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RV4NAYSD103A Diameter Datasheet PDF Download [FAQ]

  • Contents

 

Catalog

FEATURES

OPTIONS

ELECTRICAL SPECIFICATIONS

MECHANICAL SPECIFICATIONS

ENVIRONMENTAL SPECIFICATIONS

DRAWING

ORDERING INFORMATION

Datasheet PDF Download

RV4NAYSD103A FAQ

 

FEATURES

  • hot molded carbon element
  • gold-plated terminals
  • stainless-steel shaft and housing
  • quality meeting or exceeding MIL-R-94 - QPL listed


OPTIONS

  • custom shafts and bushings
  • special tapers
  • fourth (center) terminal
  • high life
  • attached switch


ELECTRICAL SPECIFICATIONS

Resistance range, linear taper: 50 Ω to 5 Meg Ω
Resistance range, logarithmic taper: 150 Ω to 1 Meg Ω
Resistance tolerance: ±10% or ±20%
Resistance taper: linear, logarithmic, reverse logarithmic; other tapers by special order
Power rating: 2 watts at 70°C derated to 0 watts at 120°C
Insulation resistance:
dry: 10K Meg Ω
wet: 100K Meg Ω
Dielectric strength: 900 V RMS at sea level
Operating voltage: 500 V, subject to power rating


MECHANICAL SPECIFICATIONS

Mechanical rotation: 314°
Operating torque: 1 oz/in to 6 oz/in
Rotational life: 25,000 cycles


ENVIRONMENTAL SPECIFICATIONS

Operating temperature: − 65°C to +125°C

Resistance to soldering heat: 350°C for 5 seconds

Humidity range: per MIL-R-94

Vibration range: per MIL-R-94

Shock resistance: per MIL-R-94

Load life: 1000 hours at 70°C


DRAWING

Figure-rv4naysd103a-Drawing

 


ORDERING INFORMATION

 

Series

 

Bushing

 

Switch

 

Taper

 

Resistance Value

 

Tolerance

 

Shaft Style

Shaft

Length

K = series K

Blank =

Blank =

U = linear

Total resistance value in

1 = 10% of

R = round S

16 = 1/2" 20

 

standard

without

 

Ω: first 2 digits significant,

nominal

= slotted F =

= 5/8" 24 =

 

 

switch

 

third digit =

 

flatted

3/4"

 

L = locking

S = SPST

A =

number of zeroes

2 = 20% of

 

28 = 7/8" 32

 

 

switch

logarithmic

 

nominal

 

= 1"

 

W = panel &

 

B = reverse

 

 

 

40 = 1 1/4"

 

shaft steel

 

logarithmic

 

 

 

48 = 1 1/2"

 

 

 

 

 

 

 

64 = 2"

 

 

 

 

 

 

 

80 = 2 1/2"

 

 

 

 

 

 

 

96 = 3"

Example: KSU1031R16

note: not all part number combinations are valid

 

 

 

Style

 

 

Bushing

 

 

Switch

 

Temperature & Moisture Characteristics

 

 

Shaft Style

 

Shaft Length

 

 

Resistance Value

 

 

Taper & Tolerance

RV4 = MIL style RV4

N = standard

A = without

Y = as per MIL-R-94

S = slotted

B = 1/2"

Total resistance value

A = linear 10%

 

L = locking

switch

 

F = flatted

A = 5/8"

in Ω: first 2 digits

B = linear 20%

 

S = panel &

shaft steel

B = SPST

switch

 

 

D = 7/8"

G = 1 1/4"

significant, third digit =

number of zeroes

C = logarithmic 10%

D = logarithmic 20%

 

 

 

 

 

J = 2"

 

E = reverse logarithmic

 

 

 

 

 

K = 2 1/2"

 

10%

F = reverse logarithmic

 

 

 

 

 

 

 

20%

Example: RV4NAYSB000A

note: not all part number combinations are valid

 

Type K Cross Reference

Precision

Military

Clarostat

Allen Bradley

Ohmite

KU S28

RV4NAYSD

A

380C3 / 53C3

JA1N056S

UA

CMU

KLU S20

RV4LAYSA

A

280C2 / 53C2

JA1L040S

UC

CLU

KU S16

RV4NAYSB

A

N/A

JA1N032S

UA

N/A

KU S64

RV4NAYSJ

A

N/A

JA1N200S

UA

CU

KU R64

N/A

 

380C1 / 53C1

JA1N200P

UA

N/A

KU S80

RV4NAYSK

A

N/A

JA1N232S

UA

N/A

KA R64

N/A

 

53C1Z

JA1N200P

AA

N/A

KLU S28

RV4LAYSD

A

N/A

JA1L056S

UA

N/A

 


Datasheet PDF Download

You can download the datasheet from the link given below.

RV4NAYSD103A-Datasheet


RV4NAYSD103A FAQ

How do you find the shaft diameter of a power?

P = 2πNT /60 . You can find out the Torque (T). t ( shear stress) . by this equation you can find out the Diameter of the shaft (D).

 

What is the area of the end of a 2 diameter shaft?

Each end is a circle so the surface area of each end is π * r2, where r is the radius of the end. There are two ends so their combinded surface area is 2 π * r2.

 

What material is used for shafts?

The material used for ordinary shafts is carbon steel of grades 40 C 8, 45 C 8, 50 C 4 and 50 C 12. Shafts are generally manufactured by hot rolling and finished to size by cold drawing or turning and grinding. The cold rolled shafts are stronger than hot rolled shafts but with higher residual stresses.

 

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