Deconstructing LP Payoffs: Fee Accrual vs. Inventory Drag in AMM Mechanics
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09.29.2026 – Haven Capital Research Team
Fee Accrual, Inventory Drag, and Operational Frictions in Concentrated Liquidity Mechanics
Liquidity provision on Uniswap is often described as fee yield. At Haven Capital Advisors, we approach it as a dynamic inventory and execution process.
Uniswap is an automated market maker, or AMM: instead of matching buyers and sellers through an order book, it allows traders to swap against pooled assets priced by a programmatic curve. Liquidity providers supply those assets and earn a share of swap fees, but their inventory changes as prices move.
That trade-off became more pronounced with concentrated liquidity. Uniswap v2 distributes liquidity across the full price curve. Uniswap v3 lets a provider concentrate capital within a chosen price range, increasing its active presence near the current market price while the range holds.
The trade-off is straightforward: once price moves outside that range, the position is held entirely in one asset and no longer earns fees until price returns or the range is changed.
For capital allocators, the question is not simply what fees a pool generates. It is whether those fees justify the resulting inventory exposure, time out of range, and the costs of managing the position.
This article sets out a framework for assessing LP positions: measuring fees against inventory divergence, range inactivity, and execution costs relative to a defined benchmark.
The net performance of an LP position relative to a holding benchmark can be formalized through a straightforward decomposition:
Net LP Return = Realized Fee Accrual (γ) - Path-Dependent Divergence Loss (ΔIL) - Friction & Execution Costs
Where:
Understanding how these three variables interact requires examining the transition from constant product curves to concentrated liquidity mechanics.
In a constant-product AMM such as Uniswap v2, liquidity is distributed across the full theoretical price curve—from zero to infinity—according to the invariant x · y = k, where x and y represent the pool’s token reserves. [1]
That design makes liquidity continuously available across all prices. It also means that a meaningful portion of an LP’s capital sits far from the current market price, where it contributes less to near-term trading depth.
Uniswap v3 introduced concentrated liquidity. Rather than supplying liquidity across every possible price, an LP can select the price range in which its capital will be active. [2][3]
For a fixed amount of capital, concentrating liquidity closer to the current market price can provide more active trading depth around that price than spreading the same capital across the entire curve. In this context, capital efficiency describes where in the price curve capital is placed and how much is available to support trades while price remains within the selected range.
This is not to say that this method must produce superior returns. Concentration of liquidity ranges alone does not establish higher fee income, superior risk-adjusted outcomes, or the value of active management after costs.
A narrower range places more capital near the current price but covers fewer possible price outcomes. If price moves outside that interval, the position becomes concentrated in one asset and stops earning swap fees until price returns or the LP changes the range. A broader range covers more price outcomes, but spreads the same capital more thinly at any given price, thus earning less in fees. [2][3]
For an allocator, the relevant question is therefore not whether concentration is inherently better, but whether the selected range, expected active time, inventory behavior, and operating costs are appropriate for the market being evaluated.
Uniswap v2: Full distribution
Capital placement
Across the full theoretical price curve (0 to ∞).
Mechanical effect
Capital is available across every price level, but the same notional values may be less concentrated near the current trading area.
Uniswap v3: Targeted distribution
Capital placement
Inside a selected price interval [P_lower, P_upper].
Mechanical effect
More of the same value is concentrated near the current trading area, while the selected range remains active.
Divergence loss is an inherent feature of constant product pricing. When the external reference price of an asset changes, arbitrageurs execute trades against the AMM pool until its internal quote mirrors the broader market. In doing so, the AMM automatically sells the appreciating asset and accumulates the depreciating one.
For a standard constant product pool, the divergence loss ratio relative to holding the underlying assets 50/50 is defined by:
IL(k_p) = (2 · √k_p) / (1 + k_p) - 1
Where k_p = P_current / P_entry represents the relative price ratio change. For example, a 2x price shift results in an unhedged divergence loss of ~5.7% relative to holding. [1]
Concentrated liquidity changes the LP’s exposure to price movement within a chosen interval. Tighter ranges can increase capital efficiency while active, but they also make out-of-range inactivity and range-management decisions more consequential. [2][3]
Once price moves outside a position’s selected range, the position becomes entirely concentrated in one asset and stops earning swap fees until price returns to the range or the LP changes the position. Which asset is held depends on price direction and token ordering. [2][3]
The final outcome still depends on the price path, the starting and ending inventory, trading volume, and all implementation costs.
Market structure and adverse selection. Swap volume alone does not determine LP outcomes. During rapid price moves, arbitrage helps align AMM prices with external markets, but it can also impose costs on passive liquidity when pool prices lag external reference prices. Fees may compensate for some of that exposure, but the relationship depends on the market, fee tier, volatility, and implementation.
Financial analysts may compare concentrated positions to short volatility strategies, such as writing covered calls or cash-secured puts. While this comparison offers intuitive value—both collect cash flow in exchange for taking on asymmetric directional risk—the analogy has critical structural limits:
LPs can reposition concentrated-liquidity ranges to respond to inventory exposure or out-of-range inactivity. That process is not friction or cost-free.
Repositioning requirements. Adjusting a position will usually require withdrawing liquidity, exchanging inventory, and launching a new range. The specific process and cost depend on the strategy, transaction design, and market conditions.
Realized divergence effects. Repositioning can crystallize divergence loss relative to a holding benchmark—rebalancing resets the inventory ladder, so in a trend the position realizes a shortfall in the amount of the outperforming asset, rather than allowing price retracements to recapture the losses. The economic effect depends on the position, price path, and the trades that affected it.
Gas, slippage, and adverse execution. Rebalancing will face gas costs as well as potential slippage and adverse swap execution costs opposing arbitrageurs (LVR). The significance of those costs depends on transaction design, liquidity conditions, and network conditions, and how well the LP pre-structures inventory for fast operations.
The analytical framework begins with a clear benchmark. From there, an LP position’s net result can be separated into fees earned, inventory divergence, time out of range, and execution costs.
For a full-range v2 position, the main question is whether fee income offsets the inventory effects of continuous rebalancing. For a concentrated v3 position, range selection and repositioning add further variables: capital can be more concentrated near the active market price, but can also become concentrated in one asset and stop earning fees when price leaves the selected range.
For capital allocators, this turns liquidity provision from a yield screen into an underwriting decision. The question is not which pool displays the highest fee APY. It is what inventory exposure, operational burden, and implementation risk the strategy requires—and whether the resulting net return justifies them relative to simpler alternatives.
That is also how a liquidity manager should be evaluated: by the benchmarks it sets, the inventory and range risks it accepts, the controls it applies, and the clarity of its net-performance reporting.
At Haven, this framework informs how we evaluate pools, set and monitor ranges, manage protocol concentration, and assess whether repositioning is justified after costs.
Fee income is an important input but it is not the whole investment case.
[1] Hayden Adams, Noah Zinsmeister, Dan Robinson, “Uniswap v2 Core” (March 2020). https://app.uniswap.org/whitepaper.pdf
[2] Hayden Adams, Noah Zinsmeister, Moody Salem, River Keefer, Dan Robinson, “Uniswap v3 Core” (March 2021). https://app.uniswap.org/whitepaper-v3.pdf
[3] Uniswap Developers, “Concentrated Liquidity.” https://developers.uniswap.org/docs/get-started/concepts/liquidity-providers/concentrated-liquidity
[4] Jason Milionis, Ciamac C. Moallemi, Tim Roughgarden, and Anthony Lee Zhang, “Automated Market Making and Loss-Versus-Rebalancing,” arXiv:2208.06046. https://arxiv.org/abs/2208.06046
The constant-product mechanics and illustrative impermanent-loss calculation draw on [1]. The concentrated-liquidity range, tick, and active-liquidity discussion draws on [2] and [3]. The discussion of LP returns, market exposure, fees, and losses to arbitrageurs is informed by [4].
Haven Capital Advisors, LLC is a North Carolina-registered investment adviser. Registration as an investment adviser does not imply a certain level of skill or training. This material is provided for informational and educational purposes only. It does not constitute investment, legal, or tax advice, and it is not an offer to sell or a solicitation of an offer to buy any security or investment product. Digital asset strategies involve substantial risk, including the risk of total loss of capital. Liquidity provision exposes capital to price divergence, execution and network costs, and protocol risk, and any income generated is variable and not guaranteed. This material discusses legal and regulatory concepts for informational purposes only; it does not constitute legal analysis and should not be relied upon as such. The views expressed are as of the date of publication and are subject to change.
04.09.2026
CHARLOTTE, NC — Haven Capital Advisors LLC, a North Carolina-registered investment adviser and General Partner of Haven Capital Partners, LP, today announced the appointment of Patrick Zielbauer as Partner. Zielbauer will contribute across capital formation, product development, and strategic growth as the firm expands its reach among accredited investors, family offices, registered investment advisers, and institutional allocators.
Haven Capital Partners generates recurring monthly income through concentrated liquidity provision on decentralized exchanges, earning fees by actively supplying liquidity to on-chain protocols. The fund is designed for investors seeking consistent monthly distributions, with returns driven by fee income rather than directional asset price appreciation. Haven Capital Advisors operates under a performance-only fee structure with no management fee.
"Patrick brings exactly the combination we needed — deep capital markets relationships, a global network built across more than two decades in financial services, and a genuine fluency in both traditional and digital asset markets," said Aaron DeHaven, Founder and CIO of Haven Capital Advisors. "His background makes him well-suited to communicate a nuanced strategy to sophisticated allocators, and to build the kind of trust that institutional distribution requires."
Zielbauer brings more than 20 years of financial markets and digital asset experience to the role. As Managing Director of Sales at BlockFills, a digital asset liquidity and market-making firm, he led a senior sales team contributing to $100B in cumulative trading volume, serving institutional clients globally. Zielbauer began his career in the Chicago futures brokerage industry at age 21, spending 16 years developing deep expertise in derivatives markets and international client relationships.
"We are among the first RIA-managed funds built on decentralized exchange infrastructure," said Zielbauer. "This is an income-focused strategy, not a conventional liquid token fund. The RIA structure means we operate under the same regulatory framework and fiduciary obligations that sophisticated allocators already know. The fund also supports investor self-custody for those who want it. I look forward to introducing this to the networks I have built over my career."
Haven Capital Advisors is also developing an additional share class designed to reduce net digital asset price exposure for investors seeking lower correlation to underlying asset prices. This hedged share class is expected to be available to eligible accredited investors later in 2026.
About Haven Capital Advisors: Haven Capital Advisors LLC is a North Carolina-registered investment adviser and General Partner of Haven Capital Partners, LP, a Delaware limited partnership. The fund pursues a concentrated liquidity provision strategy on decentralized exchanges, generating recurring monthly income distributed to limited partners. The firm operates under a performance-only fee structure and targets accredited investors, family offices, RIAs, and institutional allocators. Haven Capital Advisors employs institutional-grade custody technology to protect fund assets and supports investor self-custody. For more information, please contact info@havencap.io.
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