基本情報
モデルNO.
驚異のRTO
タイプ
焼却炉
省エネ
100
操作が簡単
100
高効率
100
メンテナンスの軽減
100
商標
ビジャマジング
輸送パッケージ
海外木製
仕様
180*24
起源
中国
HSコード
8416100000
商品説明
RTO
再生熱酸化装置
従来の触媒燃焼と比較して、直接熱酸化装置、RTO には、加熱効率が高く、運用コストが低く、大流量の低濃度の廃ガスを処理できるという利点があります。VOC 濃度が高い場合、二次熱リサイクルが実現され、運用コストが大幅に削減されます。RTO は、セラミック蓄熱器を介して廃ガスをレベルごとに予熱できるため、死角なしで廃ガスを完全に加熱して分解できます (処理効率> 99%)。これにより、排気ガス中の NOX が削減されます。VOC 密度が >1500mg/Nm3 の場合、廃ガスが分解領域に到達すると、蓄熱器によって分解温度まで加熱されており、この状態でバーナーが閉じられます。
RTOは動作モードの違いによりチャンバー型とロータリー型に分けられます。ロータリー型RTOはシステム圧力、温度安定性、投資額などの利点があります。
RTOタイプ | 効率性 | 圧力変化 (mmAq); | サイズ | (最大);処理量 | |
治療効率 | 熱再利用効率 | ||||
ロータリー式RTO | 99 % | 97 % | 0-4 | small(1 time); | 50000Nm3/時 |
三室式RTO | 99 % | 97 % | 0-10 | 大型 (1.;5回); | 100000Nm3/時 |
2室式RTO | 95 % | 95 % | 0-20 | middle(1.;2times); | 100000Nm3/時 |
Regenerative Thermal Oxidizer,; Regenerative Thermal Oxidizer,; Regenerative Thermal Oxidizer,; Thermal Oxidizer,; Thermal Oxidizer,; Thermal Oxidizer,; oxidizer,; oxidizer,; oxidizer,; incinerator,; incinerator,; incinerator,; waste gas treatment,; waste gas treatment,; waste gas treatment,; VOC treatment,; VOC treatment,; VOC treatment,; RTO,; RTO,; RTO,; RTO,; RTO,; RTO
住所 中華人民共和国浙江省亦荘市地城西路濱偉大厦E1 8階
ビジネスタイプ メーカー/工場, 商社
事業範囲 電気・電子、産業機器・部品、製造・加工機械、冶金・鉱物・エネルギー
マネジメントシステム認証 ISO9001、ISO14001
主要製品 Rto、カラーコーティングライン、亜鉛メッキライン、エアナイフ、加工ライン用スペア、コーター、独立機器、シンクロール、改造プロジェクト、ブロワー
会社紹介 浙江驚科技有限公司は浙江経済技術開発区(BDA)に位置する盛んなハイテク企業です。現実的、革新的、集中的、効率的という理念を堅持し、主に中国及び全世界の廃ガス処理(VOCs)産業と冶金設備にサービスを提供しています。弊社はVOCs廃ガス処理プロジェクトにおいて先進的な技術と豊富な経験を持っており、コーティング、ゴム、電子、印刷などの業界への応用に成功しています。また、平鋼加工ラインの研究と製造において、長年の技術蓄積を持っており、100近くの応用例を持っています。
弊社はVOCs有機廃ガス処理システムの研究、設計、製造、据付、試運転と平鋼加工ラインの省エネと環境保護のための改造と更新プロジェクトに重点を置いています。弊社は環境保護、省エネ、製品の品質向上などの方面で、お客様に全面的な解決案を提供することができます。
また、ローラー、カプラー、熱交換器、レキュペレーター、エアナイフ、ブロワー、溶接機、テンションレベラー、スキンパス、エキスパンションジョイント、シャー、ジョインター、ステッチャー、バーナー、ラジアントチューブ、ギアモーター、減速機など、カラーコーティングライン、亜鉛メッキライン、酸洗ラインの各種スペアや独立した設備も手掛けています。
What is the role of heat recovery in a regenerative thermal oxidizer?
Heat recovery plays a crucial role in the operation of a regenerative thermal oxidizer (RTO) by improving its energy efficiency and reducing fuel consumption. The primary function of heat recovery in an RTO is to capture and transfer heat from the treated exhaust gases to the incoming untreated gases, minimizing the need for additional external heating.
Here’s a closer look at the role of heat recovery in an RTO:
- エネルギー効率: RTOs are designed to achieve high thermal efficiency by utilizing the heat recovery principle. The heat recovery system consists of heat exchangers or beds filled with ceramic media, such as structured ceramic blocks or random ceramic saddles. These beds alternate between the exhaust gas flow and the incoming untreated gas flow.
- Heat Transfer Process: During operation, the hot exhaust gases from the industrial process flow through one bed of the heat exchanger, transferring heat to the ceramic media. The media absorbs the heat, and the temperature of the exhaust gases decreases. Simultaneously, the cooler incoming untreated gas flows through the other bed, where it absorbs the heat stored in the media, preheating the gas before it enters the combustion chamber.
- Bed Switching: The direction of gas flow through the beds is periodically switched using valves or dampers. This switching operation allows the RTO to alternate between different beds, ensuring continuous heat recovery and thermal oxidation of the pollutants. By efficiently recovering and reusing heat from the exhaust gases, the RTO reduces the amount of external fuel needed to maintain the required operating temperature.
- Reduction in Fuel Consumption: The heat recovery mechanism in an RTO significantly reduces the fuel consumption compared to other types of oxidizers. The preheating of the incoming untreated gas stream reduces the energy required to raise the temperature of the gas to the combustion temperature, resulting in lower fuel usage and operational costs.
- Economic and Environmental Benefits: Heat recovery in RTOs offers economic benefits by reducing energy costs and improving the overall sustainability of the facility. By minimizing fuel consumption, heat recovery contributes to a lower carbon footprint and helps meet environmental goals by reducing greenhouse gas emissions associated with the combustion process.
The effectiveness of heat recovery in an RTO depends on factors such as the design of the heat exchanger, the choice of ceramic media, the flow rates of the exhaust gases and incoming untreated gas, and the temperature differential between the two streams. Proper sizing and optimization of the heat recovery system are essential to ensure efficient heat transfer and maximize energy savings.
Overall, heat recovery is a key component in the design of an RTO, allowing for improved energy efficiency, reduced fuel consumption, and environmental sustainability.
How do regenerative thermal oxidizers compare to biofilters in terms of performance?
Regenerative thermal oxidizers (RTOs) and biofilters are both widely used technologies for the treatment of air pollutants, but they differ in their operating principles and performance characteristics. Here’s a comparison of RTOs and biofilters in terms of their performance:
Performance Aspect | 再生熱酸化装置(RTO) | Biofilters |
---|---|---|
Emission Removal Efficiency | RTOs are highly efficient in removing volatile organic compounds (VOCs) and hazardous air pollutants (HAPs). They can achieve destruction efficiencies above 95% for these pollutants. | Biofilters also have the potential to achieve high removal efficiencies for certain VOCs and odorous compounds. However, their performance can vary depending on the specific contaminants and the microbial activity in the biofilter. |
適用性 | RTOs are versatile and can handle a wide range of pollutants, including VOCs, HAPs, and odorous compounds. They are well-suited for high flow rates and high pollutant concentrations. | Biofilters are particularly effective in treating odorous compounds and certain VOCs. They are commonly used in applications such as wastewater treatment facilities, composting operations, and agricultural facilities. |
Energy Consumption | RTOs require a significant amount of energy to reach and maintain high operating temperatures for oxidation. They rely on fuel combustion or external heat sources for the thermal energy needed. | Biofilters are considered low energy consumption systems as they rely on the natural biological activity of microorganisms to break down pollutants. They generally do not require external heating or fuel consumption. |
メンテナンス | RTOs typically require regular maintenance and monitoring to ensure proper operation. This includes inspections, cleaning of heat exchange media, and potential repairs or replacements of components. | Biofilters require periodic maintenance to optimize their performance. This may involve monitoring and adjusting moisture levels, controlling temperature, and occasionally replacing the filter media or adding microbial inoculants. |
Capital and Operating Costs | RTOs generally have higher capital costs compared to biofilters due to their complex design, specialized materials, and energy-intensive operation. Operating costs include fuel consumption or electricity for heating. | Biofilters generally have lower capital costs compared to RTOs. They are simpler in design and do not require fuel consumption. However, operating costs may include periodic replacement of filter media and potential odor control measures. |
It is important to note that the selection of the appropriate technology depends on various factors such as the specific pollutants to be treated, process conditions, regulatory requirements, and site-specific considerations. Consulting with environmental engineers or air pollution control experts can help determine the most suitable technology for a particular application.
In summary, RTOs and biofilters offer different performance characteristics, with RTOs excelling in high removal efficiencies, versatility, and suitability for high-flow and high-concentration applications, while biofilters are effective for odorous compounds, have low energy consumption, and generally lower capital costs.
Are regenerative thermal oxidizers effective in reducing air pollution?
Regenerative thermal oxidizers (RTOs) are highly effective in reducing air pollution and have been widely recognized as one of the most efficient air pollution control technologies. Here are the reasons why RTOs are effective in reducing air pollution:
1.高い破壊効率: RTOs are known for their high destruction efficiency, typically exceeding 99%. They effectively destroy volatile organic compounds (VOCs), hazardous air pollutants (HAPs), and other harmful emissions present in industrial exhaust streams. The combustion process within the RTO chamber ensures that the pollutants are chemically oxidized into less harmful byproducts, such as carbon dioxide and water vapor.
2. Comprehensive Pollutant Removal: RTOs are designed to handle a wide range of pollutants, including VOCs, HAPs, and odorous compounds. They can effectively capture and eliminate a broad spectrum of contaminants emitted from various industrial processes. This comprehensive pollutant removal capability makes RTOs suitable for diverse industries, including chemical manufacturing, printing, pharmaceuticals, and food processing.
3. Regulatory Compliance: RTOs play a crucial role in helping industrial facilities achieve and maintain compliance with environmental regulations. By efficiently reducing air pollution, RTOs ensure that the emissions from industrial processes meet the required air quality standards set by regulatory authorities. This compliance helps protect the environment and public health while avoiding potential penalties and legal issues.
4. Energy Recovery: RTOs incorporate a regenerative heat recovery system, which improves their energy efficiency. The system captures and preheats the incoming process air by utilizing the heat energy from the outgoing exhaust stream. This energy recovery mechanism significantly reduces the overall energy consumption of the RTO, making it an environmentally friendly and cost-effective solution for air pollution control.
5. Reliability and Longevity: RTOs are known for their reliability and long operational life. They are designed with robust construction materials and proven engineering principles. The absence of complex moving parts and the self-sustaining nature of the thermal oxidation process contribute to the longevity and consistent performance of RTOs. With proper maintenance and periodic inspections, RTOs can provide effective pollution control for many years.
6. Versatility and Scalability: RTOs offer versatility and scalability to meet the specific needs of different industries. They can handle varying flow rates, pollutant concentrations, and process exhaust volumes. RTOs can be customized and engineered to accommodate specific process requirements, ensuring optimal performance and adaptability in different industrial settings.
7. Continuous Operation: RTOs can operate continuously without interruption, provided that the necessary maintenance and inspections are conducted. This continuous operation allows for consistent air pollution control, ensuring that emissions are consistently treated and minimized throughout the industrial process.
In summary, regenerative thermal oxidizers are highly effective in reducing air pollution. Their high destruction efficiency, comprehensive pollutant removal capabilities, energy recovery features, regulatory compliance, reliability, versatility, scalability, and continuous operation make them a preferred choice for industries seeking effective and sustainable solutions for air pollution control.
editor by Dream 2024-05-08