Techno-economic study of the formic acid conversion towards commodity chemicals
Techno-economic study of the formic acid conversion towards commodity chemicals
批准号:
538145-2019
负责人:
Boffito, DariaCamilla
金额:
$1.82万
依托单位国家:
加拿大
项目类别:
Engage Grants Program
财政年份:
2019
资助国家:
加拿大
项目状态:
已结题
起止时间:
2019-01-01 至 2020-12-31
中文摘要
Sigma Energy Storage(SES)致力于通过提供清洁能源存储技术来应对气候变化。SES开发了一种集成了热回收的混合热压缩储能(HT-CAES)技术,克服了CAES系统的典型缺点,即往返效率低,与电池相比能量密度较低,以及需要可靠和不间断的可再生能源供应。SES的技术可以从废气中捕获大部分二氧化碳。压缩气体在地面存储系统或自然穹顶中以液态二氧化碳和压缩空气的形式分离。SES为一种工艺申请了专利,该工艺采用石墨烯纳米鳞片支撑的铜电催化剂,可将二氧化碳还原为甲酸(HCOOH),具有前所未有的法拉第效率(FE)超过40%,电流密度&35 mA cm-2。电解槽中的HCOOH是浓缩的,可以1000加元/吨的价格出售,也可以气化生产能源。然而,HCOOH市场很小且饱和(<;100万吨/年)。寻找转化HCOOH的新途径对于确保SESHT-CAES/电催化二氧化碳还原(ECR)的商业成功及其在加拿大减少温室气体排放的应用至关重要。然而,所有有趣的HCOOH还原途径都涉及二氧化碳的产生,而限制其演化绝对是SES的目标。在这个项目中,我们探索了转化HCOOH的新途径,同时限制了二氧化碳的形成。我们解决了将HCOOH转化为商品化学品的有利可图的方法,包括甲醇、高级醇、甲醛和酰胺,这将在几个月内摊销ECR的成本。具有挑战性的反应途径包括在40巴和150℃以上的压力下将HCOOH还原为CH3OH,以及使用HCOOH作为氢甲酰化试剂。我们将在实验上探索的更直接的途径是在低温下将HCOOH直接转化为HCHO,以及采用HCOOH作为甲酰化试剂在酸催化剂上合成甲酰苯胺(橡胶添加剂)。我们将探索使用微波(MW)辐射作为替代加热技术。该项目的实现和成功为加拿大带来了几个好处,包括温室气体减排带来的环境好处,将HCOOH转化为商品化学品的有利可图的技术经济优势,以及基于微波的创新工艺。与该项目的成功相关的社会效益包括改善空气质量和形成参与实现该项目的高素质人员(HQP)。
英文摘要
Sigma Energy Storage (SES) is committed to fight climate change by providing clean energy storage technologies. SES developed a Hybrid Thermal- Compressed Energy Storage (HT-CAES) technology with integrated heat recovery that overcomes the typical drawbacks of CAES systems, i.e. low round trip efficiency, lower energy density compared to batteries, and need for reliable and uninterrupted energy supply from renewables. SES's technology can capture most of CO2 from the exhaust. The compressed gases are separated in liquid CO2 and compressed air in above-ground storage systems or natural domes. SES patented a process exploiting graphene nanoflakes-supported Cu electrocatalysts that reduce CO2 to formic acid (HCOOH) with unprecedented faradaic efficiencies (FE) of over 40 % and current densities > 35 mA cm-2. HCOOH from the electrolyser is concentrated and could be either sold at 1000 CA$/ton or gasified to produce energy. However, HCOOH market is small and saturated (< 1 M ton/y). Finding new avenues to convert HCOOH is of paramount importance to ensure the commercial success of SES`s HT-CAES/Electrocatalytic CO2 reduction (ECR) and its application to reduce GHG in Canada. All interesting HCOOH reduction pathways involve however the production of CO2, while to limit its evolution is definitely a target for SES. In this Engage project we explore new avenues to convert HCOOH while limiting at the same time CO2 formation. We tackle profitable ways to convert HCOOH to commodity chemicals, including methanol, higher alcohols, formaldehyde and amides, which will amortize the cost of the ECR in few months. Challenging reaction pathways include reducing HCOOH to CH3OH at pressure above 40 bar and T < 150 °C, and using HCOOH as a hydroformylation agent. More direct pathways that we will explore experimentally are the direct conversion of HCOOH to HCHO at low temperature and adopting HCOOH as a formylating agent to obtain formanilide (rubber additive) over acid catalysts. We will explore the use of microwaves (MW) irradiation as alternative heating technique.This realization and success of this project encompasses several benefits for Canada, including environmental benefits deriving from GHG emission reduction, techno-economical advantages deriving from a profitable conversion of HCOOH into commodity chemicals to and from an innovative process based on MW. Social benefits linked to the success of this project include the improvement air quality and the formation of highly qualified personnel (HQP) involved in its realization.
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