Design and Deployment of Blockchain-Enabled Peer-to-Peer Distributed Solar Energy Trading Market for an Urban Energy Community
Abstract
1. Introduction
2. Research Method
2.1. P2P Trading Simulation
2.2. Blockchain-Based P2P Trading Platform Development and Validation
3. Application of Blockchain to Address Stakeholder Issues and Limitations
4. Design and Development of Blockchain-Enabled P2P Trading Platform
4.1. Simulation Process
Mathematical Formulation of the P2P Trading Simulation
4.2. Development of Blockchain-Based P2P Trading Platform
4.2.1. System Architecture Design
4.2.2. System Development
4.2.3. System Operation
4.2.4. Critical Evaluation of System Operation
5. Discussion on Prototype’s Ability to Address Stakeholder Issues
5.1. Quantitative Context from Comparable Blockchain-Enabled P2P Trading Studies
5.2. Comparison with State-of-the-Art Solutions
5.3. Technology Acceptance Model (TAM) for Blockchain-Enabled P2P Trading Platform
6. Conclusions and Future Research Directions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Group | Stakeholder Category | Interviewee ID | Number of Participants | Years of Experience |
|---|---|---|---|---|
| Energy Sector | Green energy technology providers | 1, 7 | 2 | 10–15 |
| Utility companies | 8, 9 | 2 | 10–25 | |
| DSE products and services suppliers | 10, 11 | 2 | 5–10 | |
| Regulators | Representatives of city councils | 2, 3 | 2 | 30–40 |
| Representatives of government departments | 4 | 1 | 10 | |
| Community Groups | Residential | 12, 13, 14 | 3 | 3–5 |
| Commercial and industrial buildings | 6, 15, 16 | 3 | 5–10 | |
| Agricultural properties | 17 | 1 | 5 | |
| Health care and aged care communities | 18 | 1 | 4 | |
| Office buildings | 19, 20 | 2 | 5–10 | |
| Educational buildings | 21 | 1 | 10 | |
| R&D | Universities | 22, 23 | 2 | 3–5 |
| Green energy research institutes | 5 | 1 | 19 |
| Stakeholder Issues/Limitations | Opportunities for Future Improvement | Blockchain-Enabled Opportunities | Reference |
|---|---|---|---|
| Lack of P2P trading and community energy-based regulations |
|
| [17,18] |
| Undefined financial benefits for main stakeholders |
|
| [18,19] |
| No evidence of achieving real value for money |
|
| [19,20] |
| Unclear stakeholder roles, responsibilities and duties |
| Blockchain system architecture defines stakeholder roles, duties and responsibilities | [21,22] |
| Ineffective information sharing |
|
| [18,23] |
| Lack of clearly structured business models |
| Blockchain system architecture is developed based on a preferred business arrangement | [18,24] |
| Technical issues related to community energy applications |
|
| [25,26] |
| High dependency on technology |
|
| [25,26] |
| Limited trust in P2P trading |
|
| [27,28] |
| Reluctance of community groups to engage in community energy projects due to extra workload |
|
| [29,30] |
| Limited experience of community energy |
|
| [31,32] |
| Economic diversity across different communities |
|
| [33,34] |
| Limited government support |
|
| [22,35] |
| Competitive centralized energy suppliers |
|
| [36,37] |
| Symbol | Definition |
|---|---|
| Set of prosumers at time () | |
| Large-scale energy consumer | |
| Set of all trading players, | |
| Prosumer ’s bid at time : unit price , quantity | |
| Prosumer ’s realized selling price at time | |
| Demand of at time | |
| Volume prosumer actually sells at time , | |
| Grid selling price at time (AEMO standard rate) | |
| Grid buying price at time (minimum FiT) | |
| Prosumer ’s win rate at time | |
| Price can afford at time ; assumed | |
| Surplus value of bid , | |
| Set of winning prosumers at time | |
| Damage Valuejt | Marginal externality (“damage”) that winner j’s bid imposes on other bidders |
| Strategy | Update Rule |
|---|---|
| Random | is drawn each round independently from a uniform distribution over . |
| Preference | At the beginning, each prosumer chooses his selling strategy = (), after he notices the large-scale energy consumer C’s demand Qt. Initial bid set to the midpoint ()/2; the bid is reduced by Δp if rejected, or increased by Δp if accepted, where Δp = 0.05 × []. |
| Additional information | From round 2 onward, the win rate is incorporated: if rejected, the prosumer reverts to its last winning price with probability , or holds its current price otherwise; if accepted, the prosumer increases its price by Δp with probability , or holds its current price otherwise. |
| Category | Information | Explanation |
|---|---|---|
| Public information | Household ID | Each household is given an ID in the system for individual recognition. This ID can be seen by all participants. |
| Winning/losing bid | All the participants can see whether a particular household ID has won or not in a specific bidding round. | |
| Average real price of the bid round | The average real price of a specific bid round is visible to the participants, which they can use as a reference when deciding their bids for the next round. | |
| Bidding round (date and time) | The date and time interval in which the bidding was conducted is public information. | |
| Transaction of the bid round | The money transactions in each bid round are common knowledge to all participants. | |
| Information for individual household prosumer’s eyes only | PV energy generation | PV generation of an individual household prosumer |
| PV energy use | PV energy use of an individual household prosumer | |
| Savings | The accumulated amount of money received from P2P trading (personal account) | |
| Information for individual households’ and large-scale energy consumers’ eyes only | PV energy sale | The amount of energy available for selling to the large-scale energy consumer |
| Bidding price | The bid of the household | |
| Real price | The actual price per unit (cents/kWh) paid to the household prosumer | |
| FiT rates | The PV energy sale rates to the grid (according to the FiT policy) | |
| Average bidding price | The average bidding price of the specific bid round. This is available for household prosumers to use as a reference when bidding in the future. | |
| Information for large-scale energy consumers’ eyes only | Wholesale price | The energy wholesale price relevant to the large-scale energy consumer is only visible to him. |
| Benefit Dimension | Comparable Study | Reported Quantitative Outcome | Corresponding Findings in This Study |
|---|---|---|---|
| Financial (real-world deployment) | Bhavana et al. [65] | ~$540/household/year savings; 36.9-tonne CO2 reduction | Platform designed to optimize trading for maximum economic gain. (Further research required.) |
| Market mechanism efficiency | Sahih et al. [66] | Seller profit +88%, buyer cost +13% vs. traditional billing | VCG mechanism selected for incentive compatibility, economic efficiency and individual rationality. (Section 4.1) |
| Technical/scalability | Pradhan et al. [67] | Ethereum/Hyperledger throughput bottleneck at high transaction volumes | Ethereum-based prototype tested via Ropsten testnet (Section 4.2), not benchmarked at scale. |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Gunarathna, C.L.; Jayasuriya, S.; Wang, K.; Yi, X.; Yang, X.; Zhai, F.; Zou, Z. Design and Deployment of Blockchain-Enabled Peer-to-Peer Distributed Solar Energy Trading Market for an Urban Energy Community. Energies 2026, 19, 3966. https://doi.org/10.3390/en19173966
Gunarathna CL, Jayasuriya S, Wang K, Yi X, Yang X, Zhai F, Zou Z. Design and Deployment of Blockchain-Enabled Peer-to-Peer Distributed Solar Energy Trading Market for an Urban Energy Community. Energies. 2026; 19(17):3966. https://doi.org/10.3390/en19173966
Chicago/Turabian StyleGunarathna, Chathuri Lakshika, Sajani Jayasuriya, Kaige Wang, Xun Yi, Xuechao Yang, Fengyong Zhai, and Zhichong Zou. 2026. "Design and Deployment of Blockchain-Enabled Peer-to-Peer Distributed Solar Energy Trading Market for an Urban Energy Community" Energies 19, no. 17: 3966. https://doi.org/10.3390/en19173966
APA StyleGunarathna, C. L., Jayasuriya, S., Wang, K., Yi, X., Yang, X., Zhai, F., & Zou, Z. (2026). Design and Deployment of Blockchain-Enabled Peer-to-Peer Distributed Solar Energy Trading Market for an Urban Energy Community. Energies, 19(17), 3966. https://doi.org/10.3390/en19173966

