Thyristors & SCRs

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BT139-800E
minos
Quantity: 1000
In Stock
24+
1+ $0.2164
10+ $0.178
30+ $0.1478
100+ $0.1224
300+ $0.1196
500+ $0.1139
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x $0.2164
Ext. Price: $0.21
MOQ: 1
Mult: 1
SPQ: 50
BT137-600E
minos
4A TO-220
Quantity: 1000
In Stock
25+
1+ $0.1225
10+ $0.1008
30+ $0.0837
100+ $0.0693
300+ $0.0677
500+ $0.0645
- +
x $0.1225
Ext. Price: $0.12
MOQ: 1
Mult: 1
SPQ: 50
BT136-600E
minos
4A TO-220
Quantity: 978
In Stock
25+
1+ $0.0942
10+ $0.0774
30+ $0.0643
100+ $0.0533
300+ $0.052
500+ $0.0496
- +
x $0.0942
Ext. Price: $0.09
MOQ: 1
Mult: 1
SPQ: 50
BT138S-600E
minos
Quantity: 2500
In Stock
23+
1+ $0.1019
10+ $0.0838
30+ $0.0696
100+ $0.0576
300+ $0.0563
2500+ $0.0536
- +
x $0.1019
Ext. Price: $0.10
MOQ: 1
Mult: 1
SPQ: 2500
BT136S-600E
minos
4A TO-252
Quantity: 2295
In Stock
24+
1+ $0.0636
10+ $0.0524
30+ $0.0435
100+ $0.036
300+ $0.0351
2500+ $0.0335
- +
x $0.0636
Ext. Price: $0.06
MOQ: 1
Mult: 1
SPQ: 2500
BTA16-600B
minos
16A TO-220
Quantity: 1000
In Stock
24+
1+ $0.2419
10+ $0.1989
30+ $0.1652
100+ $0.1368
300+ $0.1336
500+ $0.1273
- +
x $0.2419
Ext. Price: $0.24
MOQ: 1
Mult: 1
SPQ: 50

Thyristors & SCRs

Definition:
{SCR}, often referred to as Selective Catalytic Reduction, is a post-treatment technology used primarily in industrial settings to reduce nitrogen oxides (NOx) emissions from combustion processes. It involves the injection of a reductant, typically ammonia (NH3) or urea, into the exhaust stream where it reacts with NOx in the presence of a catalyst, converting them into nitrogen (N2) and water (H2O).

Function:
The primary function of SCR is to chemically reduce NOx emissions to comply with environmental regulations. It operates by facilitating a redox reaction where the reductant (NH3) reacts with NOx to form harmless nitrogen and water vapor. The catalyst, often made of metal alloys like vanadium, titanium, or platinum, accelerates this reaction, ensuring it occurs at lower temperatures and with higher efficiency.

Applications:
SCR systems are widely used in various industries, including:
1. Power generation: In coal-fired and natural gas-fired power plants to reduce NOx emissions.
2. Automotive industry: In diesel engines to meet stringent emission standards.
3. Industrial processes: In manufacturing facilities that involve high-temperature combustion, such as cement kilns, glass furnaces, and steel mills.
4. Marine applications: In ships' exhaust systems to reduce NOx emissions from marine engines.

Selection Criteria:
When choosing an SCR system, several factors should be considered:
1. Emission Reduction Goals: The system must meet or exceed the required NOx reduction levels.
2. Catalyst Type: Depending on the operating temperature and the specific NOx species, different catalyst formulations may be more effective.
3. Cost: The initial investment, operating costs, and maintenance expenses should be evaluated.
4. Space and Infrastructure: The physical size of the system and the existing infrastructure must accommodate the SCR installation.
5. Regulatory Compliance: Ensure the system complies with all relevant environmental regulations and standards.
6. Reliability and Durability: The system should have a proven track record of reliability and long-term performance.
7. Supplier Support: Consider the availability of technical support and service from the supplier.

In summary, SCR is a crucial technology for reducing harmful NOx emissions in various sectors, and its selection should be based on a comprehensive evaluation of performance, cost, and compliance with environmental standards.
Please refer to the product rule book for details.