................................. -10 °C to +55 °C
Resistance to Solder Heat............. ±5 %
Mechanical Travel ........ Length ±0.5 mm
Operating Force .............................60 gf
Stop Strength ......................... 5 kgf min.
Shaft Axial Force .................. 10 kgf min.
Shaft Wobble .. 2(2 x L/25) mm p-p max.
Soldering Condition
Manual ...........300 °C ±5 °C for 3 sec.
Wave ..............260 °C ±5 °C for 5 sec.
Wash .....................Not recommended
Mechanical Characteristics
Environmental Characteristics
Ro VE LEA
HS RS D
C ION FRE
OM S E
PL AR
IA E
NT
*
Electrical Characteristics
45 mm Length of Travel
Lever End Syle “A”
77.5
MAX.
(3.052)
65.0 ± 0.2
(2.559 ± .008)
13.0
MAX.
(.512)
Lever
Length
15.0
(.591)
20.0
(.787)
M3 2 PLCS.
45.0 ± 0.5
(1.772 ± .020)
6.0 ± 0.2
(.157 ± .008)
4.0 +0/-0.1
(.157 +0/-.004)
10.0 ± 0.3
(.394 ± .012)
R
0.3
(.012)
1.2 ± .05
(.047 ± .002)
L ± 0.5
(L ± .020)
38.7 ± 0.5
(1.524 ± .020)
HOLES
2 1 2' 1'
2.0
(.079)
6 PLCS.
5.0
6.8
(.197)
(.268)
5.0
(.197)
5.0
(.197)
12.5
(.492)
1.8
3'
(.071)
2 PLCS.
8.0
(.315)
20.0
(.787)
30.0
(1.181)
3
2.3 ± 0.2
(.091 ± .008)
3.7 ± 0.2
(.146 ± .008)
5.4 ± 0.2
(.213 ± .008)
0.5
(.020)
0.6
(.024)
Standard Resistance Table
Resistance
(Ohms)
1,000
2,000
5,000
10,000
20,000
50,000
100,000
200,000
500,000
1,000,000
Resistance
Code
102
202
502
103
203
503
104
204
504
105
How To Order
PTS 45 - 0 2 L - 103 B2
*RoHS Directive 2002/95/EC Jan. 27, 2003 including annex and RoHS Recast 2011/65/EU June 8, 2011.
Specifications are subject to change without notice.
The device characteristics and parameters in this data sheet can and do vary in different applications and actual
device performance may vary over time.
Users should verify actual device performance in their specific applications.
Model Number
Designator
PTS = High Grade Slide
Potentiometer
Length of Travel
45 = 45 mm
60 = 60 mm
01 = 100 mm
Lever End Style/Length
0 = Lever End Style “A” / 15 mm
1 = Lever End Style “T” / 8.2 mm
2 = Lever End Style “A” / 20 mm
No. of Gangs
1 = Single Gang
2 = Dual Gang
Mounting Type
L = Solder Lugs
P = PC Pins
Resistance Code
(See Standard Resistance Table)
Resistance Taper (See Taper Charts)
Taper Series followed by Curve Number
Applications
n
Professional mixing consoles
n
Professional outboard gear
PTS Series High Grade Slide Potentiometer
Product Dimensions
Tapers
A Series Tapers
100
60 mm Length of Travel
Lever End Style “A”
92.5
MAX.
(3.642)
80.0
±
0.2
(3.150
±
.008)
90
Output Voltage across Terminals 1-2
X 100 (%)
Input Voltage across Terminals 1-3
13.0
MAX.
(.512)
Lever
Length
15.0
(.591)
20.0
(.787)
80
70
60
50
40
30
20
10
0
10
20
30
(20
(3
0A
);A
6
M3 2 PLCS.
60.0
±
0.5
(2.362
±
.020)
6.0
±
0.2
(.157
±
.008)
4.0 +0/-0.1
(.157 +0/-.004)
10.0
±
0.3
(.394
±
.012)
DIMENSIONS:
MM
(INCHES)
1.2
±
.05
(.047
±
.002)
(25
3
A);
A5
A
A);
4
A);A
(15
A2
(10A);
(05
1
A);A
0.3
R
(.012)
40
50
60
70
80
90
100
Terminal 1
Rotational Travel (%)
Terminal 3
B Series Tapers
100
(4B
Output Voltage across Terminals 1-2
X 100 (%)
Input Voltage across Terminals 1-3
);B
38.7
±
0.5
(1.524
±
.020)
(3B
70
60
50
40
30
20
10
0
10
20
30
40
50
60
2.0
2 1 2' 1'
HOLES
(.079)
6 PLCS.
5.0
(.197)
5.0
(.197)
5.0
(.197)
20.0
(.787)
1.8
(.071)
2 PLCS.
6.8
(.268)
8.0
(.315)
27.5
(1.083)
37.5
(1.476)
3'
3
2.3
±
0.2
(.091
±
.008)
3.7
±
0.2
(.146
±
.008)
5.4
±
0.2
2
(.213
±
.008)
R1 1
3
0.5
(.020)
0.6
(.024)
70
(1
B
);B
1
80
3
(2
L
±
0.5
(L
±
.020)
);B5
(5B
);B
4
B)
;B
2
90
80
90
100
Terminal 1
Rotational Travel (%)
Terminal 3
Schematics
Output Voltage across Terminals 1-2
X 100 (%)
Input Voltage across Terminals 1-3
C Series Tapers
100
Single Gang
2
R1 1
3
Dual Gang
2
R1 1
R2 1'
2'
3
3'
90
80
70
60
50
40
30
20
10
(25
(3
0C
);C
6
C)
;C5
2
R1 1
R2 1'
3
3'
(1
(20
C
(15
0C
)
);C
4
(05
;C
2
C);C
1
C);
C3
0
10
20
30
40
50
60
70
80
90
100
Terminal 1
Rotational Travel (%)
Terminal 3
Specifications are subject to change without notice.
2'
The device characteristics and parameters in this data sheet can and do vary in different applications and actual device performance may vary over time.
Users should verify actual device performance in their specific applications.
PTS Series High Grade Slide Potentiometer
Product Dimensions
100 mm Length of Travel
Lever End Style “A”
132.5
MAX.
(5.217)
120.0
±
0.2
(4.724
±
.008)
13.0
MAX.
(.512)
M3 X 0.5 2 PLCS.
Lever
Length
15.0
(.591)
6.0
±
0.2
(.157
±
.008)
4.0 +0/-0.1
(.157 +0/-.004)
10.0
±
0.3
(.394
±
.012)
100.0 ± 1.0
(3.937 ± .039)
20.0
(.787)
1.2
±
.05
(.047
±
.002)
0.3
R
(.012)
L
±
0.5
(L
±
.020)
38.7
±
0.5
(1.524
±
.020)
HOLES
2 1 2' 1'
2.0
(.079)
6 PLCS.
5.0
(.197)
5.0
(.197)
5.0
(.197)
40.0
(1.575)
1.8
(.071)
2 PLCS.
6.8
(.268)
8.0
(.315)
47.5
(1.870)
57.5
(2.264)
3'
3
2.3
±
0.2
(.091
±
.008)
3.7
±
0.2
(.146
±
.008)
5.4
±
0.2
(.213
±
.008)
0.5
(.020)
0.5
(.020)
DIMENSIONS:
MM
(INCHES)
Specifications are subject to change without notice.
The device characteristics and parameters in this data sheet can and do vary in different applications and actual device performance may vary over time.
Users should verify actual device performance in their specific applications.
PTS Series High Grade Slide Potentiometer
Product Dimensions
45 mm Length of Travel
Lever End Style “T”
77.5
MAX.
(3.052)
65.0
±
0.2
(2.559
±
.008)
13.0
MAX.
(.512)
M3 X 0.5 2 PLCS.
45.0 ± 0.5
(1.772 ± .020)
2.0
(.079)
4.0
(.157)
18.5 +0/-0.1
(.728 +0/-.004)
14.5
(.571)
8.0
(.315)
8.2 ± 0.5
(.323 ± .020)
1.5
±
.05
(.059
±
.002)
1.2
±
.05
(.047
±
.002)
2.0
(.079)
DIA. 2 PLCS.
38.7
±
0.5
(1.524
±
.020)
HOLES
2 1 2' 1'
2.0
(.079)
6 PLCS.
5.0
6.8
(.197)
(.268)
5.0
(.197)
5.0
(.197)
12.5
(.492)
1.8
3'
(.071)
2 PLCS.
8.0
(.315)
20.0
(.787)
30.0
(1.181)
3
2.3
±
0.2
(.091
±
.008)
3.7
±
0.2
(.146
±
.008)
5.4
±
0.2
(.213
±
.008)
0.5
(.020)
0.6
(.024)
DIMENSIONS:
MM
(INCHES)
Specifications are subject to change without notice.
The device characteristics and parameters in this data sheet can and do vary in different applications and actual device performance may vary over time.
Users should verify actual device performance in their specific applications.
PTS Series High Grade Slide Potentiometer
Product Dimensions
60 mm Length of Travel
Lever End Style “T”
92.5
MAX.
(3.642)
80.0
±
0.2
(3.150
±
.008)
13.0
MAX.
(.512)
M3 X 0.5 2 PLCS.
60.0
±
0.5
(2.362
±
.020)
18.5 +0/-0.1
(.728 +0/-.004)
2.0
(.079)
4.0
(.157)
14.5
(.571)
8.0
(.315)
8.2 ± 0.5
(.323 ± .020)
1.5
±
.05
(.059
±
.002)
1.2
±
.05
(.047
±
.002)
2.0
(.079)
DIA. 2 PLCS.
38.7
±
0.5
(1.524
±
.020)
HOLES
2.0
2 1 2' 1'
(.079)
6 PLCS.
5.0
(.197)
5.0
(.197)
5.0
(.197)
20.0
(.787)
1.8
(.071)
2 PLCS.
6.8
(.268)
8.0
(.315)
27.5
(1.083)
37.5
(1.476)
3'
3
2.3
±
0.2
(.091
±
.008)
3.7
±
0.2
(.146
±
.008)
5.4
±
0.2
(.213
±
.008)
0.5
(.020)
0.5
(.020)
DIMENSIONS:
MM
(INCHES)
Specifications are subject to change without notice.
The device characteristics and parameters in this data sheet can and do vary in different applications and actual device performance may vary over time.
Users should verify actual device performance in their specific applications.
[align=left] In the field of mechanical welding in my country, due to the continuous changes in the materials and forms of the welded parts and the welded parts, the traditional water welding technolo...
The MCU I use is STM32F103ZET6 144pin. I use FSMC to hang NAND FLASH. The wiring diagram is as follows: FSMC read and write signals, data D2, D3, and BAND2 chip selects are PD4, PD5, PD0, PD1, PD7 of ...
I would like to ask you experts, why does the magnetic field of the switching transformer need to have a gap, and what parameters are related to the size of the gap?...
BSP_ENTER_CRITICAL_SECTION(intState);BSP_EXIT_CRITICAL_SECTION(intState);BSP_EXIT_CRITICAL_SECTION(intState);The two statements are mainly used to turn on and off interrupts, but I don't understand wh...
A single-chip microcomputer is also called a single-chip microcontroller. It is not a chip that completes a certain logical function, but a computer system integrated into one chip. In general, a c...[Details]
Google's driverless technology is not only an eye-catching technology, but also a subversion of the car usage model.
Those who have watched anti-terrorism films and TV dramas must have been im...[Details]
This paper designs a dot matrix LED text display screen that is easy to update, expandable, and low-cost. The way to reduce costs is
① Use the Bluetooth data transmission function of mobile ph...[Details]
A multi-point temperature control heating control system was designed using the SST89E564RC single-chip microcomputer and a new temperature measuring device. The heating system can be controlled in...[Details]
Overview
As a remote network communication control method with advanced technology, high reliability, complete functions and reasonable cost, CAN-bus has been widely used in various automa...[Details]
my country is a big country in agriculture, grain production and consumption. Grains are a necessary condition for our nation to survive and develop. The flour processing industry will exist forever w...[Details]
PV inverter manufacturer SMA has launched its first DC arc fault circuit interrupter (AFCI) PV inverter and has received UL certification.
The new SunnyBoy AFCI inverter models include 3000-US...[Details]
This paper designs a 16x16LED Chinese character display bar based on single-chip dynamic scanning control, briefly analyzes the principle of Chinese character display, and studies how the LED displ...[Details]
Investment in
the
medical device
industry has been on the rise in recent years. In the past two years, venture capital for medical devices has almost doubled, reaching $4 billion in 2007. Fr...[Details]
introduction
MEMS is a high-tech that has flourished on the basis of integrated circuit production technology and dedicated micro-electromechanical processing methods. Pressure sensors develop...[Details]
Spatial Division Multiplexing (SDM) MIMO processing can significantly improve spectrum efficiency and thus greatly increase the capacity of wireless communication systems. Spatial Division Multip...[Details]
Recently, news came from the certification department that the photovoltaic grid-connected inverter of Samil New Energy Co., Ltd. (hereinafter referred to as "Samil New Energy") has once again obta...[Details]
LED light sources have many environmental advantages, but early products still have certain technical bottlenecks in heat dissipation and high brightness design that cannot be broken through....[Details]
Analysis of the three core aspects of digital TV transmission standards
According to the differences in regionality, transmission method and modulation method, the transmission method needs to...[Details]
Among the uses of electrical energy, lighting accounts for a considerable proportion. Compared with the earlier ordinary incandescent lamps, the fluorescent lamps and energy-saving lamps we commonl...[Details]