36663-94700 WIRING HARNESS CAP Suzuki
DT55CLF, DT55CRLG, DT55CRLJ, DT55CRLK, DT55CRLL, DT55CRSG, DT55CRSH, DT55HTCLH, DT55HTCLJ, DT55HTCLK, DT55HTCLL, DT55TCLG, DT55TCLH, DT55TCLJ, DT55TCLK, DT55TCLL, DT55TCLM, DT55TCLN, DT55TCLP, DT55TCLR, DT55TCLS, DT55TCLT, DT55TCLV, DT55TCSG, DT55TCS
WIRING
Price: query
Rating:
Compatible models:
DT55CLF
DT55CRLG
DT55CRLJ
DT55CRLK
DT55CRLL
DT55CRSG
DT55CRSH
DT55HTCLH
DT55HTCLJ
DT55HTCLK
DT55HTCLL
DT55TCLG
DT55TCLH
DT55TCLJ
DT55TCLK
DT55TCLL
DT55TCLM
DT55TCLN
DT55TCLP
DT55TCLR
DT55TCLS
DT55TCLT
DT55TCLV
DT55TCSG
DT55TCSH
DT65CRLJ
DT65CRLK
DT65CRLL
DT65HTCLK
DT65HTCLL
DT65TCLJ
DT65TCLK
DT65TCLL
DT65TCLM
DT65TCLN
DT65TCLP
DT65TCLR
DT65TCLS
DT65TCLT
DT65TCLV
DT75TCLG
DT75TCLH
DT75TCLJ
DT75TCLK
DT75TCLL
DT75TCLM
DT75TCLN
DT75TCLP
DT75TCLR
DT75TCLS
DT75TCLT
DT75TCLV
DT85TCLJ
DT85TCLK
DT85TCLL
DT85TCLM
DT85TCLN
DT85TCLP
DT85TCLR
DT85TCLS
DT85TCLT
DT85TCLV
DT85TCLW
DT85TCLX
DT85TCLY
Suzuki
Suzuki entire parts catalog list:
- ELECTRICAL 4 » 36663-94700
- ELECTRICAL 4 » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- ELECTRICAL 4 » 36663-94700
- ELECTRICAL 4 » 36663-94700
- ELECTRICAL 4 » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- ELECTRICAL 4 » 36663-94700
- ELECTRICAL 4 » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- ELECTRICAL 4 » 36663-94700
- ELECTRICAL 4 » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- HARNESS » 36663-94700
- Lower Cover » 36663-94700
- Lower Cover » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-97 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 96-00 » 36663-94700
- OPTIONAL HANDLE 93-95 » 36663-94700
Information:
Power
P = IEwhere P = power in wattsI = current in amperesE = voltage in voltsThis equation for power may also be transposed to: From Ohm's law it is known that E = IR. If this expression for voltage is substituted in the power law, we can derive the additional equation: P = I2RIf we use the equation for current from Ohm's law, I = E/R, the equation for power becomes: *See "Ugly's Electrical Reference" (SEBD0983) for additional information.Resistance
Series Circuits RT = R1 + R2 + R3 + ... RN where RN = resistance in the individual resistorsRT = total resistance in circuitReactance
XL = 2 π f Lwhere XL = inductive reactance in ohms f = frequency in hertzL = inductance in henriesπ = 3.1416 where XC = capacitive reactance in ohms f = frequency in hertzC = capacitance in faradsπ = 3.1416Impedance
where Z = impedance in ohms R = resistance in ohmsXL = inductive reactance in ohmsXC = capacitive reactance in ohmsNote that the impendance will vary with frequency, since both XC and XL are frequency dependent. In practical AC power circuits, XC is often small and can be neglected. In that case, the formula above simplifies to: Transformer Voltage Conversion
where VS = secondary voltage VP = primary voltageNS = number of secondary turnsNP = number of primary turnsPower Factor
In mathematical terms, the power factor is equal to the cosine of the angle by which the current leads or lags the voltage. If the current lags the voltage in an inductive circuit by 60 degrees, the power factor will be 0.5, the value of the cosine function at 60 degrees. If the phase of the current in a load leads the phase of the voltage, the load is said to have a leading power factor; if it lags, a lagging power factor. If the voltage and current are in phase, the circuit has a unity power factor.Equation Summary Diagram
Three Phase Connection Systems:
Electrical Enclosure Protection = IEC
The degrees of protection provided within an electrical enclosure is expressed in terms of the letters IP followed by two numerals. Mechanical protection against impact damage is defined by an optional third numeral. Example: An IP55 enclosure protects its contents against dust and spray from water jets.Reference: DIN 40050 of July 1980, IEC 144 of 1963, IEC 529 of 1976, NF C 20-010 of April 1977Electrical Enclosure Protection - NEMA
Electrical Tables
Table 1 Electrical Formulae Table 2 KV A of AC Circuits Table 3 Copper Wire Characteristics Table 4 Single-Phase AC Motors Full Load Currents in Amperes Table 5 Three-Phase AC Motors - 80% Power Factor Full Load Current in Amperes - Induction-Type, Squirrel Cage and Wound Rotor Table 6 Direct Current Motors Full Load Current in Amperes Table 7 Conduit Sizes for Conductors Table 8 Allowable Current-Carrying Capacities of Insulated Copper Conductors Table 9 Code Letters Usually Applied to Ratings of Motors Normally Started on Full Voltage Table 10 Identifying Code Letters on AC Motors Table 11 Conversion - Heat and Energy Table 12 Approximate Efficiencies - Squirrel Cage Induction Motor Table 13 - Approximate Electric Motor Efficiency to Use in Calculating Input Table 14 Reduced Voltage Starters
P = IEwhere P = power in wattsI = current in amperesE = voltage in voltsThis equation for power may also be transposed to: From Ohm's law it is known that E = IR. If this expression for voltage is substituted in the power law, we can derive the additional equation: P = I2RIf we use the equation for current from Ohm's law, I = E/R, the equation for power becomes: *See "Ugly's Electrical Reference" (SEBD0983) for additional information.Resistance
Series Circuits RT = R1 + R2 + R3 + ... RN where RN = resistance in the individual resistorsRT = total resistance in circuitReactance
XL = 2 π f Lwhere XL = inductive reactance in ohms f = frequency in hertzL = inductance in henriesπ = 3.1416 where XC = capacitive reactance in ohms f = frequency in hertzC = capacitance in faradsπ = 3.1416Impedance
where Z = impedance in ohms R = resistance in ohmsXL = inductive reactance in ohmsXC = capacitive reactance in ohmsNote that the impendance will vary with frequency, since both XC and XL are frequency dependent. In practical AC power circuits, XC is often small and can be neglected. In that case, the formula above simplifies to: Transformer Voltage Conversion
where VS = secondary voltage VP = primary voltageNS = number of secondary turnsNP = number of primary turnsPower Factor
In mathematical terms, the power factor is equal to the cosine of the angle by which the current leads or lags the voltage. If the current lags the voltage in an inductive circuit by 60 degrees, the power factor will be 0.5, the value of the cosine function at 60 degrees. If the phase of the current in a load leads the phase of the voltage, the load is said to have a leading power factor; if it lags, a lagging power factor. If the voltage and current are in phase, the circuit has a unity power factor.Equation Summary Diagram
Three Phase Connection Systems:
Electrical Enclosure Protection = IEC
The degrees of protection provided within an electrical enclosure is expressed in terms of the letters IP followed by two numerals. Mechanical protection against impact damage is defined by an optional third numeral. Example: An IP55 enclosure protects its contents against dust and spray from water jets.Reference: DIN 40050 of July 1980, IEC 144 of 1963, IEC 529 of 1976, NF C 20-010 of April 1977Electrical Enclosure Protection - NEMA
Electrical Tables
Table 1 Electrical Formulae Table 2 KV A of AC Circuits Table 3 Copper Wire Characteristics Table 4 Single-Phase AC Motors Full Load Currents in Amperes Table 5 Three-Phase AC Motors - 80% Power Factor Full Load Current in Amperes - Induction-Type, Squirrel Cage and Wound Rotor Table 6 Direct Current Motors Full Load Current in Amperes Table 7 Conduit Sizes for Conductors Table 8 Allowable Current-Carrying Capacities of Insulated Copper Conductors Table 9 Code Letters Usually Applied to Ratings of Motors Normally Started on Full Voltage Table 10 Identifying Code Letters on AC Motors Table 11 Conversion - Heat and Energy Table 12 Approximate Efficiencies - Squirrel Cage Induction Motor Table 13 - Approximate Electric Motor Efficiency to Use in Calculating Input Table 14 Reduced Voltage Starters
Parts wiring Suzuki:
36820-95550
36820-95550 Wiring Harness, neutral
DT75TCLD, DT75TCLE, DT75TCLF, DT75TCLG, DT75TCLH, DT85ELT, DT85TCLD, DT85TCLE, DT85TCLF, DT85TCLT, DT85TCLX, DT85TCLZ, DT85TELN, DT85TELT
37853-95251
37853-95251 WIRING HARNESS, TOGGLE SWITCH
DT50, DT50M, DT50W, DT55CLF, DT55CRLG, DT55CRSG, DT55CRSH, DT55HTCLH, DT55TCLG, DT55TCLH, DT55TCSG, DT55TCSH, DT65, DT65, DT65CRLG, DT65CRLH, DT65CRSG, DT65CRSH, DT65TCLF, DT65TCLG, DT65TCLH, DT65TCSG, DT65TCSH
36640-95500
36640-95500 WIRING HARNESS, RELAY CONTROL
DT115, DT140, DT50, DT50M, DT50W, DT55CLF, DT55CRLG, DT55CRSG, DT55CRSH, DT55HTCLH, DT55TCLG, DT55TCLH, DT55TCSG, DT55TCSH, DT65, DT65, DT65CRLG, DT65CRLH, DT65CRSG, DT65CRSH, DT65TCLF, DT65TCLG, DT65TCLH, DT65TCSG, DT65TCSH, DT75TCLD, DT75TCLF, DT75
36620-94520
36620-94520 Wiring Harness, extension
DT75TCLD, DT75TCLE, DT75TCLF, DT75TCLG, DT75TCLH, DT85TCLD, DT85TCLE, DT85TCLF
36620-95203
36620-95203 Wiring Harness, extension
DT75TCLD, DT75TCLF, DT75TCLG, DT75TCLH, DT85TCLD, DT85TCLE, DT85TCLF
36620-95302
36620-95302 Wiring Harness, extension
DF100, DF100, DF115, DF115, DF115TL, DF140, DF140, DF140T, DF140T, DF140Z, DF140Z, DF140Z, DF140Z, DF25, DF25Q, DF25Q(QR), DF25T, DF30, DF30Q, DF30Q(QR), DF30T, DF40, DF40, DF40QH, DF40TL, DF50, DF50, DF50QH, DF50TL, DF60, DF60HL, DF60TL, DF70, DF70T
36620-95320
36620-95320 Wiring Harness, extension
DT55CLF, DT55CRLG, DT55CRSG, DT55CRSH, DT55HTCLH, DT55TCLG, DT55TCLH, DT55TCSG, DT55TCSH, DT65CRLG, DT65CRLH, DT65CRSG, DT65CRSH, DT65TCLF, DT65TCLG, DT65TCLH, DT65TCSG, DT65TCSH, DT75TCLD, DT75TCLF, DT75TCLG, DT75TCLH, DT85TCLD, DT85TCLE, DT85TCLF
36620-87020