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23-Ind-B10 Workplace Health and Safety · Undated paper

Question 7 of 7: Process Flow Chart Design, Hazard/Control Identification at Each Step, and an Alternate Hazard-Reduced Flow Chart

Nivaar worked solution (AI-drafted; not reviewed by a licensed engineer)

Notes on this paper

National Exams — May 2019 — 17-Ind-B10 Workplace Health and Safety. Closed book; no calculators permitted. Any five of the seven questions constitute a complete paper; all questions are of equal value (20 marks each). Answers are written in point form but fully, as instructed. Complete answers to all seven questions follow, with assumptions stated where the question invites them.

Reference texts: Brauer, Safety and Health for Engineers, 4th ed.; CCOHS (Canadian Centre for Occupational Health and Safety), OSH Answers: Hazard Control; CCPS (Center for Chemical Process Safety), Guidelines for Risk Based Process Safety; CSA Z1002 Occupational health and safety — Hazard identification and elimination and risk assessment and control; CSA Z432 Safeguarding of machinery.

only the practice-paper cover stories/examples are freshly authored per the subject's established convention.

Question 7: Process Flow Chart Design, Hazard/Control Identification at Each Step, and an Alternate Hazard-Reduced Flow Chart (20 marks: 7/7/6)

Question text not reproduced: the examination questions are © Engineers and Geoscientists BC. Open the official past paper (linked at the top of this page) to read the question, then follow the worked solution below.

Check: this question is open-ended ("any industrial process"). The worked example below is a representative sheet-metal stamping and coating line, chosen because it exercises a wide range of common hazard types (mechanical point-of-operation, flammable solvent, thermal, and ergonomic) across a realistic 7-step process — any correctly-analyzed industrial process of at least 6 steps satisfies the question.

(i) Original Process Flow Chart — Sheet-Metal Stamping and Coating Line (7 Steps)

1. Coilunloading &staging2. Stampingpress(die forming)3. Deburring /trimming4. Solventdegreasingbath5. Manualspray-paintbooth6. Ovencuring /drying7. Packaging &palletizingsteelcoilfinishedpart
Fig. 1 — Original 7-step sheet-metal stamping and coating process: coil unloading → stamping press → deburring/trimming → solvent degreasing → manual spray-paint booth → oven curing → packaging.

(ii) Hazards and Controls at Each Step

StepHazard(s)Control(s) in Place
1. Coil unloading & stagingCrush/struck-by from a heavy coil during crane/forklift handling; pinch points at rigging.Mechanical lifting aids with rated rigging; trained/certified riggers; exclusion zone signage under suspended loads; steel-toe boots and gloves.
2. Stamping press (die forming)Point-of-operation crush/amputation — a hand or finger in the die during a cycle.Fixed point-of-operation guards, light curtains, and two-hand controls; lockout/tagout (LOTO) for every die change or jam clearance.
3. Deburring / trimmingLaceration from sharp sheared edges and hand tools; flying metal chips (eye hazard).Fixed guards over trim blades; cut-resistant gloves; safety glasses/face shield.
4. Solvent degreasing bathInhalation of solvent vapour; skin/eye contact; fire/explosion from flammable vapour accumulation.Local exhaust ventilation (LEV) over the bath; explosion-proof electrical fittings; bonding/grounding of the tank; chemical-resistant gloves/apron.
5. Manual spray-paint boothInhalation of paint solvent/overspray; fire/explosion from flammable overspray; skin/eye contact.Ventilated, explosion-proof spray booth with filtered exhaust; organic-vapour respirator; coveralls and eye protection; no ignition sources permitted nearby.
6. Oven curing / dryingBurns from hot surfaces; fire/explosion from residual solvent vapour flashing off during heat-up.LEL (lower explosive limit) vapour sensor interlocked to the oven's heating element and a purge cycle before heat-up; guarding on hot surfaces; oven-door interlock.
7. Packaging & palletizingManual-handling/ergonomic strain from repetitive lifting; forklift–pedestrian interaction.Mechanical lift assists/conveyors; defined maximum manual-lift weights and team-lift procedures; pedestrian walkways and hi-visibility vests near forklift travel paths.

(iii) Alternate Process Flow Chart Reducing the Number of Hazards

The alternate design applies the hierarchy of controls (Question 6(i)) at the process level — substituting or eliminating the two highest-hazard-count steps (the flammable-solvent degreasing bath and the solvent spray-paint booth) and automating the point-of-operation exposure at the press — rather than only adding further controls to the original 7-step process:

1. Coilunloading &staging2. Robotic-fedprogressive die(stamp + trim)3. Aqueousparts washer4. Electrostaticpowder-coatapplication5. Powder-cureoven6. Mechanizedpackaging &palletizingsteel coilfinished part
Fig. 2 — Alternate 6-step process: robotic-fed progressive die replaces the manual press/deburr pair, aqueous washing replaces solvent degreasing, and powder coating replaces solvent spray painting.

Net effect: the alternate process reduces the 7-step, 8-hazard-instance original to 6 steps carrying materially fewer and lower-severity hazards — two entire fire/explosion hazard sources (solvent bath, solvent spray booth) are eliminated by substitution rather than merely controlled, and the highest-severity mechanical hazard (the press point of operation) is eliminated by removing the human hand from the danger zone entirely, consistent with the hierarchy-of-controls principle (Question 6) that elimination/substitution at the design stage outperforms adding further engineering/administrative/PPE layers to an unchanged process.

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