PTCEL17R501TTE

Vishay
594-PTCEL17R501TTE
PTCEL17R501TTE

Mfr.:

Description:
PTC (Positive Temperature Coefficient) Thermistors PTC ICL LDD 16D5 500R 1000 135 T E3

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In Stock: 878

Stock:
878 Can Dispatch Immediately
Factory Lead Time:
12 Weeks Estimated factory production time for quantities greater than shown.
Minimum: 1   Multiples: 1
Unit Price:
-,-- €
Ext. Price:
-,-- €
Est. Tariff:

Pricing (EUR)

Qty. Unit Price
Ext. Price
2,82 € 2,82 €
2,51 € 25,10 €
2,37 € 59,25 €
2,20 € 110,00 €
2,03 € 203,00 €
1,79 € 447,50 €
Full Reel (Order in multiples of 500)
1,68 € 840,00 €
1,47 € 1.470,00 €
1,40 € 3.500,00 €

Product Attribute Attribute Value Select Attribute
Vishay
Product Category: PTC (Positive Temperature Coefficient) Thermistors
RoHS:  
REACH - SVHC:
PTCEL Series
500 Ohms
30 %
Through Hole
Radial
- 40 C
+ 105 C
Reel
Cut Tape
Brand: Vishay
Diameter: 16.5 mm
Lead Diameter: 0.8 mm
Lead Spacing: 5 mm
Product Type: PTC Thermistors
Factory Pack Quantity: 500
Subcategory: Thermistors
Type: Inrush Current Limiter
Voltage Rating AC: 700 Vrms
Voltage Rating DC: 1 kVDC
Width: 7.5 mm
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CAHTS:
8533400000
USHTS:
8533408070
JPHTS:
853340000
MXHTS:
8533409102
ECCN:
EAR99

PTCEL Inrush Current Limiting PTC Thermistors

Vishay / BC Components PTCEL Inrush Current Limiting PTC Thermistors provide safe, repetitive inrush current limitation and protection in various high-power applications that require a controlled capacitor charge or discharge function. These thermistors significantly reduce board space and component count because they absorb higher energy levels of up to 340J for a single PTCEL17, and they operate at high ambient temperatures of up to +105°C. The built-in self-regulated safety mechanism prevents the PTCEL thermistor from overheating in any overload situation. PTCEL thermistors are suitable for the controlled charging and discharging of high-energy capacitors with voltage levels up to 1200VDC. Resistance values can be selected from a wide range between 60Ω and 1000Ω, and for applications that need higher energy levels or short interval times at higher temperatures, these thermistors can be connected in series/parallel to form a network of energy-absorbing thermistors.