld inspection, proof ladder, and complete drawing/spec package.

Definition of done

  • Tube spec is 2x2x0.125 in everywhere.
  • Drawing and cut list precede cutting.
  • Proof ladder and deflection chart are recorded.
  • Rating label matches passed proof load.

Section 02 · Structure

Load path and beam sizing

Force runs a loop through the frame: from the jack's ram, up through the work, and back down the columns to the jack's base. Every piece and weld on that loop is specified here, and the math comes before the cutting.

Frame elevation and load path · live model

Welded 2-Ton Shop Press · Kohler Wood — Project Builds 2-ton bottle jack press frame 2,000 lb working load 6 in throat

Frame elevation: 2×2×0.125 in tube H-frame. Columns butt vertically between the crossmembers — 14 in of daylight, 18 in overall, ≈8 in of clear beam span, so the calculation's 12 in span is conservative — and a jack no taller than 7 in collapsed leaves the 6 in throat shown. Dimensioned drawing is gate DRAW-1.

Pre-build predictions

Pre-build calculations

Top beam: 2×2×0.125 in A500 tube · 12 in span · simply supported · load centered
I = (2⁴ − 1.75⁴)/12 = 0.552 in⁴ ; S = 0.552 in³ (nominal sharp-corner section)
M = PL/4 = 2,000 × 12 / 4 = 6,000 lb·in → σ = M/S = 10.9 ksi
A500B yield 46 ksi → FOS = 46 / 10.9 = 4.2 at 2,000 lb (target ≥ 2.0)
Jack max 4,000 lb → σ = 21.7 ksi, FOS = 2.1 — above the 2.0 target
δ = PL³/48EI = 2,000 × 12³ / (48 × 29×10⁶ × 0.552) = 0.0045 in at 2,000 lb ; ≈ 0.0022 in at 1,000 lb proof
Welds: 1/8 in fillet all around each joint (≈8 in per joint) → τ = 2,000 / (0.707 × 0.125 × 8) ≈ 2.8 ksi vs 21 ksi allowable
Columns: 1,000 lb tension each → σ ≈ 1.1 ksi ; base crossmember mirrors the top-beam case

These numbers are published before fabrication, with the assumptions stated plainly. The load test in Section 04 then loads the frame to a measured 1,000 lb and reads the bend on a dial gauge.

Load path and welds

Load path

Force runs one loop: ram, work, upper plate, top beam, columns, base member, jack base. Both cross members carry the same load, so one calculation covers both.

Members

2×2×0.125 in A500 tube

Welds

1/8 in ER70S-6 fillet

Throat

6 in

Alignment

jack axis to plate centers

Zoo / SolidWorks — build this model

Frame model and simulation check

Model the frame as a weldment built from square-tube profiles, plus the two press plates. SolidWorks Simulation then loads that model with 2,000 lb and reports stress and bend. The hand calculation on this page says 10.9 ksi of stress and 0.0045 in of bend. If the simulation lands far from those numbers, one of the two is wrong — find out which before cutting steel.

From the weldment, produce a cut list and one dimensioned frame drawing: every tube length and every hole location, readable at the saw. The export macro saves the drawing as this page's PNG. A working model of this build is embedded just below, and its STL download opens in SolidWorks, Onshape, or FreeCAD.

Model prompt · “Model a bench press frame from 2×2×0.125 in steel square tube: two uprights, a top beam, a base, a 6 in wide work opening, and two 4×4 in plates of 3/8 in steel. Add a static study with 2,000 lb upward on the center of the top beam.”
Runs in: Zoo (free — its Zookeeper agent builds from this prompt, edits by conversation, and answers design questions) · SolidWorks LEO · or by hand from the list above.

The Zoo file goes into the zoo-design-studio-projects folder shown at the top of Zoo’s Projects screen; the build then appears in the Projects list, dimensioned from this sheet. Paste the macro into SolidWorks (Tools → Macro → New) to export every drawing as a web image.

Model

weldment

Check

static FEA

Drawing

cut list + frame

Works on

student / Makers

Which license runs the simulation
Static studies run in the student edition, which includes the Simulation add-in. The $48/yr Makers tier ships a simpler checker (SimulationXpress) that handles one member at a time — enough to check the top beam, the part the hand calculation covers.

Section 03 · Parts

Parts and cost

The steel is ordinary stock: about 6 ft of square tube and one square foot of 3/8 in plate. Only one mechanism gets bought — the jack itself.

Bill of materials

Parts and materials

ItemQty
2-ton bottle jack — collapsed height ≤ 7 in, stroke ≥ 3.5 in (fits the 6 in throat)1
Top crossmember — 2×2×0.125 in tube, 12 in1
Side columns — 2×2×0.125 in tube, 14 in2
Base crossmember — 2×2×0.125 in tube, 12 in1
Press plates — 3/8 in steel plate, 4×4 in2
Retention pins — 1/2 in bolt, locate the jack base2
ER70S-6 MIG wire, 0.030 inspool
Shielding gas — 75/25 Ar/CO₂ (cylinder owned with the welder; exchange fill $60–80)fill
Crane scale — 1-ton (2,000 lb) digital, reads the proof load1
Magnetic indicator base1
Drill bits (17/32 in) and cutoff/flap discsset
Degreaser, primer, red paint, and working-load labelset
Parts total$130–240

The total assumes the welding-gas cylinder comes with the welder. A gas refill adds $60–80, which puts the range at $190–320.

Tools

Fabrication and measurement tools

A MIG welder joins the frame. A chop saw or bandsaw cuts the tube square. Clamps and a machinist square keep the fit-up true. Helmet, gloves, and jacket cover the arc work. A dial gauge reads the bend during the load test.

Time

20–30 h

Cost

$130–240 $190–320 with gas fill

Welder

MIG ER70S-6

Indicator

0.0005 in resolution

Section 05 · Scope

Scope and service limits

The press is tested at a measured 50% of its rating, then labeled. It only carries what the calculation allows. Full 2,000 lb use comes later, after higher test loads are run and recorded.

Service rating path

Service-load policy

Use starts at the proven level: a measured 1,000 lb held for two minutes, with the bend recorded against the prediction. Each higher recorded hold raises the permitted load. The label states the current limit.