Short answer

Designers and engineers should consider the geological suitability and proximity to emission sources when planning large-scale carbon sequestration projects.

Field
Resource Management
Source
Academic Publication (2018)
Method
Feasibility Study
Evidence
Strong effect

The feasibility of developing commercial-scale carbon dioxide storage complexes capable of permanently storing 50 million metric tonnes of CO2 over 20-30 years has been demonstrated. This resource management research insight is drawn from a 2018 study published in Academic Publication. Using Feasibility study, researchers explored how this design variable affects real-world outcomes. The key design takeaway: Designers and engineers should consider the geological suitability and proximity to emission sources when planning large-scale carbon sequestration projects.

Study
Resource ManagementHigh ImpactStrong effect

Large-scale CO2 storage complexes can sequester 50 million tonnes of carbon emissions.

The feasibility of developing commercial-scale carbon dioxide storage complexes capable of permanently storing 50 million metric tonnes of CO2 over 20-30 years has been demonstrated.

Academic Publication · 2018

01

Key Findings

  • 01Sufficient geological storage capacity exists in the Southern San Joaquin Valley to meet the goal of permanently storing 50 million metric tonnes of CO2.
  • 02A phased implementation plan for large-scale industrial carbon capture and permanent storage was developed.
  • 03Two primary storage site locations (east-side and west-side facilities) were identified and evaluated, along with potential multi-site configurations.
  • 04Capture from nearby large industrial sources can meet the 50 million tonne storage goal, with additional sources available to leverage investment.
02

Application

Design takeaway

Designers and engineers should consider the geological suitability and proximity to emission sources when planning large-scale carbon sequestration projects.

How to apply

When designing projects aimed at carbon reduction, evaluate the potential for geological sequestration and the logistical requirements for transporting captured CO2 from emission sources to storage sites.

Project actions

  • 01When researching environmental solutions, look for studies that assess the scale and feasibility of proposed technologies.
  • 02Consider the entire lifecycle of a solution, from capture to long-term storage or utilization.
03

Method & Evidence

AimTo assess the feasibility of a commercial-scale carbon dioxide storage complex in California's Southern San Joaquin Valley.
MethodFeasibility Study
ProcedureThe project conducted a preliminary study to evaluate the potential for a large-scale carbon dioxide (CO2) storage complex. This involved assessing storage capacity at potential sites, considering capture from existing industrial sources, and developing a phased implementation plan for carbon capture and storage (CCS). Multiple scenarios for storage facility locations were analyzed.
ContextIndustrial carbon capture and storage (CCS)

Variables

IV["Location of storage facility","Proximity to emission sources"]
DV["Feasibility of CO2 storage complex","Total CO2 storage capacity"]
CV["Duration of storage (20-30 years)","Target storage volume (50 million metric tonnes)"]
04

Strengths & Limitations

Strengths

  • +Addresses a critical environmental challenge with a focus on large-scale solutions.
  • +Considers multiple potential sites and scenarios for implementation.

Limitations

The study is preliminary and relies on other detailed reports for in-depth analysis.

Reliability & validity

The study's reliability is based on a preliminary technical report, and its validity for specific locations would require more detailed geological and engineering assessments.

Think critically

What are the potential risks associated with storing such large volumes of CO2 underground, and how can these be mitigated through design?

05

Design Principles

"Large-scale environmental mitigation strategies require integrated planning across resource capture, transportation, and secure storage."

This research validates the potential for significant industrial-scale carbon sequestration, offering a tangible pathway for mitigating greenhouse gas emissions from existing sources. It provides a foundational understanding for designing and implementing large-scale environmental solutions.

06

What This Means for Your Design

This study shows that it's possible to build big facilities that can store a lot of carbon dioxide underground, helping to reduce pollution from factories.

How to use in your project

  • 1.Reference this study when exploring solutions for reducing industrial emissions or designing carbon capture technologies.
07

Add to My Project

08

Quick Cite

Paragraph starter

This research demonstrates the feasibility of developing commercial-scale carbon dioxide storage complexes capable of sequestering 50 million metric tonnes of CO2, providing a robust model for industrial emissions mitigation.

09

Source

Academic Publication

California CO<sub>2</sub> Storage Assurance Facility Enterprise (C2SAFE): Final Technical Report

journal · 2018

View source

Questions About This Research

What does the research say about large-scale co2 storage complexes can sequester 50 million tonnes of carbon emissions?
Designers and engineers should consider the geological suitability and proximity to emission sources when planning large-scale carbon sequestration projects. Evidence: Academic Publication (2018).
Why does "Large-scale CO2 storage complexes can sequester 50 million tonnes of carbon emissions." matter for design?
This research validates the potential for significant industrial-scale carbon sequestration, offering a tangible pathway for mitigating greenhouse gas emissions from existing sources. It provides a foundational understanding for designing and implementing large-scale environmental solutions.
How can designers apply this research?
Designers and engineers should consider the geological suitability and proximity to emission sources when planning large-scale carbon sequestration projects.
What were the main findings?
Sufficient geological storage capacity exists in the Southern San Joaquin Valley to meet the goal of permanently storing 50 million metric tonnes of CO2.. A phased implementation plan for large-scale industrial carbon capture and permanent storage was developed.. Two primary storage site locations (east-side and west-side facilities) were identified and evaluated, along with potential multi-site configurations.. Capture from nearby large industrial sources can meet the 50 million tonne storage goal, with additional sources available to leverage investment.
What research method was used?
Feasibility Study.
How strong is the evidence?
Evidence strength is rated Strong effect, based on a 2018 journal from Academic Publication.
What should I do differently in my next project?
When designing projects aimed at carbon reduction, evaluate the potential for geological sequestration and the logistical requirements for transporting captured CO2 from emission sources to storage sites.
What are the limitations?
This report represents a preliminary study and outlines high-level summaries; detailed topical reports complement this document.