Maritime Questions › Heavy Weather Nav Master
Your 14.2m draught vessel must enter the Port of Immingham. The bar depth at chart datum is 14.5m. The required UKC policy is 10%. The tide is 2.8m above chart datum at HW. What is the latest time to cross the bar?
A. IMMINGHAM BAR — TIDAL WINDOW CALCULATION: GIVEN DATA: (a) Vessel draught: 14.2m; (b) Bar depth at chart datum: 14.5m; (c) Company UKC policy: 10% of draught = 10% × 14.2m = 1.42m; (d) HW height: 2.8m above chart datum; REQUIRED DEPTH: Vessel draught + required UKC = 14.2m + 1.42m = 15.62m. AVAILABLE DEPTH AT HW: Chart datum + tide = 14.5m + 2.8m = 17.3m. CLEARANCE AT HW: 17.3m - 14.2m (draught) = 3.1m available clearance. Required clearance: 1.42m. SURPLUS: 3.1m - 1.42m = 1.68m of tidal window above minimum; TIDAL WINDOW CALCULATION: as the tide falls from HW — the available depth decreases. The vessel can cross the bar as long as (bar depth + tide height) ≥ 15.62m required depth. Minimum tide height required = 15.62 - 14.5 = 1.12m above chart datum. Using the tidal curve: find when the tide falls to 1.12m above chart datum after HW. This is the latest crossing time. For a standard semi-diurnal tidal curve (UK ports), use the 1/12 rule or the tidal graph to calculate the time interval from HW when the tide has fallen to 1.12m. SQUAT AND DYNAMIC ALLOWANCE: the 10% UKC typically covers normal squat at reduced entry speed. If the vessel is entering at speed — additional squat deductions must be made. THEREFORE: the window opens approximately [calculate from tidal curve] before HW and closes [calculate] after HW.
B. The vessel can cross the bar at any time. The 14.5m bar depth with 2.8m tide gives 17.3m total — exceeding the 14.2m draught with a large safety margin.
C. Ignore the UKC policy for this crossing. Tidal windows are too short to also apply UKC requirements at the same time.
D. The harbour authority will advise when to cross. The master need not calculate the tidal window independently.
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A. FORCE 10 HEAVY WEATHER MANAGEMENT — STRATEGIC OPTIONS: FORCE 10 CONDITIONS: Beaufort 10 = 48-55 knots wind, seas 9-12m, very high waves with overhanging crests. For a 180m bulk carrier: (a) Green water on deck; (b) Risk of structural damage (hatch covers, mooring equipment); (c) Risk of cargo shift (particularly if bulk cargo has high moisture content); (d) Risk of parametric rolling (if heading or speed is near resonance frequency); STRATEGIC OPTIONS: (1) MAINTAIN COURSE — if the vessel can make safe headway, maintaining course at reduced speed may be appropriate. Rule: speed such that no excessive structural stress occurs. Fuel consumption penalty; (2) HEAVE-TO: bring the vessel to approximately 30-40° off the sea on the bow (head to sea, minimal headway). Most comfortable option for weathering out a storm. Significant time and fuel cost; (3) RUNNING BEFORE: stern to sea. Faster progress but: stern-on boarding seas risk; pooping risk; loss of rudder effectiveness in following seas (surf-riding, broaching risk); (4) AVOIDANCE — alter course to skirt around the storm. Use weather routing service data and ECMWF forecast to find the storm track and avoid it; MASTER's DECISION PROCESS: (1) ASSESS STORM TRACK: is it moving, and can you outrun or avoid it?; (2) VESSEL CAPABILITY: what is this vessel's seakeeping in these conditions?; (3) CARGO RISK: is the cargo susceptible to moisture or shifting?; (4) CREW CONDITION: fatigue level; (5) DESTINATION URGENCY: is there a berth window, laycan, tidal window that has commercial significance?; (6) NOTIFY DPA: commercial implications of significant deviation.
B. Maintain full service speed to get through the storm as quickly as possible. High speed reduces exposure time to dangerous conditions.
C. Run before the storm. A stern-on approach is always the most stable option in heavy weather.
D. The weather routing service will direct the vessel. The master should follow routing service recommendations without deviation.
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A. UKC CALCULATION — 300M TANKER IN SHALLOW CHANNEL: UKC COMPONENTS: Under-Keel Clearance = Charted Depth − Vessel Draught − Dynamic Allowances. STATIC CALCULATIONS: (1) Chart datum: the charted 19m is referenced to Chart Datum (Lowest Astronomical Tide). Current tidal height must be added; (2) Current draught: 16.5m; (3) Static clearance at chart datum: 19 - 16.5 = 2.5m; (4) During tidal rise: if tide = +1.5m: effective depth = 20.5m; clearance = 20.5 - 16.5 = 4.0m before dynamic allowances; DYNAMIC ALLOWANCES — THESE REDUCE THE EFFECTIVE UKC: (1) SQUAT: a vessel moving through water sinks below its static waterline due to: (a) Pressure distribution under hull; (b) Speed-dependent. For large vessels in shallow water (depth/draught ratio < 3): squat can be calculated using the Barras formula. At 10 knots in a depth/draught ratio of ~1.15 (19/16.5), squat for a 300m tanker may be 1.0-1.5m; (2) HEEL: when turning or in wind — the vessel lists, increasing draught at the lower side. For 1° heel at 32m breadth: heel squat ≈ 0.28m; (3) WAVE RESPONSE: in wave action, the vessel heaves and pitches — the lowest point may be deeper than the static waterline; (4) CHART ACCURACY: the stated 19m may not reflect uneven dredging. A safety margin of 0.5-1.0m should be added; MINIMUM SAFE CLEARANCE POLICY: many companies specify 10-15% of draught = 1.65-2.5m after all dynamic deductions. At 10 knots with 1.5m squat and heel — the available clearance BEFORE wave response and chart inaccuracy is: 2.5m (static) - 1.5m (squat) - 0.28m (heel) = 0.72m. THIS IS INSUFFICIENT for a 300m tanker. REDUCE SPEED to reduce squat.
B. Static UKC = charted depth minus draught = 2.5m. This is adequate and no further calculation is required.
C. UKC is the harbour authority's responsibility. The pilot will advise on adequate clearance for the transit.
D. Increase speed to reduce the transit time in shallow water, thereby minimising exposure to grounding risk.
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