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The Ultimate Combination of Sustainable Biosolids Treatment Technologies

机译:可持续生物固体处理技术的终极结合

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The Hawaiian island of Oahu has nine wastewater treatment facilities operated by the City and County of Honolulu (CCH), two of which treat the majority of the flows on the island, the Honouliuli Wastewater Treatment Plant (Honouliuli) and the Sand Island WWTP (Sand Island). CCH is currently under consent order to upgrade Honouliuli and Sand Island to full secondary treatment by 2024 and 2035, respectively. In addition, CCH is converting Honouliuli into a regional biosolids processing and drying facility for many of the island's treatment facilities. The design of resource recovery facilities in Hawaii has a unique set of project drivers as compared to the mainland. Specifically, power costs are very high ($0.25 to $0.35 per kW-hr) on Oahu as are solids disposal costs [$220/wet metric tonne (≈$200/wet ton)]. The high operating costs of these facilities open up design alternatives that may not have reasonable payback periods on the mainland, but may be reasonable in Hawaii. The CCH is considering treatment systems for the Honouliuli project that will have lower annual operating costs and approach energy neutrality. Key design considerations for the liquid treatment processes were A-stage treatment to divert carbon from the liquid to solids streams, managing nitrification (ammonia based aeration control) to reduce aeration requirements, and advanced energy-saving aeration systems. The solids treatment systems are critical in approaching energy neutrality with the goal to both minimize biosolids production and maximum biogas production. The design analysis included the consideration of thermal hydrolysis process (THP) and enhancing the existing anaerobic digestion process, along with the usual dewatering and the inclusion of drying facilities at this WWTP. If THP is selected, digested and dewatered biosolids from the other treatment plants will be combined with thickened Honouliuli biosolids and treated by this process. Extensive process modeling demonstrated that passing the imported solids through THP and additional digestion will provide additional biogas that can be used for combined heat and power (CHP) energy recovery. Additionally, the THP processed biosolids will achieve a significantly higher percent solids in the dewatered product feeding the dryers, thus enabling the dryers to be downsized. Waste heat from the CHP system will be the primary heat source for the low-temperature belt dryer. No biogas is expected to be needed for drying since the belt dryer process can use almost all of the heat produced by a CHP system. Excess biogas or natural gas will be used to supply the steam generation needs of the THP process. Energy mass balance calculations confirmed that the planned water resource recovery system will significantly reduce net energy demands and approach, but not reach energy neutrality.
机译:夏威夷瓦胡岛拥有檀香山市和檀香山县(CCH)运营的九个废水处理设施,其中两个用于处理岛上的大部分污水,分别为Honouliuli废水处理厂(Honouliuli)和沙岛污水处理厂(Sand Island WWTP)岛)。 CCH目前正在接受命令,以便分别在2024年和2035年之前将Honouliuli和Sand Island升级为完全二级治疗。此外,CCH正在将Honouliuli转变为该岛许多处理设施的区域性生物固体加工和干燥设施。与大陆相比,夏威夷的资源回收设施的设计具有独特的项目推动力。具体来说,瓦胡岛的电力成本非常高(每千瓦时0.25美元至0.35美元),固体处置成本也很高[220美元/湿公吨(≈200美元/湿吨)]。这些设施的高运营成本开辟了设计选择方案,这些设计方案在大陆可能没有合理的投资回收期,但在夏威夷可能是合理的。 CCH正在考虑针对Honouliuli项目的处理系统,该系统将降低年度运营成本并实现能源中和。液体处理过程的主要设计考虑因素是A级处理,将碳从液体流转换为固体流;管理硝化(基于氨的曝气控制)以降低曝气要求;以及先进的节能曝气系统。固体处理系统对于实现能源中和至关重要,其目标是最大程度地减少生物固体的产生并最大程度地提高沼气的产生。设计分析包括考虑热水解过程(THP)和增强现有的厌氧消化过程,以及在该污水处理厂中通常的脱水和包括干燥设备。如果选择了THP,则将来自其他处理厂的经过消化和脱水的生物固体与增稠的Honouliuli生物固体合并,并通过此过程进行处理。广泛的过程建模表明,将进口的固体物通过THP并进行额外的消化将提供额外的沼气,可将其用于热电联产(CHP)能量回收。另外,THP处理过的生物固体将在进给干燥机的脱水产品中获得高得多的固体百分比,从而使干燥机的尺寸减小。 CHP系统产生的废热将成为低温带式干燥机的主要热源。由于带式干燥机工艺几乎可以利用热电联产系统产生的所有热量,因此预计不需要沼气进行干燥。多余的沼气或天然气将用于满足THP工艺所需的蒸汽产生需求。能源质量平衡计算结果证实,计划中的水资源回收系统将显着减少净能源需求和方法,但不会达到能源中和的状态。

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