
Allicdata Part #: | CSC06A0133K0GPA-ND |
Manufacturer Part#: |
CSC06A0133K0GPA |
Price: | $ 0.43 |
Product Category: | Resistors |
Manufacturer: | Vishay Dale |
Short Description: | RES ARRAY 5 RES 33K OHM 6SIP |
More Detail: | 33k Ohm ±2% 200mW Power Per Element Bussed 5 Resis... |
DataSheet: | ![]() |
Quantity: | 1000 |
2000 +: | $ 0.38269 |
6000 +: | $ 0.37819 |
Number of Pins: | 6 |
Height - Seated (Max): | 0.195" (4.95mm) |
Size / Dimension: | 0.590" L x 0.098" W (14.99mm x 2.49mm) |
Supplier Device Package: | 6-SIP |
Package / Case: | 6-SIP |
Mounting Type: | Through Hole |
Applications: | -- |
Operating Temperature: | -55°C ~ 125°C |
Temperature Coefficient: | ±100ppm/°C |
Power Per Element: | 200mW |
Series: | CSC |
Resistor-Ratio-Drift: | ±50 ppm/°C |
Resistor Matching Ratio: | -- |
Number of Resistors: | 5 |
Tolerance: | ±2% |
Resistance (Ohms): | 33k |
Circuit Type: | Bussed |
Part Status: | Active |
Packaging: | Bulk |
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Resistor Networks, Arrays
The CSC06A0133K0GPA is a network of connected resistors, also known as an array. This array is built with resistors that have very low resistance values, making them suitable for a variety of applications. It is one of the most commonly used components in circuit design, as it is an integral part of the development of low-voltage, low-power electronic circuits.
The CSC06A0133K0GPA is a 3-D array of resistors, made up of six layers and four resistors in each layer. Each resistor is connected to two other adjacent resistors on the same layer, and two resistors from the adjacent layer. This creates a 3-D array that can be used to reduce power consumption in electronic circuits, and improve the performance of certain components.
The CSC06A0133K0GPA is used primarily in circuit design. It can be used to create a low-voltage platform for circuit designs, as well as reduce power consumption in circuits with high frequencies. It can also be used to design circuits with high signal-to-noise ratios. The low resistance values of the resistors make them suitable for these applications.
The CSC06A0133K0GPA may also be used in the construction of radiofrequency applications. Thanks to its high resistance values, the CSC06A133K0GPA can be used to increase power efficiency in radiofrequency amplifiers and receivers. The array is also used for suppressing unwanted noise in radio frequency circuits and improving signal-to-noise ratios.
The CSC06A0133K0GPA also has applications in the development of memory devices. The array can be used to reduce the size of memory devices, while at the same time increasing signal-to-noise ratios – an important feature for many memory devices.
The CSC06A0133K0GPA also has applications in the development of optical data storage and transmission. The array can be used to reduce losses during optical data transmission, while at the same time increasing the signal-to-noise ratios of such systems.
The basic working principle of the CSC06A0133K0GPA is based on the fact that the resistors in the array are connected in such a way that they form a network. This network distributes the power in the circuit evenly among the resistors, thus reducing the overall power consumption. By changing the movements of the resistors, the array can be used to control signal noise, and thus improve the performance of the circuit.
In summary, the CSC06A0133K0GPA is a powerful network of connected resistors that can be used in a variety of applications. It is used in circuit design to reduce power consumption and improve the performance of certain components. It is also used in radio frequency applications, memory devices, and optical data storage and transmission. The basic working principle of the array is based on the fact that the resistors form a network, and can be used to reduce signal noise and improve circuit performance.
The specific data is subject to PDF, and the above content is for reference
Part Number | Manufacturer | Price | Quantity | Description |
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CSC08A0310K0FEK | Vishay Dale | 0.6 $ | 3094 | RES ARRAY 4 RES 10K OHM 8... |
CSC08A0110K0GPA | Vishay Dale | 0.48 $ | 1000 | RES ARRAY 7 RES 10K OHM 8... |
CSC08A014K70GEK | Vishay Dale | 0.5 $ | 1211 | RES ARRAY 7 RES 4.7K OHM ... |
CSC08A012K00GEK | Vishay Dale | 0.21 $ | 1000 | RES ARRAY 7 RES 2K OHM 8S... |
CSC04A0322K0GPA | Vishay Dale | 0.41 $ | 1000 | RES ARRAY 2 RES 22K OHM 4... |
CSC08A0310K0GEK | Vishay Dale | 0.5 $ | 3587 | RES ARRAY 4 RES 10K OHM 8... |
CSC04A011M00GPA | Vishay Dale | 0.41 $ | 1000 | RES ARRAY 3 RES 1M OHM 4S... |
CSC05A013K30GPA | Vishay Dale | 0.42 $ | 1000 | RES ARRAY 4 RES 3.3K OHM ... |
CSC08A011K00GPA | Vishay Dale | 0.48 $ | 1000 | RES ARRAY 7 RES 1K OHM 8S... |
CSC08A01510RGPA | Vishay Dale | 0.48 $ | 1000 | RES ARRAY 7 RES 510 OHM 8... |
CSC05A01100KGEK | Vishay Dale | 0.5 $ | 1597 | RES ARRAY 4 RES 100K OHM ... |
CSC06A01120KGPA | Vishay Dale | 0.43 $ | 1000 | RES ARRAY 5 RES 120K OHM ... |
CSC05A014K70GEK | Vishay Dale | 0.5 $ | 2350 | RES ARRAY 4 RES 4.7K OHM ... |
CSC09A011K00FEK | Vishay Dale | 0.64 $ | 8281 | RES ARRAY 8 RES 1K OHM 9S... |
CSC06A033K30GPA | Vishay Dale | 0.43 $ | 1000 | RES ARRAY 3 RES 3.3K OHM ... |
CSC09A0147K0GEK | Vishay Dale | 0.7 $ | 3026 | RES ARRAY 8 RES 47K OHM 9... |
CSC06A01100KGEK | Vishay Dale | 0.16 $ | 1000 | RES ARRAY 5 RES 100K OHM ... |
CSC04A014K70GPA | Vishay Dale | 0.41 $ | 1000 | RES ARRAY 3 RES 4.7K OHM ... |
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MN-000505-0MF-CSC05 | Amphenol LTW | 37.31 $ | 1000 | M12 P CONNCable Assembly ... |
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CSC06A03100RGPA | Vishay Dale | 0.43 $ | 1000 | RES ARRAY 3 RES 100 OHM 6... |
CSC06A03330RGPA | Vishay Dale | 0.43 $ | 1000 | RES ARRAY 3 RES 330 OHM 6... |
CSC09B01910RGPA | Vishay Dale | 0.76 $ | 1000 | RES ARRAY 8 RES 910 OHM 9... |
CSC08A0115K0GPA | Vishay Dale | 0.44 $ | 1000 | RES ARRAY 7 RES 15K OHM 8... |
CSC09A012K70GPA | Vishay Dale | 0.45 $ | 1000 | RES ARRAY 8 RES 2.7K OHM ... |
RES NTWRK 18 RES 47 OHM 36LBGA47 Ohm 1% ...

RES NTWRK 32 RES 56 OHM 36LBGA56 Ohm 1% ...

RES ARRAY 4 RES 39 OHM 120639 Ohm 5% 62....

RES ARRAY 4 RES 43 OHM 080443 Ohm 5% 62....

RES ARRAY 4 RES 120 OHM 0804120 Ohm 5% 6...

RES ARRAY 2 RES 300 OHM 0606300 Ohm 5% 6...
