Does a $15M Laser Actually Reduce the Cost of Defending a Warship?

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Naval Cost Exchange

The Real Economics of Putting Lasers on Warships

A laser shot can cost almost nothing. The laser itself does not. The useful question is how many missile engagements the system must actually displace before the economics turn in its favor.

Directed Energy Magazine Depth Ship Integration Cost Per Engagement
$15M Historical 2010 LaWS system estimate, not current HELIOS pricing
~$100M Navy estimate cited by CRS for integrated 60 kW class system in limited quantities
$1.15 Navy estimate for marginal energy cost of a 60 kW laser shot
60 kW HELIOS class installed aboard USS Preble

The famous laser cost argument sounds almost unbeatable: spend a few dollars of electricity instead of firing a million-dollar missile.

But cost per shot is not cost per defense. A ship first has to buy, integrate, power, cool, maintain and train around the laser. Then the target has to be within the laser's useful threat set, within line of sight and inside an atmospheric window where the beam can perform.

The economics therefore depend less on the price of electricity than on how many expensive kinetic engagements the laser can realistically avoid.

The $15 million number needs context

Historical LaWS Estimate
~$15M

A NAVSEA official estimated in 2010 that an eventual production LaWS system might cost roughly $15 million. A later Navy briefing cited about $17 million per CIWS-mounted production copy.

Modern Integrated Estimate
~$100M

The Navy estimate still cited in the January 2026 CRS update puts a mature 60 kW-class system with beam control, power, thermal management, combat-system integration and installation at roughly $100 million in limited quantities.

The economics change by almost an order of magnitude.

A $15 million production laser and a $100 million fully integrated shipboard weapon can both fire inexpensive shots, but they require very different numbers of successful engagements to recover the upfront investment.

Start with the kinetic alternatives

These are budget-line procurement averages, not clean manufacturer unit prices. They are useful for modeling the order of magnitude of the cost exchange.

$1.03M RAM
FY2026 funding provides $127 million for 123 RAM missiles plus associated ordnance alterations.
$1.65M ESSM
FY2026 Navy funding identifies 305 ESSMs against a $503.381 million procurement line.
$6.04M SM-6
FY2025 procurement funded 125 SM-6 missiles for $755.2 million. This is a cost reference only. A current 60 kW laser is not a substitute for the full SM-6 threat set.

How many missile shots pay for the laser?

Interceptor Reference Budget-Line Average Shots Equal to $15M Shots Equal to $100M Directly Comparable?
RAM Approx. $1.03M 15 97 Threat dependent
ESSM Approx. $1.65M 10 61 Threat dependent
SM-6 Approx. $6.04M 3 17 No, not for full mission set
That is only the capital-cost break-even.

It ignores laser maintenance, replacement optics, ship modifications, training and sustainment. It also assumes every successful laser engagement actually prevents a missile expenditure that otherwise would have occurred.

The larger value may be the missile that stays in the launcher

Current shipboard lasers are best viewed as another defensive layer. The financial benefit is strongest when they absorb lower-end threats that would otherwise consume finite missile inventory.

Small UAS
Strong fit
HELIOS was designed for counter-UAS work and was evaluated against a UAV target from USS Preble.
Small Boats
Strong fit
Navy documentation identifies fast inshore attack craft among the intended HELIOS target categories.
Cruise Missiles
Developing
Higher-power laser work is aimed at more stressing threats, but current 60 kW systems should not be treated as universal cruise-missile replacements.
Weather
Constraint
Fog, rain, water vapor, salt, smoke and atmospheric turbulence can reduce effective range or prevent an engagement.
Saturation
Constraint
One beam generally engages one target at a time and requires dwell time before moving to the next target.
Ship Power
Integration
Electrical generation, cooling, weight and available ship space become increasingly important as laser power rises.
The laser does not need to replace the missile to have value.

If directed energy handles drones, small craft or sensors, missiles remain available for targets the laser cannot reliably engage. The economic question therefore includes both ammunition spending and preserved magazine depth.

The technology is moving from demonstration toward fleet use

2010
LaWS production estimate Historical NAVSEA estimate of roughly $15 million per system.
2018
HELIOS development contract Lockheed Martin received a $150 million contract covering development, manufacture and delivery of two systems.
2022
First HELIOS delivered The 60 kW-class system was installed aboard USS Preble.
FY2024
UAV engagement test DOT&E reported a Navy demonstration evaluating HELIOS against an unmanned aerial vehicle target.
FY2025
Additional calibration DOT&E reported two in-port firing calibration events and one at-sea calibration event.
2026
Training moves closer to the fleet The Navy established directed-energy training at Port Hueneme and planned HELIOS-specific instruction for Preble sailors.
Modeling note. The $15 million figure is a historical LaWS estimate and is used as a low-cost production scenario, not as a claimed HELIOS unit price. The approximately $100 million modern 60 kW estimate comes from a Navy cost assessment cited in Congressional Research Service reporting and includes major integration elements. RAM, ESSM and SM-6 figures shown here are procurement-line averages, so they should not be interpreted as exact recurring missile prices.

Laser firing cost represents estimated marginal electrical energy cost. Actual cost per successful defense is higher after acquisition, maintenance, integration, training, cooling, component replacement and unsuccessful or unsuitable engagements are included.
Interactive Economics Model

Laser Defense Break-Even Simulator

Change system price, threat tempo and interceptor cost. The model discounts engagements the laser cannot use because of mission suitability, atmospheric conditions and effectiveness.

Successful laser defenses 3.9 / yr After suitability, weather and effectiveness
Missiles preserved 39 Across modeled service period
Break-even 2.3 yr Capital recovery under entered assumptions
Lifecycle net $49.7M Avoided kinetic spend minus modeled laser cost
Annual kinetic spend avoided $6.5M Budget-equivalent model
Laser lifecycle cost $15.0M Capex + entered sustainment + shot energy
Effective laser cost / defense $0.38M Includes modeled system cost
Threat tempo needed 2.3 / yr Relevant threats per year for lifecycle break-even
Under these assumptions, the laser recovers its modeled capital cost within the entered service period.
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