1. Overview: Tugs in Port Shiphandling
Port tug fleets include two broad families. The conventional single-screw tug — still operating in some ports — demands the greatest skill from both tug master and shiphandler: it needs two or three lines to work effectively and its maneuverability is limited. Because mastering the conventional tug's limitations builds the sharpest intuition, it serves as the conceptual baseline for this chapter. The second family covers tractor-type tugs and similar azimuthing stern-drive (ASD) tugs with patented drives (Voith-Schneider, Schottel, and similar systems), which can vector thrust in any direction and typically require only a single hawser to the ship.
A tug working alongside resolves its thrust into two components: a lateral component that translates the ship sideways, and a longitudinal component that either accelerates or decelerates the ship. The proportion of each depends on the tug's angle to the ship's centerline and the position along the hull where force is applied — a lever about the ship's pivot point. Understanding this force resolution is the key to directing tugs efficiently and avoiding unintended heading changes.
| Tug family | Drive type | Lines typically required | Ability to push at right angles with headway |
|---|---|---|---|
| Conventional single-screw | Fixed propeller & rudder | Backing line + come-ahead line (+ optional stern line) | Limited — loses thrust angle as speed increases |
| Twin-screw harbor tug | Two fixed propellers | Backing line only (can maneuver to push without come-ahead) | Moderate |
| Tractor / ASD (Voith-Schneider, Schottel) | Azimuthing / cycloidal | Single hawser; winch-controlled | Full — thrust direction independent of ship speed |
2. Making Fast a Tug
Once the docking master is aboard and the berth is in sight, tugs come alongside and make fast. For a conventional single-screw tug placed on the bow or quarter, the standard arrangement uses two lines sent up from the tug's foredeck.
2.1 Backing Line
The backing line is the first line sent aboard. It runs from a bitt on the tug's foredeck, up to the ship, and is led forward and secured on a bitt — never on a small cleat or bulwark fitting. When the tug later backs hard, the strain on this line rises geometrically with ship speed; a cleat or unsuitable fitting can be torn away and become a lethal projectile on either vessel. The line must remain in sight of the tug master so he can monitor the load.
2.2 Come-Ahead Line
The come-ahead line — also originating at the tug's foredeck, led to the tug's bow and then up to the ship — is led aft on the ship's deck. The tug works against this line to position itself and begin pushing. Two ship's crew must remain standing by both lines throughout the maneuver, ready to let go instantly on signal and to slack the line down to the tug using a messenger. Failing to use the messenger when slacking the stern line risks putting the line into the tug's propeller.
2.3 Stern Line (when required)
If the ship will be backing into or out of a slip, a stern line is added so the tug does not swing around (fall away) as the ship gathers sternway. Ship speed must be kept to a minimum while the tug is at nearly right angles to the centerline; the full length of the tug acts as a drag and the backing line strain mounts sharply with any increase in speed.
2.4 Tractor-Type Tugs: Single Hawser
3. How a Tug's Force Acts on the Ship
3.1 Lateral Motion vs. Headway
When a tug backs against its backing line, it both pulls the bow (or stern) sideways and creates drag that slows the ship's forward speed. When the same tug comes ahead, it pushes the bow sideways but simultaneously adds to the ship's headway — the tug is, in effect, accelerating the vessel. The closer the tug is to a right angle to the ship's centerline, the greater the fraction of its thrust that goes into lateral motion and the smaller the longitudinal penalty. This is why maximum tug effect requires minimum ship speed: as ship speed rises, more of the tug's limited power is consumed just keeping up, leaving less available for maneuvering.
3.2 Lever About the Pivot Point
Force applied near the bow or stern acts at the longest lever arm from the ship's pivot point, producing maximum rotational effect — useful for turning the ship. Force applied closer to amidships has a shorter lever arm and less turning moment but applies more of its energy to translating the ship bodily. Understanding this geometry guides where to position a tug depending on whether rotation or pure sideways translation is needed.
3.3 Tug as Steering Aid When Backing
A bow tug can also work stem-to-stem, trailing the ship as it goes astern and pushing on either bow to steer. Pushing on the port bow swings the stem to starboard and thus turns the ship to port; pushing on the starboard bow has the opposite effect. This technique extends the shiphandler's directional control while the ship gathers sternway without its rudder being effective.
4. Tug Positions and Their Effects
| Tug position | Primary effect | Key limitation / caution |
|---|---|---|
| On the bow (or shoulder) | Moves bow laterally; holds ship alongside after arrival | Coming ahead adds headway to the ship |
| On each bow (two tugs) | Both backing simultaneously: reduces headway while maintaining heading; either tug alone: turns the bow | Requires coordination; two tug fees |
| On the quarter (after tug) | Moves stern laterally in same manner as bow tug | Acts as drag on rudder effectiveness; tends to set stern toward pier |
| Astern (made fast on stern) | Backs to slow ship; comes ahead port/stbd to steer like an active rudder | Officer + two crew must stand by lines; lines risk falling into propeller if not tended |
4.1 Tug on the Quarter
4.2 Tug on Each Bow
4.3 Tug on the Stern
5. Tug on a Hawser
Working a tug on a hawser — more common in European ports than in the United States — becomes increasingly relevant as Schottel and Voith-Schneider tugs enter US fleets. These tugs are engineered for hawser work: their winches are positioned relative to the tug's pivot point to allow safe, sustained pulls without risk of the tug being tripped. The winch allows the tug to shorten or lengthen the hawser under load, changing position around the bow or stern without losing pull.
5.1 When Conventional Tugs May Use a Hawser
Conventional harbor tugs can be placed on a hawser in limited circumstances: handling a dead ship (no engine, no rudder), or a vessel with such a light draft that making up alongside is impractical. In these cases, the ship's engines must be kept to a minimum and any headway strictly controlled, because a conventional tug in irons — caught abeam its own hawser — can be rolled over. Radio communication is used to give the tug a speed and direction to pull; otherwise the shiphandler directs the hawser tug in the same way as a tug alongside.
5.2 Tugs on Hawsers in Opposition
Two tugs on hawsers can be deployed in opposition — one pulling ahead, one astern — to increase or reduce the ship's way, or to hold a vessel at a precise position in a current or at berth. Chapter 4 covers additional uses of hawser tugs when approaching a berth.
6. Lashing Up a Tug ("On the Hip")
6.1 Tug Lashed on the Stern — Twin-Screw Equivalent
One or two tugs lashed on the quarter replace the ship's engine and rudder, or supplement them. With a tug on each quarter, the ship handles like a twin-screw vessel, and twin-screw helm and engine orders are appropriate. A single lashed-up stern tug produces an off-center thrust that initially tends to move the ship laterally away from the tug before headway develops. To turn the ship toward the tug's side, back the tug: for example, backing a tug lashed to the port quarter swings the stern to starboard, turning the ship to port (bow to port, stern to starboard).
6.2 Tug Lashed on the Bow, Heading Aft — Undocking Stern-First
6.3 Stopping and Propeller Effect with a Lashed-Up Tug
A ship under lash-up is stopped by backing the tug. The off-center position introduces a twisting tendency: a tug lashed on the starboard quarter moving ahead (or on the port bow moving stern-first) causes the ship to handle like a single-screw vessel with a right-handed propeller — a predictable and manageable behavior once the shiphandler recognizes it.
7. Tugs in Opposition — Pure Lateral Translation
7.1 Mechanics of Lateral Translation
The tug is lashed at the ship's bow, heading aft. The tug comes ahead with rudder hard over toward the pier while the ship simultaneously applies engine ahead and rudder hard over, also toward the berth. The tug's ahead force and the ship's ahead force are oriented so their longitudinal components cancel — neither headway nor sternway builds — while their lateral components add together, moving both bow and stern simultaneously away from the dock. The result is a controlled, parallel lateral movement of the entire ship, equivalent to the effect of two separate tugs, achievable with a single lashed-up tug and the ship's own engine.